[{"data":1,"prerenderedAt":-1},["ShallowReactive",2],{"_public_publisher_byId_b3ab55dd-dbb3-4580-b952-9b92c7169f51":3,"_public_publication_all{\"sortAscending\":false,\"sortField\":\"updateTime\",\"page\":0,\"size\":10,\"facet\":true,\"searchKey\":\"publisherId:b3ab55dd-dbb3-4580-b952-9b92c7169f51,\"}":100},{"code":4,"data":5,"meta":24},"SUCCESS",{"id":6,"createTime":7,"updateTime":8,"relativeEntities":9,"slug":10,"properties":11,"entityType":22,"verifyStatus":23,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":25,"subjectFields":26,"manageAffiliations":33,"indexDatabases":49,"url":86,"thumbnailPath":24,"statistic":87,"gsStatistic":24,"type":24,"analyzePriority":24},"b3ab55dd-dbb3-4580-b952-9b92c7169f51","2023-05-29T10:56:34.691+00:00","2025-11-21T09:52:04.165+00:00",[],"Evolutionary-Ecology",{"country":12,"eissn":14,"issn":16,"title":18,"introduce":20},{"VOID":13},"NL",{"VOID":15},"15738477",{"VOID":17},"02697653",{"EN":19},"Evolutionary Ecology",{"EN":21},"Evolutionary Ecology seeks papers with a clear novelty. They should yield new insights into the effects of ecology on evolutionary processes and\u002For the effects of evolution on ecological processes. By ecology it is meant the interactions between organisms and their environment. The best papers should pose a new and significant problem (with empirical evidence) and change the way people think about the topic of the paper. The scope of the journal includes all organisms and systems, both living and fossil; it is not biased with respect to taxon or biome or time period.","PUBLISHER","PENDING",null,6,[27],{"id":28,"createTime":24,"updateTime":24,"relativeEntities":29,"label":30,"description":32,"parentId":24,"standard":24,"scholarHubFieldId":24},"d01c5fde-3663-4bb5-9a9e-b5ebea4f38e2",[],{"EN":31},"Ecology, Evolution, Behavior and Systematics",{},[34,41],{"id":35,"createTime":24,"updateTime":24,"relativeEntities":36,"slug":24,"properties":37,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":40,"statistic":24},"26a19206-5cad-4456-bb2f-49abd254fbc6",[],{"title":38},{"EN":39},"SPRINGER",[],{"id":42,"createTime":24,"updateTime":24,"relativeEntities":43,"slug":24,"properties":44,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":47,"statistic":24},"b2bfac93-563a-4fa4-bd81-e546a66bf9bd",[],{"title":45},{"EN":46},"Springer Netherlands",[48],"9a7c7208-b28a-42c2-a634-5a7f90eee3ab",[50,69],{"id":51,"indexDatabase":52,"url":64,"indexYears":24,"academicFieldIds":65,"indexDatabaseRanking":24},"e3f651db-4c08-423a-8546-3f3804cf13ac",{"id":53,"createTime":24,"updateTime":24,"relativeEntities":54,"label":55,"description":57,"key":60,"publicationTags":61,"standard":24},"a4921856-b128-4d9f-8f1f-e80813d3bbd4",[],{"EN":56,"VI":56},"ISI\u002FSCIE - Science Citation Index Expanded",{"EN":58,"VI":59},"SCIE database","Cơ sở dữ liệu SCIE","scie",[62,63],"SCIE","ISI","https:\u002F\u002Fmjl.clarivate.com\u002Fsearch-results?issn=0269-7653",[66,67,68],"7239776a-b6cb-4a11-9a6b-ddd412da67c5","a88c02c1-1408-46e6-b021-2667e298d14d","7b8a31eb-649c-4a9d-9367-0eddb719369e",{"id":70,"indexDatabase":71,"url":81,"indexYears":82,"academicFieldIds":83,"indexDatabaseRanking":85},"0a15ffd9-b274-4133-a657-b589caad38a0",{"id":72,"createTime":24,"updateTime":24,"relativeEntities":73,"label":74,"description":76,"key":78,"publicationTags":79,"standard":24},"3c7051d4-eb7d-4c57-a56b-36fc74c5d1e9",[],{"EN":75,"VI":75},"Scopus - Elsevier",{"EN":75,"VI":77},"Cơ sở dữ liệu Scopus thuộc Elsevier","scopus",[80],"SCOPUS","https:\u002F\u002Fwww.scopus.com\u002Fsourceid\u002F21606","1987-2025",[84],"95f8925b-50ef-457e-b85f-1ad0343f04b9","SCOPUS__Q1","http:\u002F\u002Fwww.springer.com\u002Flife+sciences\u002Fjournal\u002F10682",{"impactFactor":88,"impactFactorByYear":89,"i10Index":88,"i10IndexLast5Year":88,"totalPublication":90,"totalPublicationByYear":91,"totalCitation":88,"totalCitationByYear":98,"totalCitationPerPublication":88,"totalCitationPerPublicationByYear":99,"hindexLast5Year":88,"hindex":88},0,{},77,{"1987":92,"1989":93,"1990":92,"1991":92,"1992":92,"1993":93,"1995":93,"1996":92,"1997":92,"1998":93,"2000":93,"2001":93,"2002":93,"2005":92,"2006":94,"2007":95,"2008":94,"2009":92,"2010":92,"2011":96,"2012":97,"2014":97,"2015":97,"2016":92,"2017":92,"2018":93,"2019":95,"2020":94,"2021":92,"2022":97,"2023":92},2,1,3,5,8,4,{},{},{"meta":101,"data":103},{"total":102},"1385",[104,298,415,502,631,749,870,1207,1533,1876],{"id":105,"createTime":106,"updateTime":107,"relativeEntities":108,"slug":109,"properties":110,"entityType":119,"verifyStatus":120,"verifyTime":121,"verifyNote":122,"languages":24,"translateLanguages":24,"viewCount":88,"primaryUrl":123,"fullTextUrl":124,"authors":125,"publicationType":144,"publisherRelationship":145,"citationCount":88,"citationInfo":196,"publishDate":199,"publishYear":197,"citationAnalyzeStatus":200,"lastCitationAnalyze":201,"indexDatabases":202,"openAccess":24,"references":203,"isForceReanalyzing":297},"14f4bcbf-2980-4290-807b-096afec72ee3","2024-01-29T13:18:04.776+00:00","2026-08-19T12:04:00.367+00:00",[],"Prey-abundance-vs-diet-breadth-in-a-spider-test-system",{"abstract":111,"title":113,"gsPaper":115,"doi":117},{"EN":112},"‘Decisions’ made as to what prey types to include in the diet were analysed for two populations of the spider,Agelenopsis aperta existing under markedly different prey availability and predation levels. Potential prey types were ranked as to their relative profitabilities with respect to energy gain per handling effort and predation risk. Members of the population experiencing limited prey availability but low risk of predation to visually hunting predators exhibited a significantly higher capture attempt rate towards all prey encountered than the population for which prey were abundant but for which predation was a significant problem. Neither spider population preferentially attacked prey that exhibited higher profitability rankings. An experiment was completed that indicates thatA. aperta can discriminate between more and less profitable prey. Suggestions are made as to why the population experiencing abundant food did not exhibit a narrower diet when compared to the population existing under limited food.",{"EN":114},"Prey abundance vs diet breadth in a spider test system",{"VOID":116},"[\"7394932258160004535\"]",{"VOID":118},"10.1007\u002FBF02214236","PUBLICATION","VERIFIED","2024-05-03T04:29:15.569+00:00","Auto Verify","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002FBF02214236","https:\u002F\u002Flink.springer.com\u002Fcontent\u002Fpdf\u002F10.1007\u002FBF02214236.pdf",[126],{"id":127,"sortIndex":88,"researcher":24,"roles":128,"affiliations":130,"properties":139,"displayName":141,"givenName":24,"familyName":24},"54012457-12a1-4c07-b400-9c70d04fc59a",[129],"AUTHOR",[131],{"id":132,"sortIndex":88,"affiliation":133,"properties":24},"af3204bd-df5b-4d9f-8342-e1fea7c7ad5e",{"id":132,"createTime":24,"updateTime":24,"relativeEntities":134,"slug":24,"properties":135,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":138,"statistic":24},[],{"title":136},{"VI":137},"Department of Zoology and Graduate Program in Ecology, University of Tennessee, Knoxville, USA",[],{"title":140,"gsAuthor":142},{"VI":141},"Riechert, Susan E.",{"VOID":143},"[\"pqdP9MUAAAAJ\"]","ARTICLE",{"url":123,"publisher":146,"properties":189},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":147,"slug":10,"properties":148,"entityType":22,"verifyStatus":23,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":25,"subjectFields":153,"manageAffiliations":158,"indexDatabases":169,"url":86,"thumbnailPath":24,"statistic":184,"gsStatistic":24,"type":24,"analyzePriority":24},[],{"country":149,"eissn":150,"issn":151,"title":152},{"VOID":13},{"VOID":15},{"VOID":17},{"EN":19},[154],{"id":28,"createTime":24,"updateTime":24,"relativeEntities":155,"label":156,"description":157,"parentId":24,"standard":24,"scholarHubFieldId":24},[],{"EN":31},{},[159,164],{"id":35,"createTime":24,"updateTime":24,"relativeEntities":160,"slug":24,"properties":161,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":163,"statistic":24},[],{"title":162},{"EN":39},[],{"id":42,"createTime":24,"updateTime":24,"relativeEntities":165,"slug":24,"properties":166,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":168,"statistic":24},[],{"title":167},{"EN":46},[48],[170,177],{"id":51,"indexDatabase":171,"url":64,"indexYears":24,"academicFieldIds":176,"indexDatabaseRanking":24},{"id":53,"createTime":24,"updateTime":24,"relativeEntities":172,"label":173,"description":174,"key":60,"publicationTags":175,"standard":24},[],{"EN":56,"VI":56},{"EN":58,"VI":59},[62,63],[66,67,68],{"id":70,"indexDatabase":178,"url":81,"indexYears":82,"academicFieldIds":183,"indexDatabaseRanking":85},{"id":72,"createTime":24,"updateTime":24,"relativeEntities":179,"label":180,"description":181,"key":78,"publicationTags":182,"standard":24},[],{"EN":75,"VI":75},{"EN":75,"VI":77},[80],[84],{"impactFactor":88,"impactFactorByYear":185,"i10Index":88,"i10IndexLast5Year":88,"totalPublication":90,"totalPublicationByYear":186,"totalCitation":88,"totalCitationByYear":187,"totalCitationPerPublication":88,"totalCitationPerPublicationByYear":188,"hindexLast5Year":88,"hindex":88},{},{"1987":92,"1989":93,"1990":92,"1991":92,"1992":92,"1993":93,"1995":93,"1996":92,"1997":92,"1998":93,"2000":93,"2001":93,"2002":93,"2005":92,"2006":94,"2007":95,"2008":94,"2009":92,"2010":92,"2011":96,"2012":97,"2014":97,"2015":97,"2016":92,"2017":92,"2018":93,"2019":95,"2020":94,"2021":92,"2022":97,"2023":92},{},{},{"issue":190,"pages":192,"volume":194},{"VOID":191},"3",{"VOID":193},"327-338",{"VOID":195},"5",{"total":88,"publishYear":197,"statisticByYear":198},1991,{},"1991-07-01","ERROR_IN_ANALYZE_CITATION","2026-08-19T12:04:00.365+00:00",[62,85],[204,207,210,213,219,222,225,228,231,234,237,240,243,246,249,252,255,258,261,264,267,270,273,276,279,282,285,288,291,294],{"id":24,"text":205,"url":24,"identifiers":206},"citation_journal_title=Ecology; citation_title=On foraging time allocation in a stochastic environment; citation_author=T. Caraco; citation_volume=61; citation_publication_date=1980; citation_pages=119-28; citation_id=CR1",{},{"id":24,"text":208,"url":24,"identifiers":209},"citation_journal_title=Anim. Behav.; citation_title=Foraging preferences: response to reward skew; citation_author=T. Caraco, M. Chasin; citation_volume=32; citation_publication_date=1984; citation_pages=76-85; citation_id=CR2",{},{"id":24,"text":211,"url":24,"identifiers":212},"citation_journal_title=Ecology; citation_title=Risk-sensitivity: foraging mode in an ambush predator; citation_author=T. Caraco, R. G. Gillespie; citation_volume=67; citation_publication_date=1986; citation_pages=1180-5; citation_id=CR3",{},{"id":214,"text":215,"url":216,"identifiers":217},"4c68646b-0035-4279-8000-0006b275d4fa","citation_journal_title=Nature; citation_title=Spider feeding behavior optimises dietary essential amino acid composition; citation_author=M. H. Greenstone; citation_volume=282; citation_publication_date=1978; citation_pages=501-3; citation_id=CR4","https:\u002F\u002Flink.springer.com\u002F10.1007\u002Fs10440-022-00541-7",{"doi":218},"10.1007\u002Fs10440-022-00541-7",{"id":24,"text":220,"url":24,"identifiers":221},"citation_journal_title=J. Anim. Ecol.; citation_title=The feeding biology of ant lion larvae: prey capture, handling and utilization; citation_author=D. Griffiths; citation_volume=49; citation_publication_date=1980; citation_pages=99-125; citation_id=CR5",{},{"id":214,"text":223,"url":216,"identifiers":224},"citation_journal_title=Evol. Ecol.; citation_title=Payoffs and strategies in territorial contests: ESS analyses of two ecotypes of the spiderAgelenopsis aperta",{"doi":218},{"id":24,"text":226,"url":24,"identifiers":227},"; citation_author=P. Hammerstein, S. E. Riechert; citation_volume=2; citation_publication_date=1988; citation_pages=115-38; citation_id=CR6",{},{"id":24,"text":229,"url":24,"identifiers":230},"citation_journal_title=Ecologia; citation_title=Population variation in the foraging of a spider: the role of genetics; citation_author=A. V. Hedrick, S. E. Riechert; citation_volume=80; citation_publication_date=1989; citation_pages=533-9; citation_id=CR7",{},{"id":24,"text":232,"url":24,"identifiers":233},"citation_journal_title=Behav. Ecol. Sociobiol.; citation_title=The pit-trapping foraging strategy of the ant lion,Myrmeleon immaculata (Neuroptera: Myrmeleontidae); citation_author=B. Heinrich, J. E. Heinrich; citation_volume=14; citation_publication_date=1984; citation_pages=151-60; citation_id=CR8",{},{"id":24,"text":235,"url":24,"identifiers":236},"citation_title=An Introduction to Behavioural Ecology; citation_publication_date=1981; citation_id=CR9; citation_author=J. R. Krebs; citation_author=N. B. Davies; citation_publisher=Sinauer",{},{"id":24,"text":238,"url":24,"identifiers":239},"citation_title=Morphometrics; citation_publication_date=1979; citation_id=CR10; citation_author=R. A. Pimentel; citation_publisher=Kendall Hunt",{},{"id":24,"text":241,"url":24,"identifiers":242},"citation_journal_title=Ann. Rev. Ecol. Syst.; citation_title=Optimal foraging theory: A critical review; citation_author=G. H. Pyke; citation_volume=15; citation_publication_date=1984; citation_pages=523-75; citation_id=CR11",{},{"id":24,"text":244,"url":24,"identifiers":245},"citation_journal_title=Quart. Rev. Biol.; citation_title=Optimal foraging: a selective review of theory and tests; citation_author=G. H. Pyke, H. R. Pulliam, E. L. Charnov; citation_volume=52; citation_publication_date=1977; citation_pages=137-54; citation_id=CR12",{},{"id":24,"text":247,"url":24,"identifiers":248},"citation_journal_title=Oikos; citation_title=Web-site selection in a desert spider,Agelenopsis aperta (Gertsch)",{},{"id":24,"text":250,"url":24,"identifiers":251},"; citation_author=S. E. Riechert; citation_volume=27; citation_publication_date=1976; citation_pages=311-5; citation_id=CR13",{},{"id":24,"text":253,"url":24,"identifiers":254},"citation_journal_title=Symp. Zool. Soc. London; citation_title=Energy-based territoriality in populations of the desert spider,Agelenopsis aperta (Gertsch); citation_author=S. E. Riechert; citation_volume=42; citation_publication_date=1978; citation_pages=211-22; citation_id=CR14",{},{"id":24,"text":256,"url":24,"identifiers":257},"citation_journal_title=Behav. Ecol. Sociobiol.; citation_title=Games spiders play II: resource assessment strategies; citation_author=S. E. Riechert; citation_volume=4; citation_publication_date=1979; citation_pages=1-8; citation_id=CR15",{},{"id":24,"text":259,"url":24,"identifiers":260},"citation_journal_title=Amer. Natur.; citation_title=The consequences of being terroritial: spiders, a case study; citation_author=S. E. Riechert; citation_volume=117; citation_publication_date=1981; citation_pages=871-92; citation_id=CR16",{},{"id":24,"text":262,"url":24,"identifiers":263},"citation_journal_title=Amer. Sci.; citation_title=Spider flights: a test of evolutionary game theory; citation_author=S. E. Riechert; citation_volume=4; citation_publication_date=1986; citation_pages=604-10; citation_id=CR17",{},{"id":24,"text":265,"url":24,"identifiers":266},"citation_journal_title=Ecology; citation_title=Thermal balance and prey availability: bases for a model relating web-site characteristics to spider reproductive success; citation_author=S. E. Riechert, C. R. Tracy; citation_volume=56; citation_publication_date=1975; citation_pages=265-84; citation_id=CR18",{},{"id":24,"text":268,"url":24,"identifiers":269},"citation_title=Spider foraging: behavioral repsonses to prey; citation_inbook_title=Biology of Spider Communication: Mechanisms and Ecological Signicance; citation_publication_date=1982; citation_id=CR19; citation_author=S. E. Riechert; citation_author=J. Luczak; citation_publisher=Princeton University Press",{},{"id":24,"text":271,"url":24,"identifiers":272},"citation_journal_title=Anim. Behav.; citation_title=Levels of predation and genetically based anti-predatory behavior in the spider,Agelenopsis aperta",{},{"id":24,"text":274,"url":24,"identifiers":275},"; citation_author=S. E. Riechert, A. V. Hedrick; citation_volume=40; citation_publication_date=1990; citation_pages=679-88; citation_id=CR20",{},{"id":24,"text":277,"url":24,"identifiers":278},"citation_journal_title=Ann. Entomol. Soc.; citation_title=A general weight vs length relationship for insects; citation_author=L. E. Rogers, W. T. Hinds, R. L. Buschbom; citation_volume=69; citation_publication_date=1976; citation_pages=387-9; citation_id=CR21",{},{"id":24,"text":280,"url":24,"identifiers":281},"citation_title=Biometry; citation_publication_date=1981; citation_id=CR22; citation_author=R. R. Sokal; citation_author=F. J. Rohlf; citation_publisher=W. H. Freeman",{},{"id":24,"text":283,"url":24,"identifiers":284},"citation_journal_title=Behav. Ecol. Sociobiol.; citation_title=Optimal foraging: some simple stochastic models; citation_author=D. W. Stephens, E. L. Charnov; citation_volume=10; citation_publication_date=1982; citation_pages=251-63; citation_id=CR23",{},{"id":24,"text":286,"url":24,"identifiers":287},"citation_title=Foraging Theory; citation_publication_date=1986; citation_id=CR24; citation_author=D. W. Stephens; citation_author=J. R. Krebs; citation_publisher=Princeton University Press",{},{"id":24,"text":289,"url":24,"identifiers":290},"citation_title=Maximizing net energy returns from foraging; citation_inbook_title=Physiological ecology: an evolutionary approach to resource use; citation_publication_date=1981; citation_id=CR25; citation_author=C. R. Townsend; citation_author=R. N. Hughes; citation_publisher=Sinauer Press",{},{"id":24,"text":292,"url":24,"identifiers":293},"citation_journal_title=Amer. Natur.; citation_title=Optimal foraging: on flower selection by bees; citation_author=K. D. Waddington, L. R. Holden; citation_volume=114; citation_publication_date=1979; citation_pages=179-96; citation_id=CR26",{},{"id":24,"text":295,"url":24,"identifiers":296},"citation_journal_title=Biotropica; citation_title=Prey capture and competition in the ant-lion; citation_author=D. S. Wilson; citation_volume=6; citation_publication_date=1974; citation_pages=187-93; citation_id=CR27",{},false,{"id":299,"createTime":300,"updateTime":301,"relativeEntities":302,"slug":303,"properties":304,"entityType":119,"verifyStatus":120,"verifyTime":315,"verifyNote":122,"languages":24,"translateLanguages":24,"viewCount":88,"primaryUrl":316,"fullTextUrl":24,"authors":317,"publicationType":144,"publisherRelationship":361,"citationCount":24,"citationInfo":24,"publishDate":410,"publishYear":411,"citationAnalyzeStatus":412,"lastCitationAnalyze":413,"indexDatabases":414,"openAccess":24,"references":24,"isForceReanalyzing":297},"c0880564-086f-4591-8167-1fc5ed28d10e","2024-01-25T12:15:44.060+00:00","2026-08-19T09:27:11.581+00:00",[],"Morphology-and-mitochondrial-DNA-variation-of-the-Siberian-whitefish-Coregonus-lavaretus-pidschian-Gmelin-in-the-upstream-water-bodies-of-the-Ob-and-Yenisei-Rivers",{"abstract":305,"title":307,"gsPaper":309,"references":311,"doi":313},{"EN":306},"Combining morphological, ecological and genetic analyses, we compared patterns of diversification within and among populations of the southern Siberian whitefish species Coregonus lavaretus pidschian (Gmelin) to illuminate their evolutionary history. Using sequencing data from 1,930 bp of NADH dehydrogenase subunit 1 (ND1) mitochondrial DNA regions, we documented phylogeographic relationships among populations and developed a phylogeny of mtDNA haplotypes. We found significant differences in the perforated lateral-line scale numbers within and between some populations. Clear differences in the number of gill rakers on the first branchial arch were only exhibited between populations of C. l. pidschian and Coregonus lavaretus pravdinellus Dulkeit. Concordance between different morphological groups based on two meristic traits and mtDNA patterns was also tested.",{"EN":308},"Morphology and mitochondrial DNA variation of the Siberian whitefish Coregonus lavaretus pidschian (Gmelin) in the upstream water bodies of the Ob and Yenisei Rivers",{"VOID":310},"[]",{"VOID":312},"Arzhannikov SG, Alekseev SV, Glysin AV et al (2000) Prirodnaja obstanovka v Golocene v Zapadnoj chasti Todzhinskoj vpadiny na primere razreza Merzlyj Jar (Natural environment in the Holocene in western part of Todzha Depression with an illustration of Merzlyj Jar section). In: Vaganov EA, Grachev MA, Derevyanko AP et al (eds) Problemy rekonstrukcii klimata i prirodnoj sredy Golocena i Plejstocena Sibiri (Problems of reconstruction of climate and natural environment in the Holocene and Pleistocene in Siberia). Novosibirsk, Institute of archaeology and ethnography SB RAS, vol 2, pp 18–29\nBernatchez L, Dodson JJ (1990) Allopatric origin of sympatric populations of lake whitefish (Coregonus cupeaformis) as revealed by mitochondrial-DNA restriction analysis. Evolution 44:1263–1271\nBernatchez L, Dodson JJ (1991) Phylogeographic structure in mitochondrial DNA of the lake whitefish (Coregonus clupeaformis) and its relation to Pleistocene glaciations. Evolution 45:1016–1035\nBernatchez L, Wilson CC (1998) Comparative phylogeography of Nearctic and Palearctic fishes. Mol Ecol 7:431–452\nBernatchez L, Colombani F, Dodson JJ (1991) Phylogenetic relationships among the subfamily Coregoninae as revealed by mitochondrial DNA restriction analysis. J Fish Biol 39(A):283–290\nBernatchez L, Chouinard A, Lu G (1999) Integrating molecular genetics and ecology in studies of adaptive radiation: whitefish, Coregonus sp., as a case study. Biol J Linn Soc 68:173–194\nBochkarev NA (2000) Populjacionnaja struktura sigov Teleckogo ozera (Population structure of whitefish in Lake Teletskoye). Sib Ecol J 3:305–313\nBochkarev NA, Gafina TE (1993) Sravnitel’naja harakteristika teleckogo siga i siga Pravdina Teleckogo ozera (Altajskij kraj) (Comparative analysis of Coregonus lavaretus pidschian and Coregonus lavaretus pravdinellus populations in Lake Teletskoye (Altai)). Sib Biol J 2:64–69\nBochkarev NA, Gafina TE (1996) Morfobiologicheskaja harakteristika teleckogo siga r. Chulyshman (Morphology and biology of Coregonus lavaretus pidschian in the Chulyshman River). Sib Ecol J 2:175–178\nBochkarev NA, Zuykova EI (2006) Morphobiologicheskaja i jecologicheskaja differenciacija simpatricheskih sigov roda Coregonus iz Teleckogo ozera (Morphobiological and ecological differentiation in the sympatric whitefishes of the genus Coregonus in Lake Teletskoye). Zoologicheskii Zh 85:950–958\nBochkarev NA, Zuykova EI (2009) Populjacionnaja structura siga-pyzh’jana (Coregonus lavaretus pidschian, Coregonidae) v ozerah Todzhinskoj kotloviny I v verhnem techenii reki Bol’shoj Enisej (Respublika Tyva) (Population structure of the whitefish (Coregonus lavaretus pidschian, Coregonidae) in water bodies of the Bolshoi Yenisei River basin (Tyva Region)). Zoologicheskii Zh 88:47–60\nBorutskyi EV (ed) (1974) Metodicheskoe posobie po izucheniju pitanija i piwevyh otnoshenij ryb v estestvennyh uslovijah (Methodical guide for study of feeding and food relations of fishes) Nauka, Moscow, p 254\nCronin MA, Spearman WJ, Wilmot RL et al (1993) Mitochondrial DNA variation in Chinook (Ocorhynchus tshawytscha) and chum salmon (O. keta) detected by restriction enzyme analysis of polymerase chain reaction (PCR) products. Can J Fish Aquat Sci 50:708–715\nDryagin PA (1933) Rybnye resursy Jakutii (Fish resources of Yakutia). In: Trudy soveta po izucheniju proizvoditel’nyh sil Jakutskoj ASSR (Works of council about studying of productive forces Yakut ASSR). AS USSR, Leningrad 5, pp 3–94\nDulkeit GD (1949) Ihtiofauna ozera Teleckogo i reki Bija (Ichthyofauna of Lake Teletskoye and the Biya River). Notes on Fauna and Flora of Siberia. Tomsk State University, Tomsk 8, pp 9–12\nGąsowska M (1960) Genus Coregonus L. discussed in connection with a new systematic feature that of shape and proportion of os maxillare and os supramaxillare. Annal Zool (Warszawa) 18:471–513\nGrossvald MG (1999) Evrazijskie gidrosfernye katastrofy i oledenenie Golarktiki (Cataclysmic megafloods in Eurasia and the polar ice sheets). Scientific World, Moscow, p 120\nGundrizer AN (1962) K biologii siga Pravdina iz Teleckogo ozera i reki Bija (Biology of Coregonus lavaretus pravdinellus in Lake Teletskoye and the Biya River). In: Proceedings of Siberian branch AS USSR 3, pp 111–119\nGundrizer AN (1978) K sistematike i jekologii sigov Tuvinskoj ASSR (Systematic and ecology of whitefishes in water bodies of Tuva ASSR). Issues of Biology, Tomsk, pp 20–42\nGundrizer AN, Ioganzen BG, Kafanova VV et al (1981) Ryby Teleckogo ozera (Fishes from Lake Teletskoye). Nauka, Novosibirsk\nGundrizer AN, Ioganzen BG, Krivoshchekov GM (1984) Ryby Zapadnoj Sibiri (Fishes in water bodies of Western Siberia). Tomsk State University, Tomsk, p 160\nIogansen BG, Moiseev VP (1955) Karakol’skij sig iz Vostochnogo Altaja (Whitefish in Lake Karakul of Eastern Altai). Notes on fauna and flora of Siberia. Tomsk State University, Tomsk, pp 25–30\nKahilainen KK, Østbye K (2006) Morphological differentiation and resource polymorphism in three sympatric whitefish Coregonus lavaretus (L.) forms in a subarctic lake. J Fish Biol 68:63–79\nKahilainen K, Alajärvi E, Lehtonen H (2005) Planktivory and diet-overlap of densely rakered whitefish (Coregonus lavaretus (L.)) in a subarctic lake. Ecol Fresh Fish 14:50–58\nKahilainen KK, Malinen T, Tuomaala A et al (2007) Empirical evaluation of phenotype–environment correlation and trait utility with allopatric and sympatric whitefish, Coregonus lavaretus (L.), populations in subarctic lakes. Biol J Linn Soc 92:561–572\nKohlmann K, Kempter J, Kersten P et al (2005) Haplotype variability at the mithochondrial ND-1 gene region of Coregonus lavaretus from Polish lakes. Arch Hydrobiol Special Issues Advanc Limnol 60:47–57\nKottelat M, Freyhof J (2007) Handbook of European freshwater fishes. Kottelat, Switzerland and Freyhof. Cornol, Berlin\nLobovikova AA (1959) O nahozhdenii Teleckogo siga (Coregonus lavaretus pidschian natio smitti Warpachowski) v ozere Chernom bassejna srednego Eniseja (The occurrence of teletskyi whitefish (Coregonus lavaretus pidschian natio smitti Warpachowski) in Lake Chyornoye of middle upstream of the Yenisei River). J Ichthyol 13:55–58\nMcPhail JD, Lindsey CC (1970) Freshwater fishes of northwestern Canada and Alaska. Fisheries Research Board of Canada. Bulletin 173, p 381\nMehner T, Pohlmann K, Elkin C, Monaghan MT, Nitz B, Freyhof J (2010) Genetic population structure of sympatric and allopatric populations of Baltic ciscoes (Coregonus albula complex, Teleostei, Coregonidae). BMC Evol Biol 10:85\nMiya M, Nishida M (2000) Use of mitogenomic information in Teleostean molecular phylogenetics: a tree-based exploration under the maximum-parsimony optimality criterion. Mol Phyl Evol 17:437–455\nMookerji N, Heller C, Meng HJ et al (1998) Diel and seasonal patterns of food intake and prey selection by Coregonus sp. in re-oligotrophicated Lake Lucerne, Switzerland. J Fish Biol 52:443–457\nØstbye K, Næsle TF, Bernatchez L et al (2004) Morphological divergence and origin of sympatric populations of European whitefish (Coregonus lavaretus L.) in Lake Femund, Norway. J Evol Biol 18:683–702\nØstbye K, Bernatchez L, Næsje TF et al (2005) Evolutionary history of the European whitefish Coregonus lavaretus (L.) species complex as inferred from mtDNA phylogeography and gill-raker numbers. Mol Ecol 14:4371–4387\nØstbye K, Amundsen P-A, Bernatchez L et al (2006) Parallel evolution of ecomorphological traits in the European whitefish Coregonus lavaretus (L.) species complex during postglacial times. Mol Ecol 15:3983–4001\nPolitov DV, Bickham JW, Patton JC (2004) Molecular phylogeography of Palearctic and Nearctic ciscoes. Ann Zool Fenn 41:13–23\nReshetnikov YS (1980) Jekologija i sistematika sigovyh ryb (Ecology and systematics of coregonids). Nauka, Moscow\nReshetnikov YS (2004) Coregonid fishes in Arctic waters. Ann Zool Fenn 41:3–11\nSaitou N, Nei M (1987) The neighbor-joining method: a new method for reconstructing phylogenetic trees. Mol Biol Evol 4:6–25\nSambrook J, Fritsch EF, Maniatis T (1989) Molecular cloning: a laboratory manual, 2nd edn. Cold Spring Harbor Laboratory Press, New York\nSchulz M, Freyhof J, Saint-Laurent R et al (2006) Evidence for independent origin of two spring-spawning ciscoes (Salmoniformes: Coregonidae) in Germany. J Fish Biol 68(A):119–135\nSelegei VV, Selegei TS (1978) Teleckoe ozero (Lake Teletskoye). Gidrometeoizdat, Leningrad\nSelegei V, Dehannschutter B, Klerkx J et al (eds) (2001) Physical and geographical environment of Lake Teletskoye. Royal Museum of Central Africa, Tervuren, Belgium, vol 105, p 310\nSkryabin AG (1979) Sigovye ryby juga Sibiri (Coregonid fishes in water bodies of South Siberia). Nauka, Novosibirsk\nSvärdson G (1979) Speciation of Scandinavian Coregonus. Report of the Institute for Freshwater Research Drottningholm 57, pp 1–95\nTamura K, Dudley J, Nei M, Kumar S (2007) MEGA4: Molecular evolutionary genetics analysis (MEGA) software version 4.0. Mol Biol Evol 24:1596–1599\nTurgeon J, Estoup A, Bernatchez L (1999) Species flock in the North American Great Lakes: molecular ecology of Lake Nipigon ciscoes (Teleostei: Coregonidae: Coregonus). Evolution 53:1857–1871\nZapekina-Dulkeit YI, Dulkeit GD (1956) Zoobentos Kamginskogo zaliva Teleckogo ozera i ego znachenie v pitanii ryb (Zoobenthos in Kamga Bay of Lake Teletskoye and its significance in diet of fishes). In: Proceedings of all-union hydrobiological society AS USSR 7, pp 216–236\nZuykova EI, Bochkarev NA (2008) Specific features of structure and functioning of gill-jaw apparatus of whitefish Coregonus lavaretus pravdinellus. J Ichthyol 48:736–745\nZuykova EI, Bochkarev NA (2009) A description of pelagic zooplankton in large lakes of the Todzha Depression (the Bolshoi Yenisei River basin, Tuva). Inland Water Biol 2(1):50–58",{"VOID":314},"10.1007\u002Fs10682-010-9437-7","2024-09-13T06:43:09.639+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs10682-010-9437-7",[318,333,346],{"id":319,"sortIndex":88,"researcher":24,"roles":320,"affiliations":321,"properties":330,"displayName":332,"givenName":24,"familyName":24},"adb37466-4af3-4ee2-8c2d-e1c3a656a418",[129],[322],{"id":323,"sortIndex":88,"affiliation":324,"properties":24},"6032db1f-b6ab-47b6-9561-0acb0e710adc",{"id":323,"createTime":24,"updateTime":24,"relativeEntities":325,"slug":24,"properties":326,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":329,"statistic":24},[],{"title":327},{"VI":328},"Institute of Systematics and Ecology of Animals, Siberian Branch of the Russian Academy of Sciences, Novosibirsk, Russia",[],{"title":331},{"VI":332},"Nickolai A. Bochkarev",{"id":334,"sortIndex":93,"researcher":24,"roles":335,"affiliations":336,"properties":343,"displayName":345,"givenName":24,"familyName":24},"b9ec42d8-9850-46f7-962a-e89c7ad7e2d2",[129],[337],{"id":323,"sortIndex":88,"affiliation":338,"properties":24},{"id":323,"createTime":24,"updateTime":24,"relativeEntities":339,"slug":24,"properties":340,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":342,"statistic":24},[],{"title":341},{"VI":328},[],{"title":344},{"VI":345},"Elena I. Zuykova",{"id":347,"sortIndex":92,"researcher":24,"roles":348,"affiliations":349,"properties":358,"displayName":360,"givenName":24,"familyName":24},"affc6061-c4d7-426b-9071-26bc6cc45bc7",[129],[350],{"id":351,"sortIndex":88,"affiliation":352,"properties":24},"1716d580-f43c-4bf2-8760-43e6f89c3702",{"id":351,"createTime":24,"updateTime":24,"relativeEntities":353,"slug":24,"properties":354,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":357,"statistic":24},[],{"title":355},{"VI":356},"Institute of Cytology and Genetics, Siberian Branch of the Russian Academy of Sciences, Novosibirsk, Russia",[],{"title":359},{"VI":360},"Alexey V. Katokhin",{"url":316,"publisher":362,"properties":405},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":363,"slug":10,"properties":364,"entityType":22,"verifyStatus":23,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":25,"subjectFields":369,"manageAffiliations":374,"indexDatabases":385,"url":86,"thumbnailPath":24,"statistic":400,"gsStatistic":24,"type":24,"analyzePriority":24},[],{"country":365,"eissn":366,"issn":367,"title":368},{"VOID":13},{"VOID":15},{"VOID":17},{"EN":19},[370],{"id":28,"createTime":24,"updateTime":24,"relativeEntities":371,"label":372,"description":373,"parentId":24,"standard":24,"scholarHubFieldId":24},[],{"EN":31},{},[375,380],{"id":35,"createTime":24,"updateTime":24,"relativeEntities":376,"slug":24,"properties":377,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":379,"statistic":24},[],{"title":378},{"EN":39},[],{"id":42,"createTime":24,"updateTime":24,"relativeEntities":381,"slug":24,"properties":382,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":384,"statistic":24},[],{"title":383},{"EN":46},[48],[386,393],{"id":51,"indexDatabase":387,"url":64,"indexYears":24,"academicFieldIds":392,"indexDatabaseRanking":24},{"id":53,"createTime":24,"updateTime":24,"relativeEntities":388,"label":389,"description":390,"key":60,"publicationTags":391,"standard":24},[],{"EN":56,"VI":56},{"EN":58,"VI":59},[62,63],[66,67,68],{"id":70,"indexDatabase":394,"url":81,"indexYears":82,"academicFieldIds":399,"indexDatabaseRanking":85},{"id":72,"createTime":24,"updateTime":24,"relativeEntities":395,"label":396,"description":397,"key":78,"publicationTags":398,"standard":24},[],{"EN":75,"VI":75},{"EN":75,"VI":77},[80],[84],{"impactFactor":88,"impactFactorByYear":401,"i10Index":88,"i10IndexLast5Year":88,"totalPublication":90,"totalPublicationByYear":402,"totalCitation":88,"totalCitationByYear":403,"totalCitationPerPublication":88,"totalCitationPerPublicationByYear":404,"hindexLast5Year":88,"hindex":88},{},{"1987":92,"1989":93,"1990":92,"1991":92,"1992":92,"1993":93,"1995":93,"1996":92,"1997":92,"1998":93,"2000":93,"2001":93,"2002":93,"2005":92,"2006":94,"2007":95,"2008":94,"2009":92,"2010":92,"2011":96,"2012":97,"2014":97,"2015":97,"2016":92,"2017":92,"2018":93,"2019":95,"2020":94,"2021":92,"2022":97,"2023":92},{},{},{"pages":406,"volume":408},{"VOID":407},"557-572",{"VOID":409},"25","2010-10-16",2010,"ERROR_IN_GET_PLATFORM_ID","2026-08-19T09:27:11.580+00:00",[62,85],{"id":416,"createTime":417,"updateTime":418,"relativeEntities":419,"slug":420,"properties":421,"entityType":119,"verifyStatus":120,"verifyTime":431,"verifyNote":122,"languages":24,"translateLanguages":24,"viewCount":88,"primaryUrl":432,"fullTextUrl":24,"authors":433,"publicationType":144,"publisherRelationship":449,"citationCount":24,"citationInfo":24,"publishDate":498,"publishYear":499,"citationAnalyzeStatus":412,"lastCitationAnalyze":500,"indexDatabases":501,"openAccess":24,"references":24,"isForceReanalyzing":297},"70f39ea7-394c-4492-8145-bc0f57b78ba9","2024-01-12T21:40:15.815+00:00","2026-07-17T15:04:29.042+00:00",[],"The-role-of-climatic-niche-divergence-in-the-speciation-of-the-genus-Neurergus-An-inter-and-intraspecific-survey",{"abstract":422,"title":424,"gsPaper":426,"references":427,"doi":429},{"EN":423},"Variations in climatic conditions over space and time play an important role in speciation. In this study, climate variables that may be influencing the evolution of the genus Neurergus were explored at both interspecific levels for the four recognized species (N. strauchii, N. crocatus, N. derjugini, and N. kaiseri) and intraspecific levels for three of the species. This was accomplished by predictions in geographical (G)-space using an ensemble of ten algorithms and ordination techniques, which included equivalency and background statistics of niche overlap and niche divergence tests in environmental (E)-space. At the interspecific level, results revealed significant evidence for niche divergence in species’ bioclimatic preferences, supporting the hypothesis that niche divergence drives Neurergus diversification. These patterns, however, were not found at the intraspecific level and were identical in their environmental niches. Results of the present study provide an important insight into the evolutionary history of Neurergus in the Near East and help to elucidate how environmental changes contributed to lineage diversification.",{"EN":425},"The role of climatic niche divergence in the speciation of the genus Neurergus: An inter-and intraspecific survey",{"VOID":310},{"VOID":428},"Abrahms B, Welch H, Brodie S et al (2019) Dynamic ensemble models to predict distributions and anthropogenic risk exposure for highly mobile species. Divers Distrib 25:1182–1193\nAckerly DD, Schwilk DW, Webb CO (2006) Niche evolution and adaptive radiation: testing the order of trait divergence. Ecology 87:S50–S61\nAfroosheh M, Rödder D, Mikulicek P et al (2019) Mitochondrial DNA variation and Quaternary range dynamics in the endangered Yellow Spotted Mountain Newt, Neurergus derjugini (Caudata, Salamandridae). J Zool Syst Evol Res 57:580–590\nAfroosheh M, Sharifi M (2014) Studying migratory activity and home range of adult Neurergus microspilotus (NESTEROV, 1916) in the Kavat Stream, western Iran, using photographic identification (Caudata: Salamandridae). Herpetozoa 27:77–82\nAlberdi A, Gilbert MTP, Razgour O et al (2015) Contrasting population-level responses to Pleistocene climatic oscillations in an alpine bat revealed by complete mitochondrial genomes and evolutionary history inference. J Biogeogr 42:1689–1700\nAllouche O, Tsoar A, Kadmon R (2006) Assessing the accuracy of species distribution models: prevalence, kappa and the true skill statistic (TSS). J Appl Ecol 43:1223–1232\nAlvarado-Serrano DF, Knowles LL (2014) Ecological niche models in phylogeographic studies: applications, advances and precautions. Mol Ecol Resour 14:233–248\nAlexander Pyron R, Burbrink FT (2009) Lineage diversification in a widespread species: roles for niche divergence and conservatism in the common kingsnake, Lampropeltis getula. Mol Ecol 18:3443–3457\nAraújo MB, New M (2007) Ensemble forecasting of species distributions. Trends Ecol Evol 22:42–47\nArenas-Castro S, Gonçalves J, Alves P et al (2018) Assessing the multi-scale predictive ability of ecosystem functional attributes for species distribution modelling. PLoS ONE 13:e0199292\nAshrafzadeh MR, Naghipour AA, Haidarian M et al (2019) Effects of climate change on habitat and connectivity for populations of a vulnerable, endemic salamander in Iran. Glob Ecol Conserv 19:e00637\nBarabanov AV, Litvinchuk SN (2015) A new record of the Kurdistan newt (Neurergus derjugini) in Iran and potential distribution modeling for the species. Russ J Herpetol 22:107–115\nBeale CM, Lennon JJ, Gimona A (2008) Opening the climate envelope reveals no macroscale associations with climate in European birds. Proc Natl Acad Sci 105:14908–14912\nBeebee TJC, Griffiths RA (2005) The amphibian decline crisis: a watershed for conservation biology? Biol Conserv 125:271–285\nBogaerts S, Pasmans F, Woeltjes T (2006) Ecology and conservation aspects of Neurergus strauchii (Amphibia: Salamandridae). Proceedings of 13th Congress of the Societas Europaea Herpetologica; Bonn\nBovo RP, Navas CA, Tejedo M et al (2018) Ecophysiology of Amphibians: Information for Best Mechanistic Models. Divers 10:118\nBroennimann O, Fitzpatrick MC, Pearman PB et al (2012) Measuring ecological niche overlap from occurrence and spatial environmental data. Glob Ecol Biogeogr 21:481–497\nBrown JL, Carnaval AC (2019) A tale of two niches: methods, concepts, and evolution. Front Biogeogr 11:e44158\nCalatayud J, Rodríguez M, Molina-Venegas R et al (2019) Pleistocene climate change and the formation of regional species pools. Proc R Soc B 286:20190291\nCadena CD, Kozak KH, Gómez JP et al (2012) Latitude, elevational climatic zonation and speciation in New World vertebrates. Proc R Soc B Biol Sci 279:194–201\nCheng H, Sinha A, Cruz FW et al (2013) Climate change patterns in Amazonia and biodiversity. Nat Commun 4:1–6\nÇiçek K, Koyun M, Mermer A, Tok CV (2020) Food composition of a breeding population of the endemic anatolia newt, Neurergus strauchii (Steindachner, 1887) (caudata: Salamandridae), from Bingöl, eastern Turkey. Acta Herpetol 15:105–110\nCollart F, Hedenäs L, Broennimann O et al (2021) Intraspecific differentiation: Implications for niche and distribution modelling. J Biogeogr 48:415–426\nCollins JP (2010) Amphibian decline and extinction: what we know and what we need to learn. Dis Aquat Organ 92:93–99\nCollins JP, Storfer A (2003) Global amphibian declines: sorting the hypotheses. Divers Distrib 9:89–98\nCuervo PF, Flores FS, Venzal JM, Nava S (2021) Niche divergence among closely related taxa provides insight on evolutionary patterns of ticks. J Biogeogr 48:2865–2876\nDe Kort H, Prunier JG, Ducatez S et al (2021) Life history, climate and biogeography interactively affect worldwide genetic diversity of plant and animal populations. Nat Commun 12:1–11\nDi Cola V, Broennimann O, Petitpierre B et al (2017) ecospat: an R package to support spatial analyses and modeling of species niches and distributions. Ecography 40:774–787\nDool SE, Picker MD, Eberhard MJB (2022) Limited dispersal and local adaptation promote allopatric speciation in a biodiversity hotspot. Mol Ecol 31:279–295\nDynesius M, Jansson R (2000) Evolutionary consequences of changes in species’ geographical distributions driven by Milankovitch climate oscillations. Proc Natl Acad Sci 97:9115–9120\nElith J, Graham H, Anderson CP et al (2006) Novel methods improve prediction of species’ distributions from occurrence data. Ecography 29:129–151\nEnriquez-Urzelai U, Kearney MR, Nicieza AG, Tingley R (2019) Integrating mechanistic and correlative niche models to unravel range-limiting processes in a temperate amphibian. Glob Chang Biol 25:2633–2647\nFarasat H, Akmali V, Sharifi M (2016) Population genetic structure of the endangered Kaiser’s mountain newt, Neurergus kaiseri (Amphibia: Salamandridae). PLoS ONE 11:e0149596\nFord AGP, Rüber L, Newton J et al (2016) Niche divergence facilitated by fine-scale ecological partitioning in a recent cichlid fish adaptive radiation. Evolution 70:2718–2735\nForester BR, DeChaine EG, Bunn AG (2013) Integrating ensemble species distribution modelling and statistical phylogeography to inform projections of climate change impacts on species distributions. Divers Distrib 19:1480–1495\nGalbreath KE, Hafner DJ, Zamudio KR (2009) When cold is better: climate-driven elevation shifts yield complex patterns of diversification and demography in an alpine specialist (American pika, Ochotona princeps). Evol Int J Org Evol 63:2848–2863\nGoudarzi F, Hemami M-R, Malekian M et al (2021) Species versus within-species niches: a multi-modelling approach to assess range size of a spring-dwelling amphibian. Sci Rep 11:597\nGoudarzi F, Hemami M-R, Rancilhac L et al (2019) Geographic separation and genetic differentiation of populations are not coupled with niche differentiation in threatened Kaiser’s spotted newt (Neurergus kaiseri). Sci Rep 9:6239\nGraham C, Ron S, Santos J et al (2004) Integrating phylogenetics and environmental niche models to explore speciation mechanisms in dendrobatid frogs. Evolution 58:1781–1793\nGrant EHC, Zipkin EF, Nichols JD, Campbell JP (2013) A Strategy for monitoring and managing declines in an amphibian community. Conserv Biol 27:1245–1253\nGuisan A, Thuiller W, Zimmermann NE (2018) Habitat suitability and distribution models. With Applications in R. Cambridge University Press\nHanson JO, Rhodes JR, Butchart SHM et al (2020) Global conservation of species’ niches. Nature 580:232–234\nHao T, Elith J, Guillera-Arroita G, Lahoz‐Monfort JJ (2019) A review of evidence about use and performance of species distribution modelling ensembles like BIOMOD. Divers Distrib 25:839–852\nHays JD, Imbrie J, Shackleton NJ (1976) Variations in the Earth’s orbit: pacemaker of the ice ages. American Association for the Advancement of Science Washington, DC\nHeikkinen RK, Luoto M, Araújo MB et al (2006) Methods and uncertainties in bioclimatic envelope modelling under climate change. Prog Phys Geogr 30:751–777\nHendrix R, Fleck J, Schneider W et al (2014) First comprehensive insights into nuclear and mitochondrial DNA based population structure of Near East mountain brook newts (Salamandridae: genus Neurergus) suggest the resurrection of Neurergus derjugini. Amphibia-Reptilia 35:173–187\nHeydari N, Hosseinian Yousefkhani SS, Faizi H (2021) Comments on the distribution and population estimation of Neurergus derjugini (Urodela, Salamandridae) in western Iran. J Wildl Biodivers 5:68–81\nHoskin CJ, Tonione M, Higgie M et al (2011) Persistence in peripheral refugia promotes phenotypic divergence and speciation in a rainforest frog. Am Nat 178:561–578\nHua X, Wiens JJ (2010) Latitudinal variation in speciation mechanisms in frogs. Evol Int J Org Evol 64:429–443\nHua X, Wiens JJ (2013) How does climate influence speciation? Am Nat 182:1–12\nIUCN SSC Amphibian Specialist Group (2016) Neurergus kaiseri. The IUCN Red List of Threatened Species 2016: e.T59450A49436271. https:\u002F\u002Fdoi.org\u002F10.2305\u002FIUCN.UK.2016-3.RLTS.T59450A49436271.en. Downloaded on 05 October 2021\nJehle R (2010) Predicting the fate of metapopulations is aided by DNA fingerprinting of individuals. Anim Conserv 13:125–126\nJehle R, Arntzen JW (2000) Post-breeding migrations of newts (Triturus cristatus and T. marmoratus) with contrasting ecological requirements. J Zool 251:297–306\nJohannesson K (2001) Parallel speciation: a key to sympatric divergence. Trends Ecol Evol 16:148–153\nKaky E, Nolan V, Alatawi A, Gilbert F (2020) A comparison between Ensemble and MaxEnt species distribution modelling approaches for conservation: A case study with Egyptian medicinal plants. Ecol Inf 60:101150\nKarger DN, Conrad O, Böhner J et al (2017) Climatologies at high resolution for the earth’s land surface areas. Sci data 4:1–20\nKindt R (2018) Ensemble species distribution modelling with transformed suitability values. Environ Model Softw 100:136–145\nKnouft JH, Losos JB, Glor RE, Kolbe JJ (2006) Phylogenetic analysis of the evolution of the niche in lizards of the Anolis sagrei group. Ecology 87:S29–S38\nKozak KH, Wiens J (2006) Does niche conservatism promote speciation? A case study in North American salamanders. Evolution 60:2604–2621\nKozak KH, Wiens JJ (2007) Climatic zonation drives latitudinal variation in speciation mechanisms. Proc R Soc B Biol Sci 274:2995–3003\nKozak KH, Wiens JJ (2010a) Accelerated rates of climatic-niche evolution underlie rapid species diversification. Ecol Lett 13:1378–1389\nKozak KH, Wiens JJ (2010b) Niche conservatism drives elevational diversity patterns in Appalachian salamanders. Am Nat 176:40–54\nKurnaz M, Şahin MK (2021) A contribution to the biogeography and taxonomy of two Anatolian mountain brook newts, Neurergus barani and N. strauchii (Amphibia: Salamandridae) using ecological niche modeling. Turkish J Zool 45:54–64\nLee S, Jung H, Choi J (2021) Projecting the impact of climate change on the spatial distribution of six subalpine tree species in South Korea using a multi-model ensemble approach. Forests 12:37\nLi Q, Grossenbacher DL, Angert AL (2018) The effect of range overlap on ecological niche divergence depends on spatial scale in monkeyflowers. Evolution 72:2100–2113\nMaia-Carvalho B, Vale CG, Sequeira F et al (2018) The roles of allopatric fragmentation and niche divergence in intraspecific lineage diversification in the common midwife toad (Alytes obstetricans). J Biogeogr 45:2146–2158\nMalekoutian M, Sharifi M, Vaissi S (2020) Mitochondrial DNA sequence analysis reveals multiple Pleistocene glacial refugia for the Yellow-spotted mountain newt, Neurergus derjugini (Caudata: Salamandridae) in the mid-Zagros range in Iran and Iraq. Ecol Evol 10:2661–2676\nMalekoutian M, Sharifi M, Vaissi S (2021) Potential impact of climate change on the distribution of the Yellow-spotted mountain newt Neurergus derjugini (Nesterov, 1916). Environ Sci 19:199–216\nMarmion M, Parviainen M, Luoto M et al (2009) Evaluation of consensus methods in predictive species distribution modelling. Divers Distrib 15:59–69\nMcCormack JE, Zellmer AJ, Knowles LL (2010) Does niche divergence accompany allopatric divergence in Aphelocoma jays as predicted under ecological speciation?: insights from tests with niche models. Evol Int J Org Evol 64:1231–1244\nMoritz C, Patton JL, Schneider CJ, Smith TB (2000) Diversification of rainforest faunas: an integrated molecular approach. Annu Rev Ecol Syst 31:533–563\nMüllner A (2001) Spatial patterns of migrating great crested newts and smooth newts: the importance of the terrestrial habitat surrounding the breeding pond. Rana 4:279–293\nNunes LA, Pearson RG (2017) A null biogeographical test for assessing ecological niche evolution. J Biogeogr 44:1331–1343\nOlgun K, Avcı A, Bozkurt E et al (2015) Range extensions of two salamanders [Neurergus strauchii (Steindachner, 1887) and Salamandra infraimmaculata martens, 1885] (caudata: Salamandridae) from anatolia, Turkey. Russ J Herpetol 22:289–296\nÖzdemir N, Üzüm N, Avci A, Olgun K (2009) Phylogeny of Neurergus crocatus and Neurergus strauchii in Turkey based on morphological and molecular data. Herpetologica 65:280–291\nPapenfuss T, Sparreboom M, Tok V et al (2009a) Neurergus strauchii. The IUCN Red List of Threatened Species 2009: e.T14735A4458797. https:\u002F\u002Fdx.doi.org\u002F10.2305\u002FIUCN.UK.2009.RLTS.T14735A4458797.en. Downloaded on 05 October 2021\nPapenfuss T, Sparreboom M, Ugurtas IH et al (2009b) Neurergus crocatus (errata version published in 2016). The IUCN Red List of Threatened Species 2009: e.T14734A86247230. https:\u002F\u002Fdx.doi.org\u002F10.2305\u002FIUCN.UK.2009.RLTS.T14734A4458480.en. Downloaded on 05 October 2021\nPearman PB, Guisan A, Broennimann O, Randin CF (2008) Niche dynamics in space and time. Trends Ecol Evol 23:149–158\nPeterson AT, Soberón J, Pearson RG et al (2011) Ecological niches and geographic distributions (MPB-49). Princeton University Press\nPeterson AT, Soberón J, Sánchez-Cordero V (1999) Conservatism of ecological niches in evolutionary time. Science 285:1265–1267\nPetitpierre B, Kueffer C, Broennimann O et al (2012) Climatic niche shifts are rare among terrestrial plant invaders. Science 335:1344–1348\nPhillips SJ, Anderson RP, Schapire RE (2006) Maximum entropy modeling of species geographic distributions. Ecol Modell 190:231–259\nQiao H, Peterson AT, Campbell LP et al (2016) NicheA: creating virtual species and ecological niches in multivariate environmental scenarios. Ecography 39:805–813\nRamirez-Reyes C, Nazeri M, Street G et al (2021) Embracing ensemble species distribution models to inform at-risk species status assessments. J Fish Wildl Manag 12:98–111\nRancilhac L, Goudarzi F, Gehara M et al (2019) Phylogeny and species delimitation of near Eastern Neurergus newts (Salamandridae) based on genome-wide RADseq data analysis. Mol Phylogenet Evol 133:189–197\nRather TA, Kumar S, Khan JA (2020) Multi-scale habitat modelling and predicting change in the distribution of tiger and leopard using random forest algorithm. Sci Rep 10:111473–111419\nRazgour O, Forester B, Taggart JB et al (2019) Considering adaptive genetic variation in climate change vulnerability assessment reduces species range loss projections. Proc Natl Acad Sci 116:10418 LP – 10423\nRodríguez-Rodríguez EJ, Beltrán JF, Tejedo M et al (2020) Niche models at inter-and intraspecific levels reveal hierarchical niche differentiation in midwife toads. Sci Rep 10:10942\nRundle HD, Nosil P (2005) Ecological speciation. Ecol Lett 8:336–352\nSalehi T, Akmali V, Sharifi M (2019) Population genetic structure of the endangered yellow spotted mountain newt (Neurergus derjugini: Amphibia, Caudata) inferred from mitochondrial DNA sequences. Herpetol J 29:37–47\nSänen KR, Laurila A, Merilä J (2003) Geographic variation in acid stress tolerance of the moor frog, Rana arvalis. I. Local adaptation. Evolution 57:352–362\nSchluter D (2001) Ecology and the origin of species. Trends Ecol Evol 16:372–380\nSchluter D (2009) Evidence for ecological speciation and its alternative. Science 323:737–741\nSeeholzer GF, Claramunt S, Brumfield RT (2017) Niche evolution and diversification in a Neotropical radiation of birds (Aves: Furnariidae). Evolution 71:702–715\nSharifi M, Farasat H, Barani-Beiranv H et al (2013) Notes on the distribution and abundance of the endangered Kaiser’s Mountain Newt, Neurergus kaiseri (Caudata: Salamandridae), in southwestern Iran. Herpetol Conserv Biol 8:724–731\nSharifi M, Shafiei Bafti S, Papenfuss T et al (2009) Neurergus microspilotus (errata version published in 2016). The IUCN Red List of Threatened Species 2009: e.T59451A86642381. https:\u002F\u002Fdx.doi.org\u002F10.2305\u002FIUCN.UK.2009.RLTS.T59451A11944058.en. Downloaded on 22 March 2021\nSkelly DK, Yurewicz KL, Werner EE, Relyea RA (2003) Estimating decline and distributional change in amphibians. Conserv Biol 17:744–751\nSmith AB, Godsoe W, Rodríguez-Sánchez F et al (2019) Niche estimation above and below the Species level. Trends Ecol Evol 34:260–273\nSmith BT, McCormack JE, Cuervo AM et al (2014) The drivers of tropical speciation. Nature 515:406–409\nSteinfartz S, Hwang UW, Tautz D et al (2002) Molecular phylogeny of the salamandrid genus Neurergus: evidence for an intrageneric switch of reproductive biology. Amphibia-Reptilia 23:419–431\nStokstad E (2004) Global survey documents puzzling decline of amphibians. Science 306:391\nStorfer A, Murphy MA, Spear SF et al (2010) Landscape genetics: where are we now? Mol Ecol 19:3496–3514\nStuart SN, Chanson JS, Cox NA et al (2004) Status and trends of amphibian declines and extinctions worldwide. Science 306:1783–1786\nThuiller W, Lafourcade B, Engler R, Araújo MB (2009) BIOMOD–a platform for ensemble forecasting of species distributions. Ecography 32:369–373\nTocchio LJ, Gurgel-Gonçalves R, Escobar LE, Peterson AT (2015) Niche similarities among white‐eared opossums (Mammalia, Didelphidae): Is ecological niche modelling relevant to setting species limits? Zool Scr 44:1–10\nTok C, Koyun M, Çiçek K (2016) Predicting the current and future potential distributions of Anatolia Newt, Neurergus strauchii (Steindachner, 1887), with a new record from Elazığ (Eastern Anatolia, Turkey). Biharean Biol 10:104–108\nVaissi S, Rezaei S (2022) Niche divergence at intraspecific level in the Hyrcanian wood frog, Rana pseudodalmatina: a phylogenetic, climatic, and environmental survey. Front Ecol Evol 20:774481\nVaissi S (2021a) Historic range dynamics in Kaisers’s mountain newt (Neurergus kaiseri): insights from phylogeographic analyses and species distribution modelling. Ecol Evol 11:7622–7633\nVaissi S (2021b) Design of protected area by tracking and excluding the effects of climate and landscape change: a case study using Neurergus derjugini. Sustainability 13:5645\nVaissi S (2021c) Potential changes in the distributions of Near Eastern fire salamander (Salamandra infraimmaculata) in response to historical, recent and future climate change in the Near and Middle East: implication for conservation and management. Glob Ecol Conserv 29:e01730\nVaissi S, Sharifi M (2019) Integrating multi-criteria decision analysis with a GIS-based siting procedure to select a protected area for the Kaiser’s mountain newt, Neurergus kaiseri (Caudata: Salamandridae). Glob Ecol Conserv 20:e00738\nVaissi S, Sharifi M (2021) The least-cost path analysis of landscape genetics identifies two dispersal routes for the threatened Kaiser’s mountain newt (Caudata: Salamandridae). J Zool Syst Evol Res 59:1491–1502\nWang R, Ma L (2016) Climate-driven C 4 plant distributions in China: divergence in C 4 taxa. Sci Rep 6:27977\nWarren DL, Glor RE, Turelli M (2010) ENMTools: a toolbox for comparative studies of environmental niche models. Ecography 33:607–611\nWarren DL, Glor RE, Turelli M (2008) Environmental niche equivalency versus conservatism: quantitative approaches to niche evolution. Evol Int J Org Evol 62:2868–2883\nWarren DL, Matzke NJ, Cardillo M et al (2021) ENMTools 1.0: an R package for comparative ecological biogeography. Ecography 44:504–511\nWisz MS, Guisan A (2009) Do pseudo-absence selection strategies influence species distribution models and their predictions? An information-theoretic approach based on simulated data. BMC Ecol 9:1–16\nWoeltjes T, Bogaerts S, Carranza S, Pasmans F (2006) Biogeography of Neurergus strauchii barani Öz, 1994 and N. s. strauchii (Steindachner, 1887) (Amphibia: Salamandridae) assessed using morphological and molecular data. Amphibia-Reptilia 27:281–288\nWoodman SM, Forney KA, Becker EA et al (2019) Esdm: a tool for creating and exploring ensembles of predictions from species distribution and abundance models. Methods Ecol Evol 10:1923–1933\nXue C, Geng F, Li J et al (2021) Divergence in the Aquilegia ecalcarata complex is correlated with geography and climate oscillations: Evidence from plastid genome data. Mol Ecol 30:5796–5813\nYildiz MZ, Bozkurt MA, Akman B et al (2018) Some new records of Anatolia Newt, Neurergus strauchii (Steindacher 1887) from Eastern Anatolia, Turkey. Biol Divers Conserv 11:120–124\nYu F, Groen TA, Wang T et al (2017) Climatic niche breadth can explain variation in geographical range size of alpine and subalpine plants. Int J Geogr Inf Sci 31:190–212\nZimmermann NE, Yoccoz NG, Edwards TC et al (2009) Climatic extremes improve predictions of spatial patterns of tree species. Proc Natl Acad Sci 106:19723–19728",{"VOID":430},"10.1007\u002Fs10682-022-10172-x","2024-06-26T13:19:01.194+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs10682-022-10172-x",[434],{"id":435,"sortIndex":88,"researcher":24,"roles":436,"affiliations":437,"properties":446,"displayName":448,"givenName":24,"familyName":24},"bf55e1c1-c1ea-4527-a3c5-41d7c993e40b",[129],[438],{"id":439,"sortIndex":88,"affiliation":440,"properties":24},"e8791294-2b95-438b-91e9-02a511f2c667",{"id":439,"createTime":24,"updateTime":24,"relativeEntities":441,"slug":24,"properties":442,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":445,"statistic":24},[],{"title":443},{"VI":444},"Department of Biology, Faculty of Science, Razi University, Kermanshah, Iran",[],{"title":447},{"VI":448},"Somaye Vaissi",{"url":432,"publisher":450,"properties":493},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":451,"slug":10,"properties":452,"entityType":22,"verifyStatus":23,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":25,"subjectFields":457,"manageAffiliations":462,"indexDatabases":473,"url":86,"thumbnailPath":24,"statistic":488,"gsStatistic":24,"type":24,"analyzePriority":24},[],{"country":453,"eissn":454,"issn":455,"title":456},{"VOID":13},{"VOID":15},{"VOID":17},{"EN":19},[458],{"id":28,"createTime":24,"updateTime":24,"relativeEntities":459,"label":460,"description":461,"parentId":24,"standard":24,"scholarHubFieldId":24},[],{"EN":31},{},[463,468],{"id":35,"createTime":24,"updateTime":24,"relativeEntities":464,"slug":24,"properties":465,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":467,"statistic":24},[],{"title":466},{"EN":39},[],{"id":42,"createTime":24,"updateTime":24,"relativeEntities":469,"slug":24,"properties":470,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":472,"statistic":24},[],{"title":471},{"EN":46},[48],[474,481],{"id":51,"indexDatabase":475,"url":64,"indexYears":24,"academicFieldIds":480,"indexDatabaseRanking":24},{"id":53,"createTime":24,"updateTime":24,"relativeEntities":476,"label":477,"description":478,"key":60,"publicationTags":479,"standard":24},[],{"EN":56,"VI":56},{"EN":58,"VI":59},[62,63],[66,67,68],{"id":70,"indexDatabase":482,"url":81,"indexYears":82,"academicFieldIds":487,"indexDatabaseRanking":85},{"id":72,"createTime":24,"updateTime":24,"relativeEntities":483,"label":484,"description":485,"key":78,"publicationTags":486,"standard":24},[],{"EN":75,"VI":75},{"EN":75,"VI":77},[80],[84],{"impactFactor":88,"impactFactorByYear":489,"i10Index":88,"i10IndexLast5Year":88,"totalPublication":90,"totalPublicationByYear":490,"totalCitation":88,"totalCitationByYear":491,"totalCitationPerPublication":88,"totalCitationPerPublicationByYear":492,"hindexLast5Year":88,"hindex":88},{},{"1987":92,"1989":93,"1990":92,"1991":92,"1992":92,"1993":93,"1995":93,"1996":92,"1997":92,"1998":93,"2000":93,"2001":93,"2002":93,"2005":92,"2006":94,"2007":95,"2008":94,"2009":92,"2010":92,"2011":96,"2012":97,"2014":97,"2015":97,"2016":92,"2017":92,"2018":93,"2019":95,"2020":94,"2021":92,"2022":97,"2023":92},{},{},{"pages":494,"volume":496},{"VOID":495},"389-407",{"VOID":497},"36","2022-04-18",2022,"2026-07-17T15:04:29.041+00:00",[62,85],{"id":503,"createTime":504,"updateTime":505,"relativeEntities":506,"slug":507,"properties":508,"entityType":119,"verifyStatus":120,"verifyTime":519,"verifyNote":122,"languages":24,"translateLanguages":24,"viewCount":88,"primaryUrl":520,"fullTextUrl":24,"authors":521,"publicationType":144,"publisherRelationship":577,"citationCount":88,"citationInfo":626,"publishDate":629,"publishYear":627,"citationAnalyzeStatus":23,"lastCitationAnalyze":505,"indexDatabases":630,"openAccess":24,"references":24,"isForceReanalyzing":297},"e33868a4-6322-4d64-8118-e84f36ec28bf","2023-12-22T04:16:32.616+00:00","2026-07-17T03:09:05.994+00:00",[],"Variation-in-mycorrhizal-performance-in-the-epiphytic-orchid-Tolumnia-variegata-in-vitro-the-potential-for-natural-selection",{"abstract":509,"title":511,"gsPaper":513,"references":515,"doi":517},{"EN":510},"Symbiotic seed germination is a critical stage in orchid life histories. Natural selection may act to favor plants that efficiently use mycorrhizal fungi. However, the necessary conditions for natural selection – variation, heritability, and differences in fitness – have not been demonstrated for either orchid or fungus. With the epiphytic orchid Tolumnia variegata as a model system, we ask the following questions: (1) Do seeds from different individuals in a population differ in germination and seedling development in the presence of the same fungi? (2) Do different mycorrhizal fungi (Ceratobasidium spp.) differ in ability to stimulate seed germination and growth in T. variegata? And (3) are the Ceratobasidium isolates that best induce seed germination and seedling development more closely related to each other than to isolates that are less effective? We performed symbiotic seed germination experiments in vitro. The experiments were done using mycorrhizal fungi isolated from T. variegata; relationships among the fungi were inferred from nuclear ribosomal ITS sequences. We found significant variation for both symbiotic germination and seedling growth among biparental seed crops obtained from a population of T. variegata plants. Differences among Ceratobasidium fungi in seed germination were significant. The fungi that induced highest seed germination and seedling development belonged to two of four clades of Ceratobasidium. The two experiments show that there is potential for natural selection to act on orchid–fungus relationships. Given that orchids vary in performance, and that mycorrhizal fungi are not geographically distributed homogeneously, mycorrhizae may affect population size, distribution and evolution of orchids.",{"EN":512},"Variation in mycorrhizal performance in the epiphytic orchid Tolumnia variegata in vitro: the potential for natural selection",{"VOID":514},"[\"230494591581753966\"]",{"VOID":516},"J.D. Ackerman (1986) ArticleTitleCoping with the epiphytic existence: pollination strategies Selbyana 9 52–60\nJ.D. Ackerman (1995) ArticleTitleAn orchid flora of Puerto Rico and the Virgin Islands Mem. New York Bot. Gard. 73 1–203\nJ.D. Ackerman M. Galarza-Pérez (1991) ArticleTitlePatterns and maintenance of extraordinary variation in the Caribbean orchid, Tolumnia (Oncidium) variegata Syst. Bot. 16 182–194\nJ.D. Ackerman S. Ward (1999) ArticleTitleGenetic variation in a widespread, epiphytic orchid: where is the evolutionary potential? Syst. Bot. 24 282–291\nJ.D. Ackerman J.K. Zimmerman (1994) Bottlenecks in the life histories of orchids: resources, pollination, population structure, and seedling establishment A. Pridgeon (Eds) Proceedings of the 14th World Orchid Conference HMSO Edinburgh 125–129\nJ.D. Ackerman A. Sabat J.K. Zimmerman (1996) ArticleTitleSeedling establishment in an epiphytic orchid: an experimental study of seed limitation Oecologia 106 192–198 Occurrence Handle10.1007\u002FBF00328598\nJ.D. Ackerman E.J. Meléndez-Ackerman J. Salguero-Faria (1997) ArticleTitleVariation in pollinator abundance and selection on fragrance phenotypes in an epiphytic orchid Am. J. Bot. 84 1383–1390\nC. Alexander G. Hadley (1983) ArticleTitleVariation in symbiotic activity of Rhizoctonia isolates from Goodyera repens mycorrhizas Trans. Brit. Mycol. Soc. 80 99–106\nR. Alexandersson S.D. Johnson (2002) ArticleTitlePollinator-mediated selection on flower-tube length in a hawkmoth-pollinated Gladiolus (Iridaceae) Proc. Roy. Soc. Lond. B 269 631–636 Occurrence Handle10.1098\u002Frspb.2001.1928\nJ. Arditti A.K.A. Ghani (2000) ArticleTitleTansley Review No. 110. Numerical and physical properties of orchid seeds and their biological implications New Phytol. 145 367–421 Occurrence Handle10.1046\u002Fj.1469-8137.2000.00587.x\nP. Bayman J.T. Otero J.D. Ackerman (2003) ArticleTitleHidden transactions: the curious relationships between orchids and fungi Orchids 72 536–537\nD.R. Bolnick J.A. Svanback L.H Fordyce L.H. Yang J.M. Davis C. Darrin-Hulsey M.L. Forister (2003) ArticleTitleThe ecology of individuals: incidence and implications of individual specialization Am. Nat. 161 1–28 Occurrence Handle10.1086\u002F343878 Occurrence Handle12650459\nM.C. Brundrett (2002) ArticleTitleCoevolution of roots and mycorrhizas of land plants New Phytol. 154 275–304 Occurrence Handle10.1046\u002Fj.1469-8137.2002.00397.x\nT.D. Bruns M.I. Bidartondo D.L. Taylor (2002) ArticleTitleHost specificity in ectomycorrhizal communities: what do the exceptions tell us? Integr. Comp. Biol. 42 352–359\nR.N. Calvo (1993) ArticleTitleEvolutionary demography of orchids: intensity and frequency of pollination and the cost of fruiting Ecology 74 1033–1042\nM.A. Clements (1982) Developments in the symbiotic germination of Australian terrestrial orchids J. Stewart C.N. Merwe Particlevan der (Eds) Proceedings of the 10th World Orchid Conference South African Orchid Council Johannesburg 269–273\nClements, M.A. (1987) Orchid–fungus–host associations of epiphytic orchids. In K. Saito and R. Tanaka (eds) Proceedings of the 12th World Orchid Conference,Tokyo, pp. 80–83.\nM.A. Clements (1988) ArticleTitleOrchid mycorrhizal associations Lindleyana 3 73–86\nR.K. Dixon H.E. Garrett H.E. Stelzer (1987) ArticleTitleGrowth and ectomycorrhizal development of loblolly pine progenies inoculated with three isolates of Pisolithus, tinctorius Silvae Genet. 36 240–245\nN. Doebeli M. Knowlton (1998) ArticleTitleThe evolution of interspecific mutualisms P. Natl. Acad. Sci. USA 95 8676–8680 Occurrence Handle10.1073\u002Fpnas.95.15.8676\nJ.A. Endler (1986) Natural Selection in the Wild Princeton University Press Princeton\nG. Hadley (1970) ArticleTitleNon-specificity of symbiotic infection in orchid mycorrhizae New Phytol. 69 1015–1023\nG. Hadley (1984) ArticleTitleUptake of [14C] glucose by asymbiotic and mycorrhizal orchid protocorms New Phytol. 69 1015–1023\nJ.L. Harley S.E. Smith (1983) Mycorrhizal Symbiosis Academic Press London\nM.M. Hart R.J. Reader (2002) ArticleTitleHost plant benefit from association with arbuscular mycorrhizal fungi: variation due to differences in size of mycelium Biol. Fertil. Soils 36 357–366 Occurrence Handle10.1007\u002Fs00374-002-0539-4\nC.M. Herrera (2000) ArticleTitleIndividual differences in progeny viability in Lavandula latifolia: a long-term field study Ecology 81 3036–3047\nC.C. Horvitz D.W. Schemske (1986) ArticleTitleSeed dispersal of a neotropical myrmecochore: variation in removal rates and dispersal distance Biotropica 18 319–323\nC.C. Horvitz D.W. Schemske (1990) ArticleTitleSpatiotemporal variation in insect mutualist of a neotropical herb Ecology 71 1085–1097\nN.C. Johnson J.H. Graham F.A. Smith (1997) ArticleTitleFunctioning of mycorrhizal associations along the mutualism–parasitism continuum New Phytol. 135 575–585 Occurrence Handle10.1046\u002Fj.1469-8137.1997.00729.x\nG. Masuhara K. Katsuya (1994) ArticleTitleIn situ and in vitro specificity between Rhizoctonia spp. and Spiranthes sinensis (Persoon) Ames. var. amoena (M Bieberstein) Hara (Orchidaceae) New Phytol. 127 711–718\nG. Masuhara K. Katsuya K. Yamaguchi (1993) ArticleTitlePotential for symbiosis of Rhizoctonia solani and binucleate Rhizoctonia with seeds of Spiranthes amoena var. amoena in vitro Mycol. Res. 97 746–752\nS.L. McKendrick J.L. Leake D.L. Taylor D.J. Read (2002) ArticleTitleSymbiotic germination and development of the myco-heterotrophic orchid Neottia nidus-avis in nature and its requirements for locally distributed Sebacina spp New Phytol 154 233–247 Occurrence Handle10.1046\u002Fj.1469-8137.2002.00372.x\nE.J. Meléndez J. D. Ackerman (1993) ArticleTitleThe effects of a rust infection on fitness components in a natural population of Tolumnia variegata (Orchidaceae) Oecologia 94 361–367 Occurrence Handle10.1007\u002FBF00317110\nE.J. Meléndez J.D. Ackerman (1994) ArticleTitleFactors associated with rust infection (Sphenosphora saphaena) in an epiphytic orchid (Tolumnia variegata) Am. J. Bot. 81 287–293\nH.J. Muir (1989) Germination and mycorrhizal fungus compatibility in European orchids H.W. Prichard (Eds) Modern Methods in Orchid Conservation: The Role of Physiology, Ecology and Management Cambridge University Press New York 39–56\nJ.T. Otero (2002) Specificity of orchid mycorrhizae: their role in orchid evolution University of Puerto Rico Río Piedras\nJ.T. Otero J.D. Ackerman P. Bayman (2002) ArticleTitleDiversity and host specificity of mycorrhizal fungi from tropical orchids Am. J. Bot. 89 1852–1858\nJ.T. Otero J.D. Ackerman P Bayman (2004) ArticleTitleDifferences in mycorrhizal preferences between two tropical orchids Mol. Ecol. 13 2393–2404 Occurrence Handle10.1111\u002Fj.1365-294X.2004.02223.x Occurrence Handle15245412\nM. Ramsey G. Vaughton (1998) ArticleTitleEffect of environment on the magnitude of inbreeding depression in seeds germination in a partially self-fertile perennial herb (Blandfordia grandiflora, Liliaceae) Int. J. Plant Sci. 159 98–104 Occurrence Handle10.1086\u002F297525\nH.N. Rasmussen (1995) Terrestrial Orchids: From Seeds to Mycotrophic Plants Cambridge University Press New York\nH.N. Rasmussen (2002) ArticleTitleRecent developments in the study of orchid mycorrhiza Plant Soil 244 149–163 Occurrence Handle10.1023\u002FA:1020246715436\nP. Roberts (1999) Rhizoctonia-Forming Fungi: A Taxonomic Guide Kew Royal Botanical Garden, London\nA.M. Sabat J.D. Ackerman (1996) ArticleTitleFruit set in a deceptive orchid: the effect of flowering phenology, display size, and local floral abundance Am. J. Bot. 83 1181–1186\nI. Sanders (2002) Specificity in the arbuscular mycorrhizal symbiosis M.G.A. Heijden Particlevan der I. Sanders (Eds) Mycorrhizal Ecology Springer-Verlag Berlin 415–437\nD.W. Schemske C.C. Horvitz (1984) ArticleTitleVariation among floral visitors in pollination: a precondition for mutualism specialization Science 225 519–521\nM.A. Selosse M. Weiβ J.L. Jany A. Tiller (2002) ArticleTitleCommunities and populations of sebacinoid basidiomycetes associated with the achlorophyllous orchid Neottia nidus-avis(L.) L.C.M. Rich and neighbouring tree ectomycorrhizae Mol. Ecol. 11 1831–1844 Occurrence Handle10.1046\u002Fj.1365-294X.2002.01553.x Occurrence Handle12207732\nJ. Sharma L.W. Zettler J.W. Van Sambeek M.R. Ellersieck C.J. Starbuck (2003) ArticleTitleSymbiotic seed germination and mycorrhizae of federally threatened Platanthera praeclara (Orchidaceae) Am. Midl. Nat. 149 104–120\nE.A. Smreciu R.S. Currah (1989) ArticleTitleSymbiotic germination of seeds of terrestrial orchids of North America and Europe Lindleyana 4 6–15\nB. Sneh L. Burpee A. Ogoshi (1991) Identification of Rhizoctonia Species American Phytopathological Society, St. Paul Minnesota\nE. Spoerl (1948) ArticleTitleAmino acids as source of nitrogen for orchid embryos Am. J. Bot. 35 88–95\nD. Tagu P.F. Rampant F. Lapeyrie P. Frey-Klett P. Vion M. Villar (2001) ArticleTitleVariation in the ability to form ectomycorrhizas in the F1 progeny of an interspecific poplar (Populus spp.) cross Mycorrhiza 10 237–240\nD.L. Taylor (2000) ArticleTitleA new dawn – the ecological genetics of mycorrhizal fungi New Phytol. 147 236–239 Occurrence Handle10.1046\u002Fj.1469-8137.2000.00709.x\nD.L. Taylor T.D. Bruns (1997) ArticleTitleIndependent, specialized invasion of ectomycorrhizal mutualism by two nonphotosynthetic orchids P. Natl. Acad. Sci. USA 94 5410–5415\nD.L. Taylor T.D. Bruns (1999) ArticleTitlePopulation, habitat and genetic correlates of mycorrhizal specialization in the “cheating” orchids Corallorhiza maculata and C. mertensiana Mol. Ecol. 8 1719–1732 Occurrence Handle10.1046\u002Fj.1365-294x.1999.00760.x Occurrence Handle10583834\nD.L. Taylor T.D. Bruns J.R. Leake D.J. Read (2002) Mycorrhizal specificity and function in myco-heterotrophic plants M.G.A. Heijden Particlevan der I. Sanders (Eds) Mycorrhizal Ecology Springer-Verlag Berlin 375–414\nD.L. Taylor T.D. Bruns S.A Hodges (2004) ArticleTitleEvidence for mycorrhizal races in a cheating orchid Proc. Roy. Soc. Lond B. 271 35–43 Occurrence Handle10.1098\u002Frspb.2003.2557\nJ. Thomson U. Matthes-Sears R.L. Peterson (1990) ArticleTitleEffects of provenance and mycorrhizal fungi on early seedling growth in Picea mariana Can. J. Forest Res. 20 1739–1754\nJ.N. Thompson (1994) The Coevolutionary Process University of Chicago Press Chicago\nJ.N. Thompson J.J. Burdon (1992) ArticleTitleGene-for-gene coevolution between plants and parasites Nature 360 121–125 Occurrence Handle10.1038\u002F360121a0\nC.M. Tonnkin N. Malajczuk J.A. McComb (1989) ArticleTitleEctomycorrhizal formation by micropropagated clones of Eucalyptus marginata inoculated with isolates of Pisolithus tinctorius New Phytol. 111 209–214\nR.L. Tremblay (1997) ArticleTitleDistribution and dispersion patterns of individuals in nine species of Lepanthes Biotropica 29 38–45\nR.L. Tremblay J.D. Ackerman (2001) ArticleTitleGene flow and effective population size in Lepanthes (Orchidaceae): a case for genetic drift Biol. J. Linn. Soc. 72 47–62 Occurrence Handle10.1006\u002Fbijl.2000.0485\nM.G.A. Heijden ParticleVan der T.W. Kuyper (2001) ArticleTitleDoes origin of mycorrhizal fungus or mycorrhizal plant influence effectiveness of the mycorrhizal symbiosis? Plant Soil 230 161–174 Occurrence Handle10.1023\u002FA:1010377320729\nM.G.A. Vander Heijden J.N. Klironomos M. Ursic P. Moutoglis R. Streitwolf-Engel T. Boller A. Wiemken I.R. Sanders (1998) ArticleTitleMycorrhizal fungal diversity determines plant biodiversity, ecosystem variability and productivity Nature 396 69–72 Occurrence Handle10.1038\u002F23932\nV. Vujanovic M. St-Arnaud D. Barabé G. Thibeault (2000) ArticleTitleViability testing of orchid seed and promotion of coloration and germination Ann. Bot. 86 79–86 Occurrence Handle10.1006\u002Fanbo.2000.1162\nJ.H. Zar (1999) Biostatistical Analysis EditionNumberFourth ed. Prentice Hall Upper Saddle River",{"VOID":518},"10.1007\u002Fs10682-004-5441-0","2024-06-23T17:29:41.399+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs10682-004-5441-0",[522,547,562],{"id":523,"sortIndex":88,"researcher":24,"roles":524,"affiliations":525,"properties":542,"displayName":544,"givenName":24,"familyName":24},"5462d943-78d8-4f23-8456-325886f134a7",[129],[526,534],{"id":527,"sortIndex":88,"affiliation":528,"properties":24},"102b22b0-4c9e-4c8a-a986-c588e43d52f2",{"id":527,"createTime":24,"updateTime":24,"relativeEntities":529,"slug":24,"properties":530,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":533,"statistic":24},[],{"title":531},{"VI":532},"Departamento de Biología, Universidad de Puerto Rico – Río Piedras, San Juan, USA",[],{"id":535,"sortIndex":93,"affiliation":536,"properties":24},"6795762f-7c30-44f1-adc8-55ce660dc0bc",{"id":535,"createTime":24,"updateTime":24,"relativeEntities":537,"slug":24,"properties":538,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":541,"statistic":24},[],{"title":539},{"VI":540},"CSIRO Plant Industry, Australian National Herbarium, Canberra, Australia",[],{"title":543,"gsAuthor":545},{"VI":544},"J. Tupac Otero",{"VOID":546},"[\"1rfwt4sAAAAJ\"]",{"id":548,"sortIndex":93,"researcher":24,"roles":549,"affiliations":550,"properties":557,"displayName":559,"givenName":24,"familyName":24},"6199dabe-d9ec-4b18-be06-d8ede50f6539",[129],[551],{"id":527,"sortIndex":88,"affiliation":552,"properties":24},{"id":527,"createTime":24,"updateTime":24,"relativeEntities":553,"slug":24,"properties":554,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":556,"statistic":24},[],{"title":555},{"VI":532},[],{"title":558,"gsAuthor":560},{"VI":559},"Paul Bayman",{"VOID":561},"[\"3sS-67YAAAAJ\"]",{"id":563,"sortIndex":92,"researcher":24,"roles":564,"affiliations":565,"properties":572,"displayName":574,"givenName":24,"familyName":24},"ed8a6d1c-1187-4973-befa-3932c26a4c23",[129],[566],{"id":527,"sortIndex":88,"affiliation":567,"properties":24},{"id":527,"createTime":24,"updateTime":24,"relativeEntities":568,"slug":24,"properties":569,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":571,"statistic":24},[],{"title":570},{"VI":532},[],{"title":573,"gsAuthor":575},{"VI":574},"James D. Ackerman",{"VOID":576},"[\"YeOMMu8AAAAJ\"]",{"url":520,"publisher":578,"properties":621},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":579,"slug":10,"properties":580,"entityType":22,"verifyStatus":23,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":25,"subjectFields":585,"manageAffiliations":590,"indexDatabases":601,"url":86,"thumbnailPath":24,"statistic":616,"gsStatistic":24,"type":24,"analyzePriority":24},[],{"country":581,"eissn":582,"issn":583,"title":584},{"VOID":13},{"VOID":15},{"VOID":17},{"EN":19},[586],{"id":28,"createTime":24,"updateTime":24,"relativeEntities":587,"label":588,"description":589,"parentId":24,"standard":24,"scholarHubFieldId":24},[],{"EN":31},{},[591,596],{"id":35,"createTime":24,"updateTime":24,"relativeEntities":592,"slug":24,"properties":593,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":595,"statistic":24},[],{"title":594},{"EN":39},[],{"id":42,"createTime":24,"updateTime":24,"relativeEntities":597,"slug":24,"properties":598,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":600,"statistic":24},[],{"title":599},{"EN":46},[48],[602,609],{"id":51,"indexDatabase":603,"url":64,"indexYears":24,"academicFieldIds":608,"indexDatabaseRanking":24},{"id":53,"createTime":24,"updateTime":24,"relativeEntities":604,"label":605,"description":606,"key":60,"publicationTags":607,"standard":24},[],{"EN":56,"VI":56},{"EN":58,"VI":59},[62,63],[66,67,68],{"id":70,"indexDatabase":610,"url":81,"indexYears":82,"academicFieldIds":615,"indexDatabaseRanking":85},{"id":72,"createTime":24,"updateTime":24,"relativeEntities":611,"label":612,"description":613,"key":78,"publicationTags":614,"standard":24},[],{"EN":75,"VI":75},{"EN":75,"VI":77},[80],[84],{"impactFactor":88,"impactFactorByYear":617,"i10Index":88,"i10IndexLast5Year":88,"totalPublication":90,"totalPublicationByYear":618,"totalCitation":88,"totalCitationByYear":619,"totalCitationPerPublication":88,"totalCitationPerPublicationByYear":620,"hindexLast5Year":88,"hindex":88},{},{"1987":92,"1989":93,"1990":92,"1991":92,"1992":92,"1993":93,"1995":93,"1996":92,"1997":92,"1998":93,"2000":93,"2001":93,"2002":93,"2005":92,"2006":94,"2007":95,"2008":94,"2009":92,"2010":92,"2011":96,"2012":97,"2014":97,"2015":97,"2016":92,"2017":92,"2018":93,"2019":95,"2020":94,"2021":92,"2022":97,"2023":92},{},{},{"pages":622,"volume":624},{"VOID":623},"29-43",{"VOID":625},"19",{"total":88,"publishYear":627,"statisticByYear":628},2005,{},"2005-01-01",[62,85],{"id":632,"createTime":633,"updateTime":634,"relativeEntities":635,"slug":636,"properties":637,"entityType":119,"verifyStatus":120,"verifyTime":648,"verifyNote":122,"languages":24,"translateLanguages":24,"viewCount":88,"primaryUrl":649,"fullTextUrl":24,"authors":650,"publicationType":144,"publisherRelationship":692,"citationCount":741,"citationInfo":742,"publishDate":745,"publishYear":743,"citationAnalyzeStatus":746,"lastCitationAnalyze":747,"indexDatabases":748,"openAccess":24,"references":24,"isForceReanalyzing":297},"f98a8cef-fb92-49bf-8126-06db10e270d4","2024-01-25T21:04:11.992+00:00","2026-07-16T04:03:26.356+00:00",[],"Life-history-traits-evolution-across-distribution-ranges-how-the-joint-evolution-of-dispersal-and-mating-system-favor-the-evolutionary-stability-of-range-limits-",{"abstract":638,"title":640,"gsPaper":642,"references":644,"doi":646},{"EN":639},"The question of the stability of distribution ranges of species is fundamental in ecology. However, the way in which stable distribution ranges are shaped by natural selection is still poorly studied. For a long time, botanists have studied empirically how self-fertilization and dispersal traits change from the centre to the periphery of species’ distribution ranges, but theoretical arguments are lacking. In this commentary, we use a recent evolutionary model by Cheptou and Massol (2009) that analyses the joint evolution of dispersal and the mating system in a metapopulation. Considering that distribution ranges may result in gradients in pollen limitation for plants, habitat availability, or inbreeding depression for plants, we analyse how the association of dispersal and self-fertilization varies across distribution ranges. Interestingly, we show that such gradients result in a change in both traits and may favor evolutionary stable range limits for plant distribution. Based on empirical and theoretical results, we discuss the plausibility of such gradients as a way to explain range limits in plants.",{"EN":641},"Life-history traits evolution across distribution ranges: how the joint evolution of dispersal and mating system favor the evolutionary stability of range limits?",{"VOID":643},"[\"854791988643597103\"]",{"VOID":645},"Armbruster P, Reed DH (2005) Inbreeding depression under benignand stressful conditions. Heredity 95:235–242\nBaker HG (1955) Self-compatibility and establishment after “long-distance” dispersal. Evolution 21:219–238\nBaker HG (1959) Reproductive methods as factors in speciation in flowering plants. Cold Spring Harb Symp Quant Biol 24:177–191\nBarrett SCH, Morgan MT, Husband BC (1989) The dissolution of a complex polymorphism: the evolution of self-fertilization in tristylous Eichhornia paniculata (Pontederiaceae). Evolution 43:1398–1416\nBawa KS (1980) Evolution of dioecy in flowering plants. Annu Rev Ecol Syst 11:15–39\nBusch JW (2005) The evolution of self-compatibility in geographically peripheral populations of Leavenworthia alabamica (Brassicaceae). Am J Bot 92:1503–1512\nCheplick GP (1987) The ecology of amphicarpic plants. Trends Ecol Evol 2:97–101\nCheptou P-O (2011) Clarifying Baker’s Law. Ann Bot (in press). doi:10.1093\u002Faob\u002Fmcr127\nCheptou P-O, Donohue K (2011) Environment-dependent inbreeding depression: its ecological and evolutionary significance. New Phytol 189:395–407\nCheptou P-O, Massol F (2009) Pollination fluctuations drive evolutionary syndromes linking dispersal and mating system. Am Nat 174:46–55\nCheptou P-O, Carrue O, Rouifed S, Cantarel A (2008) Rapid evolution of seed dispersal in an urban environment in the weed Crepis sancta. Proc Natl Acad Sci USA 105:3796–3799\nComins HN, Hamilton WD, May RM (1980) Evolutionarily stable dispersal strategies. J Theor Biol 82:205–230\nDarling E, Samis KE, Eckert CG (2008) Increased seed dispersal potential towards geographic range limits in a Pacific coast dune plant. New Phytol 178:424–435\nDieckmann U, Law R (1996) The dynamical theory of coevolution: a derivation from stochastic ecological processes. J Math Biol 34:579–612\nDytham C (2009) Evolved dispersal strategies at range margins. Proc R Soc Lond B Biol Sci 276:1407–1413\nGaston KJ (2009) Geographic range limits: achieving synthesis. Proc R Soc Lond B Biol Sci 276:1395–1406\nGivnish TJ (1980) Ecological constraints on the evolution of breeding systems in seed plants: dioecy and dispersal in gymnosperms. Evolution 34:959–972\nHamilton WD, May RM (1977) Dispersal in stable habitats. Nature 269:578–581\nHerlihy CR, Eckert CG (2005) Evolution of self-fertilization at geographical range margins? A comparison of demographic, floral and mating system variables in central versus peripheral populations of Aquilegia canadensis (Ranunculaceae). Am J Bot 92:744–751\nHolt RD, Keitt TH, Lewis MA, Maurer BA, Taper ML (2005) Theoretical models of species’ borders: single species approaches. Oikos 108:18–27\nKirkpatrick M, Barton NH (1997) Evolution of a species’ range. Am Nat 150:1–23\nLloyd DG (1979) Some reproductive factors affecting the selection of self-fertilization in plants. Am Nat 113:67–79\nMassol F, Cheptou P-O (2011a) Evolutionary syndromes linking dispersal and mating system: the effect of autocorrelation in pollination conditions. Evolution 65:591–598\nMassol F, Cheptou P-O (2011b) When should we expect the evolutionary association of self-fertilization and dispersal? Evolution 65:1217–1220\nMaynard Smith J (1978) The evolution of sex. Cambridge University Press, Cambridge\nMiller JS, Levin RA, Feliciano NM (2008) A tale of two continents: Baker’s rule and the maintenance of self-incompatibility in Lycium (Solanaceae). Evolution 62:1052–1065\nMoeller DA (2006) Geographic structure of pollinator communities, reproductive assurance, and the evolution of self-pollination. Ecology 87:1510–1522\nPrimack RB (1987) Relationships among flowers, fruits, and seeds. Annu Rev Ecol Syst 18:409–430\nPujol B, Pannell JR (2008) Reduced responses to selection after species range expansion. Science 321:96\nPujol B, Zhou SR, Vilas JS, Pannell JR (2009) Reduced inbreeding depression after species range expansion. Proc Natl Acad Sci USA 106:15379–15383\nRandle AM, Slyder J, Kalisz S (2009) Can differences in autonomous selfing ability xplain differences in range size among sister-taxa pairs of Collinsia (Plantaginaceae)? An extension of Baker’s law. New Phytol 183:618–629\nRonce O, Shaw FH, Rousset F, Shaw RG (2009) Is inbreeding depression lower in maladapted populations? A quantitative genetics model. Evolution 63:1807–1819\nSamis KE, Eckert CG (2009) Ecological correlates of fitness across the northern geographic range limit of a pacific coast dune plant. Ecology 90:3051–3061\nSexton JP, McIntyre PJ, Angert AL, Rice KJ (2009) The evolution and ecology of geographic range limits. Annu Rev Ecol Evol Syst 40:415–436\nWilliams CG (1975) Sex and evolution. Princeton University Press, Princeton",{"VOID":647},"10.1007\u002Fs10682-011-9549-8","2024-05-17T13:46:24.532+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs10682-011-9549-8",[651,675],{"id":652,"sortIndex":88,"researcher":24,"roles":653,"affiliations":654,"properties":672,"displayName":674,"givenName":24,"familyName":24},"44a4b5d1-9224-468a-a959-44ebdad16cee",[129],[655,663],{"id":656,"sortIndex":88,"affiliation":657,"properties":24},"c32fc8eb-92db-4853-8149-6bef9d746807",{"id":656,"createTime":24,"updateTime":24,"relativeEntities":658,"slug":24,"properties":659,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":662,"statistic":24},[],{"title":660},{"VI":661},"Key Laboratory of Biodiversity and Biogeography, Kunming Institute of Botany, Chinese Academy of Sciences, Kunming, People’s Republic of China",[],{"id":664,"sortIndex":93,"affiliation":665,"properties":671},"5483ffd4-dac8-4f25-9b8f-93dc973d3214",{"id":664,"createTime":24,"updateTime":24,"relativeEntities":666,"slug":24,"properties":667,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":670,"statistic":24},[],{"title":668},{"VI":669},"Institute of Tibetan Plateau Research at Kunming, Kunming Institute of Botany, Chinese Academy of Sciences, Kunming, People’s Republic of China",[],{},{"title":673},{"VI":674},"Shan Sun",{"id":676,"sortIndex":93,"researcher":24,"roles":677,"affiliations":678,"properties":687,"displayName":689,"givenName":24,"familyName":24},"721f766d-bf89-407f-a2b2-8b05cdd32b0a",[129],[679],{"id":680,"sortIndex":88,"affiliation":681,"properties":24},"6b2443f1-79fd-4d43-98b6-27162b8d7bfe",{"id":680,"createTime":24,"updateTime":24,"relativeEntities":682,"slug":24,"properties":683,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":686,"statistic":24},[],{"title":684},{"VI":685},"UMR 5175, CEFE-Centre d’Ecologie Fonctionnelle et Evolutive (CNRS), Montpellier Cedex 05, France",[],{"title":688,"gsAuthor":690},{"VI":689},"Pierre-Olivier Cheptou",{"VOID":691},"[\"ELRyYcgAAAAJ\"]",{"url":649,"publisher":693,"properties":736},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":694,"slug":10,"properties":695,"entityType":22,"verifyStatus":23,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":25,"subjectFields":700,"manageAffiliations":705,"indexDatabases":716,"url":86,"thumbnailPath":24,"statistic":731,"gsStatistic":24,"type":24,"analyzePriority":24},[],{"country":696,"eissn":697,"issn":698,"title":699},{"VOID":13},{"VOID":15},{"VOID":17},{"EN":19},[701],{"id":28,"createTime":24,"updateTime":24,"relativeEntities":702,"label":703,"description":704,"parentId":24,"standard":24,"scholarHubFieldId":24},[],{"EN":31},{},[706,711],{"id":35,"createTime":24,"updateTime":24,"relativeEntities":707,"slug":24,"properties":708,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":710,"statistic":24},[],{"title":709},{"EN":39},[],{"id":42,"createTime":24,"updateTime":24,"relativeEntities":712,"slug":24,"properties":713,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":715,"statistic":24},[],{"title":714},{"EN":46},[48],[717,724],{"id":51,"indexDatabase":718,"url":64,"indexYears":24,"academicFieldIds":723,"indexDatabaseRanking":24},{"id":53,"createTime":24,"updateTime":24,"relativeEntities":719,"label":720,"description":721,"key":60,"publicationTags":722,"standard":24},[],{"EN":56,"VI":56},{"EN":58,"VI":59},[62,63],[66,67,68],{"id":70,"indexDatabase":725,"url":81,"indexYears":82,"academicFieldIds":730,"indexDatabaseRanking":85},{"id":72,"createTime":24,"updateTime":24,"relativeEntities":726,"label":727,"description":728,"key":78,"publicationTags":729,"standard":24},[],{"EN":75,"VI":75},{"EN":75,"VI":77},[80],[84],{"impactFactor":88,"impactFactorByYear":732,"i10Index":88,"i10IndexLast5Year":88,"totalPublication":90,"totalPublicationByYear":733,"totalCitation":88,"totalCitationByYear":734,"totalCitationPerPublication":88,"totalCitationPerPublicationByYear":735,"hindexLast5Year":88,"hindex":88},{},{"1987":92,"1989":93,"1990":92,"1991":92,"1992":92,"1993":93,"1995":93,"1996":92,"1997":92,"1998":93,"2000":93,"2001":93,"2002":93,"2005":92,"2006":94,"2007":95,"2008":94,"2009":92,"2010":92,"2011":96,"2012":97,"2014":97,"2015":97,"2016":92,"2017":92,"2018":93,"2019":95,"2020":94,"2021":92,"2022":97,"2023":92},{},{},{"pages":737,"volume":739},{"VOID":738},"771-778",{"VOID":740},"26",20,{"total":741,"publishYear":743,"statisticByYear":744},2011,{"2012":93,"2013":93,"2014":97,"2015":92,"2016":92,"2017":92,"2018":97,"2020":93,"2021":92,"2023":93},"2011-12-29","DONE_ANALYZE_CITATION","2026-07-16T04:03:26.355+00:00",[62,85],{"id":750,"createTime":751,"updateTime":752,"relativeEntities":753,"slug":754,"properties":755,"entityType":119,"verifyStatus":120,"verifyTime":766,"verifyNote":122,"languages":24,"translateLanguages":24,"viewCount":88,"primaryUrl":767,"fullTextUrl":24,"authors":768,"publicationType":144,"publisherRelationship":816,"citationCount":88,"citationInfo":865,"publishDate":868,"publishYear":866,"citationAnalyzeStatus":746,"lastCitationAnalyze":752,"indexDatabases":869,"openAccess":24,"references":24,"isForceReanalyzing":297},"9407c8d9-8548-48df-8100-30ca45ccff51","2023-12-27T23:59:10.343+00:00","2026-07-13T02:02:32.217+00:00",[],"Divergence-in-selection-of-host-species-and-plant-parts-among-populations-of-a-phytophagous-insect",{"abstract":756,"title":758,"gsPaper":760,"references":762,"doi":764},{"EN":757},"The diversification of phytophagous insects is often attributed to diverging processes of host plant specialization onto different, often closely related, host plants. Some insect clades have diversified by specializing not only on different plant species but also on different plant parts of the same hosts. This is the case in Greya moths (Prodoxidae) where both Greya obscura and G. politella are tightly linked to host plants of the genus Lithophragma (Saxifragaceae). We assess how these species differ in their choice of plants and use of plant parts. Previous work showed that strong local host specialization in G. politella is mediated by floral scent variation among Lithophragma species. Here, we identify geographic variation in host plant use in the close relative G. obscura, relate the emerging patterns to previous studies of geographic variation in host use in G. politella and evaluate potential processes underlying the variation among and within species. First, we show that G. obscura also uses floral chemistry to locate hosts but that additional plant cues must be involved in deciding whether to oviposit on a plant, because females did not discriminate against chemically different host species in no-choice trials. We also found that, although all known populations of G. politella oviposit only in flowers, all G. obscura populations examined here distributed their eggs among both floral and scape tissues both in the field and in laboratory experiments. The distribution of eggs among plant parts, however, varied among moth populations, and also depended on the Lithophragma species they attacked. Together, these results show the potential for phytophagous insect species and populations to diverge in use of plant parts as part of the process of speciation and adaptation. These two layers of specialization enhance the potential for subsequent diversification in phytophagous insect lineages.",{"EN":759},"Divergence in selection of host species and plant parts among populations of a phytophagous insect",{"VOID":761},"[\"14235616153205848397\"]",{"VOID":763},"Althoff DM, Thompson JN (2001) Geographic structure in the searching behaviour of a specialist parasitoid: combining molecular and behavioural approaches. J Evol Biol 14:406–417\nBennett NL, Severns PM, Parmesan C, Singer MC (2015) Geographic mosaics of phenology, host preference, adult size and microhabitat choice predict butterfly resilience to climate warming. Oikos 124:41–53\nBernays EA (2001) Neural limitations in phytophagous insects: implications for diet breadth and evolution of host affiliation. Annu Rev Entomol 46:703–727\nBernays E, Graham M (1988) On the evolution of host specificity in phytophagous arthropods. Ecology 69:886\nDavis DR, Pellmyr O, Thompson JN (1992) Biology and systematics of Greya Busck and Tetragma, new genus (Lepidoptera: Prodoxidae). Smithsonian Institution Press, Washington, DC\nDeng J, Drew BT, Mavrodiev EV et al (2015) Phylogeny, divergence times, and historical biogeography of the angiosperm family Saxifragaceae. Mol Phylogenet Evol 83:86–98\nEgan SP, Funk DJ (2006) Individual advantages to ecological specialization: insights on cognitive constraints from three conspecific taxa. Proc R Soc B Biol Sci 273:843–848\nEhrlich PR, Raven PH (1964) Butterflies and plants: a study in coevolution. Evolution 18:586–608\nForister ML (2004) Oviposition preference and larval performance within a diverging lineage of lycaenid butterflies. Ecol Entomol 29:264–272\nFriberg M, Schwind C, Raguso RA, Thompson JN (2013) Extreme divergence in floral scent among woodland star species (Lithophragma spp.) pollinated by floral parasites. Ann Bot 111:539–550\nFriberg M, Schwind C, Roark LC et al (2014) Floral scent contributes to interaction specificity in coevolving plants and their insect pollinators. J Chem Ecol 40:955–965\nJanz N (2011) Ehrlich and Raven revisited: mechanisms underlying codiversification of plants and enemies. Annu Rev Ecol Evol Syst 42:71–89\nJanz N, Nylin S (2008) The oscillation hypothesis of host-plant range and speciation. In: Tilmon KJ (ed) Specialization, speciation, and radiation: the evolutionary biology of herbivorous insects. University of California Press, Berkeley, pp 203–215\nJanz N, Nyblom K, Nylin S (2001) Evolutionary dynamics of host-plant specialization: a case study of the tribe Nymphalini. Evolution 55:783–796\nMatsubayashi KW, Ohshima I, Nosil P (2010) Ecological speciation in phytophagous insects. Entomol Exp Appl 134:1–27\nMcBride CS, Singer MC (2010) Field studies reveal strong postmating isolation between ecologically divergent butterfly populations. PLoS Biol 8:e1000529\nPellmyr O (2003) Yuccas, yucca moths, and coevolution: a review. Ann Mo Bot Gard 90:35–55\nPowell JA (1980) Evolution of larval food preferences in microlepidoptera. Annu Rev Entomol 25:133–159\nRich KA, Thompson JN, Fernandez CC (2008) Diverse historical processes shape deep phylogeographical divergence in the pollinating seed parasite Greya politella. Mol Ecol 17:2430–2448\nSinger MC, McBride CS (2012) Geographic mosaics of species’ association: a definition and an example driven by plant–insect phenological synchrony. Ecology 93:2658–2673\nSinger MS, Stireman JO (2005) The tri-trophic niche concept and adaptive radiation of phytophagous insects. Ecol Lett 8:1247–1255\nSinger MC, Ng D, Moore RA (1991) Genetic variation in oviposition preference between butterfly populations. J Insect Behav 4:531–535\nSoltis DE, Soltis PS, Thompson JN, Pellmyr O (1992) Chloroplast DNA variation in Lithophragma (Saxifragaceae). Syst Bot 17:607–619\nSuinyuy TN, Donaldson JS, Johnson SD (2015) Geographical matching of volatile signals and pollinator olfactory responses in a cycad brood-site mutualism. Proc R Soc B Biol Sci 282:20152053\nThompson JN (1983a) The use of ephemeral plant parts on small host plants: how Depressaria leptotaeniae (Lepidoptera: Oecophoridae) feeds on Lomatium dissectum (Umbelliferae). J Anim Ecol 52:281–291\nThompson JN (1983b) Selection pressures on phytophagous insects feeding on small host plants. Oikos 40:438–444\nThompson JN (1986) Oviposition behaviour and searching efficiency in a natural population of a braconid parasitoid. J Anim Ecol 55:351–360\nThompson JN (1987) Variance in number of eggs per patch: oviposition behaviour and population dispersion in a seed parasitic moth. Ecol Entomol 12:311–320\nThompson JN (2013) Relentless evolution. The University of Chicago Press, Chicago\nThompson JN, Fernandez CC (2006) Temporal dynamics of antagonism and mutualism in a geographically variable plant-insect interaction. Ecology 87:103–112\nThompson JN, Rich KA (2011) Range edges and the molecular divergence of Greya moth populations. J Biogeogr 38:551–563\nThompson JN, Laine A-L, Thompson JF (2010) Retention of mutualism in a geographically diverging interaction: coevolving plant-pollinator interactions. Ecol Lett 13:1368–1377\nThompson JN, Schwind C, Guimaraes PR, Friberg M (2013) Diversification through multitrait evolution in a coevolving interaction. Proc Natl Acad Sci 110:11487–11492\nWiklund C (1975) The evolutionary relationship between adult oviposition preferences and larval host plant range in Papilio machaon L. Oecologia 18:185–197\nWiklund C, Friberg M (2009) The evolutionary ecology of generalization: among-year variation in host plant use and offspring survival in a butterfly. Ecology 90:3406–3417\nZangerl AR, Berenbaum MR (2003) Phenotype matching in wild parsnip and parsnip webworms: causes and consequences. Evolution 57:806–815",{"VOID":765},"10.1007\u002Fs10682-016-9835-6","2024-05-15T15:04:14.782+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs10682-016-9835-6",[769,786,801],{"id":770,"sortIndex":88,"researcher":24,"roles":771,"affiliations":772,"properties":781,"displayName":783,"givenName":24,"familyName":24},"652843f6-1dd8-47cc-b1af-7e480f754ed6",[129],[773],{"id":774,"sortIndex":88,"affiliation":775,"properties":24},"47635a09-34d1-4440-a194-36b14618d612",{"id":774,"createTime":24,"updateTime":24,"relativeEntities":776,"slug":24,"properties":777,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":780,"statistic":24},[],{"title":778},{"VI":779},"Department of Plant Ecology and Evolution, Evolutionary Biology Centre (EBC), Uppsala, Sweden",[],{"title":782,"gsAuthor":784},{"VI":783},"Magne Friberg",{"VOID":785},"[\"-qkgZLcAAAAJ\"]",{"id":787,"sortIndex":93,"researcher":24,"roles":788,"affiliations":789,"properties":798,"displayName":800,"givenName":24,"familyName":24},"2f326b46-f2c3-4563-b5fa-7c96fe4f0f40",[129],[790],{"id":791,"sortIndex":88,"affiliation":792,"properties":24},"557e7fe0-3e9f-44a0-a3fe-90742a07d70c",{"id":791,"createTime":24,"updateTime":24,"relativeEntities":793,"slug":24,"properties":794,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":797,"statistic":24},[],{"title":795},{"VI":796},"Department of Ecology and Evolutionary Biology, University of California Santa Cruz, Santa Cruz, USA",[],{"title":799},{"VI":800},"Christopher Schwind",{"id":802,"sortIndex":92,"researcher":24,"roles":803,"affiliations":804,"properties":811,"displayName":813,"givenName":24,"familyName":24},"86c18027-235c-4b8d-9aee-184e4f6f4180",[129],[805],{"id":791,"sortIndex":88,"affiliation":806,"properties":24},{"id":791,"createTime":24,"updateTime":24,"relativeEntities":807,"slug":24,"properties":808,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":810,"statistic":24},[],{"title":809},{"VI":796},[],{"title":812,"gsAuthor":814},{"VI":813},"John N. Thompson",{"VOID":815},"[\"YiPJ3kwAAAAJ\"]",{"url":767,"publisher":817,"properties":860},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":818,"slug":10,"properties":819,"entityType":22,"verifyStatus":23,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":25,"subjectFields":824,"manageAffiliations":829,"indexDatabases":840,"url":86,"thumbnailPath":24,"statistic":855,"gsStatistic":24,"type":24,"analyzePriority":24},[],{"country":820,"eissn":821,"issn":822,"title":823},{"VOID":13},{"VOID":15},{"VOID":17},{"EN":19},[825],{"id":28,"createTime":24,"updateTime":24,"relativeEntities":826,"label":827,"description":828,"parentId":24,"standard":24,"scholarHubFieldId":24},[],{"EN":31},{},[830,835],{"id":35,"createTime":24,"updateTime":24,"relativeEntities":831,"slug":24,"properties":832,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":834,"statistic":24},[],{"title":833},{"EN":39},[],{"id":42,"createTime":24,"updateTime":24,"relativeEntities":836,"slug":24,"properties":837,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":839,"statistic":24},[],{"title":838},{"EN":46},[48],[841,848],{"id":51,"indexDatabase":842,"url":64,"indexYears":24,"academicFieldIds":847,"indexDatabaseRanking":24},{"id":53,"createTime":24,"updateTime":24,"relativeEntities":843,"label":844,"description":845,"key":60,"publicationTags":846,"standard":24},[],{"EN":56,"VI":56},{"EN":58,"VI":59},[62,63],[66,67,68],{"id":70,"indexDatabase":849,"url":81,"indexYears":82,"academicFieldIds":854,"indexDatabaseRanking":85},{"id":72,"createTime":24,"updateTime":24,"relativeEntities":850,"label":851,"description":852,"key":78,"publicationTags":853,"standard":24},[],{"EN":75,"VI":75},{"EN":75,"VI":77},[80],[84],{"impactFactor":88,"impactFactorByYear":856,"i10Index":88,"i10IndexLast5Year":88,"totalPublication":90,"totalPublicationByYear":857,"totalCitation":88,"totalCitationByYear":858,"totalCitationPerPublication":88,"totalCitationPerPublicationByYear":859,"hindexLast5Year":88,"hindex":88},{},{"1987":92,"1989":93,"1990":92,"1991":92,"1992":92,"1993":93,"1995":93,"1996":92,"1997":92,"1998":93,"2000":93,"2001":93,"2002":93,"2005":92,"2006":94,"2007":95,"2008":94,"2009":92,"2010":92,"2011":96,"2012":97,"2014":97,"2015":97,"2016":92,"2017":92,"2018":93,"2019":95,"2020":94,"2021":92,"2022":97,"2023":92},{},{},{"pages":861,"volume":863},{"VOID":862},"723-737",{"VOID":864},"30",{"total":88,"publishYear":866,"statisticByYear":867},2016,{},"2016-05-05",[62,85],{"id":871,"createTime":872,"updateTime":873,"relativeEntities":874,"slug":875,"properties":876,"entityType":119,"verifyStatus":120,"verifyTime":885,"verifyNote":122,"languages":24,"translateLanguages":24,"viewCount":88,"primaryUrl":886,"fullTextUrl":24,"authors":887,"publicationType":144,"publisherRelationship":948,"citationCount":88,"citationInfo":996,"publishDate":998,"publishYear":866,"citationAnalyzeStatus":23,"lastCitationAnalyze":999,"indexDatabases":1000,"openAccess":24,"references":1001,"isForceReanalyzing":297},"fe4db440-8d26-4c1f-8082-ce4365bad620","2023-12-25T15:16:46.949+00:00","2026-07-11T11:05:46.853+00:00",[],"Does-breeding-ecology-alter-selection-on-developmental-and-life-history-traits-A-case-study-in-two-Ambystomatid-salamanders",{"abstract":877,"title":879,"gsPaper":881,"doi":883},{"EN":878},"Terrestrial breeding with extended incubation has evolved repeatedly in fishes and amphibians but raises challenges for embryos, which must conserve sufficient yolk to continue development until water is available. One means of avoiding premature yolk consumption is for embryos to slow their development such that yolk is consumed more slowly. However slower development is associated with smaller adult body sizes and lower survivorship, particularly in amphibians occupying ephemeral habitats. The variable breeding strategies of Ambystomatid salamanders provide an excellent system in which to examine whether variation in breeding ecology is associated with divergence in embryonic development. Phylogenies of Ambystoma strongly support aquatic egg-laying and winter breeding as ancestral. Early breeding has evolved in three species and terrestrial breeding in two of the three. We propose that early, terrestrial breeding has altered selection on embryonic development. In particular, we propose that the prolonged incubation typically associated with early, terrestrial breeding has selected for longer development times. We compared embryonic development of the terrestrial breeding Ambystoma opacum (Gravenhorst 1807) with the co-occuring, aquatic breeding Ambystoma maculatum (Shaw 1802) under a range of laboratory conditions over two breeding seasons. We found that A. opacum embryos took longer to develop and hatched at a later stage, consistent with the hypothesis that early, terrestrial breeding favors embryos that extend development.",{"EN":880},"Does breeding ecology alter selection on developmental and life history traits? A case study in two Ambystomatid salamanders",{"VOID":882},"[\"4982898988299048500\"]",{"VOID":884},"10.1007\u002Fs10682-016-9822-y","2024-05-04T14:50:00.211+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs10682-016-9822-y",[888,905,918,935],{"id":889,"sortIndex":88,"researcher":24,"roles":890,"affiliations":891,"properties":900,"displayName":902,"givenName":24,"familyName":24},"f3d15974-7ef8-4d19-bda2-cfcbd2a41608",[129],[892],{"id":893,"sortIndex":88,"affiliation":894,"properties":24},"bc2b1ff2-6980-4dad-b12b-f71cee6ab512",{"id":893,"createTime":24,"updateTime":24,"relativeEntities":895,"slug":24,"properties":896,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":899,"statistic":24},[],{"title":897},{"VI":898},"Biology Department, University of North Carolina Asheville, Asheville, USA",[],{"title":901,"gsAuthor":903},{"VI":902},"Rebecca E. Hale",{"VOID":904},"[\"nLSCrI8AAAAJ\"]",{"id":906,"sortIndex":93,"researcher":24,"roles":907,"affiliations":908,"properties":915,"displayName":917,"givenName":24,"familyName":24},"1472a692-2d9d-464a-8142-9aba1a0f7a96",[129],[909],{"id":893,"sortIndex":88,"affiliation":910,"properties":24},{"id":893,"createTime":24,"updateTime":24,"relativeEntities":911,"slug":24,"properties":912,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":914,"statistic":24},[],{"title":913},{"VI":898},[],{"title":916},{"VI":917},"Natrieifia Miller",{"id":919,"sortIndex":92,"researcher":24,"roles":920,"affiliations":921,"properties":930,"displayName":932,"givenName":24,"familyName":24},"8361b888-7073-4fc9-8253-7918ffe614d6",[129],[922],{"id":923,"sortIndex":88,"affiliation":924,"properties":24},"4a56fe45-ca3c-49b9-b3ec-8ab7f966f740",{"id":923,"createTime":24,"updateTime":24,"relativeEntities":925,"slug":24,"properties":926,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":929,"statistic":24},[],{"title":927},{"VI":928},"College of Forest Resources, Mississippi State University, Mississippi State, USA",[],{"title":931,"gsAuthor":933},{"VI":932},"Robert A. Francis",{"VOID":934},"[\"BBMqshMAAAAJ\"]",{"id":936,"sortIndex":94,"researcher":24,"roles":937,"affiliations":938,"properties":945,"displayName":947,"givenName":24,"familyName":24},"4306d458-01da-4f7b-92ad-e30df2a870f9",[129],[939],{"id":893,"sortIndex":88,"affiliation":940,"properties":24},{"id":893,"createTime":24,"updateTime":24,"relativeEntities":941,"slug":24,"properties":942,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":944,"statistic":24},[],{"title":943},{"VI":898},[],{"title":946},{"VI":947},"Caroline Kennedy",{"url":886,"publisher":949,"properties":992},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":950,"slug":10,"properties":951,"entityType":22,"verifyStatus":23,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":25,"subjectFields":956,"manageAffiliations":961,"indexDatabases":972,"url":86,"thumbnailPath":24,"statistic":987,"gsStatistic":24,"type":24,"analyzePriority":24},[],{"country":952,"eissn":953,"issn":954,"title":955},{"VOID":13},{"VOID":15},{"VOID":17},{"EN":19},[957],{"id":28,"createTime":24,"updateTime":24,"relativeEntities":958,"label":959,"description":960,"parentId":24,"standard":24,"scholarHubFieldId":24},[],{"EN":31},{},[962,967],{"id":35,"createTime":24,"updateTime":24,"relativeEntities":963,"slug":24,"properties":964,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":966,"statistic":24},[],{"title":965},{"EN":39},[],{"id":42,"createTime":24,"updateTime":24,"relativeEntities":968,"slug":24,"properties":969,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":971,"statistic":24},[],{"title":970},{"EN":46},[48],[973,980],{"id":51,"indexDatabase":974,"url":64,"indexYears":24,"academicFieldIds":979,"indexDatabaseRanking":24},{"id":53,"createTime":24,"updateTime":24,"relativeEntities":975,"label":976,"description":977,"key":60,"publicationTags":978,"standard":24},[],{"EN":56,"VI":56},{"EN":58,"VI":59},[62,63],[66,67,68],{"id":70,"indexDatabase":981,"url":81,"indexYears":82,"academicFieldIds":986,"indexDatabaseRanking":85},{"id":72,"createTime":24,"updateTime":24,"relativeEntities":982,"label":983,"description":984,"key":78,"publicationTags":985,"standard":24},[],{"EN":75,"VI":75},{"EN":75,"VI":77},[80],[84],{"impactFactor":88,"impactFactorByYear":988,"i10Index":88,"i10IndexLast5Year":88,"totalPublication":90,"totalPublicationByYear":989,"totalCitation":88,"totalCitationByYear":990,"totalCitationPerPublication":88,"totalCitationPerPublicationByYear":991,"hindexLast5Year":88,"hindex":88},{},{"1987":92,"1989":93,"1990":92,"1991":92,"1992":92,"1993":93,"1995":93,"1996":92,"1997":92,"1998":93,"2000":93,"2001":93,"2002":93,"2005":92,"2006":94,"2007":95,"2008":94,"2009":92,"2010":92,"2011":96,"2012":97,"2014":97,"2015":97,"2016":92,"2017":92,"2018":93,"2019":95,"2020":94,"2021":92,"2022":97,"2023":92},{},{},{"pages":993,"volume":995},{"VOID":994},"503-517",{"VOID":864},{"total":88,"publishYear":866,"statisticByYear":997},{},"2016-01-25","2026-07-11T11:05:46.852+00:00",[62,85],[1002,1008,1011,1014,1017,1020,1023,1026,1032,1035,1038,1041,1044,1047,1050,1053,1059,1062,1065,1071,1074,1077,1080,1083,1086,1089,1092,1095,1098,1101,1104,1107,1110,1116,1119,1122,1125,1128,1134,1137,1144,1147,1153,1159,1165,1171,1174,1177,1180,1186,1192,1198,1204],{"id":1003,"text":1004,"url":1005,"identifiers":1006},"430b9132-0ce8-4c15-b246-5fddd2a6c0c1","Altwegg R, Reyer H-U (2003) Patterns of natural selection on size at metamorphosis in water frogs. Evolution 57:872–882. doi:10.1111\u002Fj.0014-3820.2003.tb00298.x","https:\u002F\u002Facademic.oup.com\u002Fevolut\u002Farticle\u002F57\u002F4\u002F872\u002F6756121",{"doi":1007},"10.1111\u002Fj.0014-3820.2003.tb00298.x",{"id":24,"text":1009,"url":24,"identifiers":1010},"Anderson JD, Williamson GK (1976) Terrestrial mode of reproduction in Ambystoma cingulatum. Herpetologica 32:214–221",{},{"id":24,"text":1012,"url":24,"identifiers":1013},"Bates D, Maechler M, Bolker BM, Walker S (2015) lme4: linear mixed-effects models using Eigen and S4",{},{"id":214,"text":1015,"url":216,"identifiers":1016},"Blom J, Lilja C (2005) A comparative study of embryonic development of some bird species with different patterns of postnatal growth. Zoology 108:81–95",{"doi":218},{"id":214,"text":1018,"url":216,"identifiers":1019},"Boone MD, Scott DE, Niewiarowski PH (2002) Effects of hatching time for larval Ambystomatid salamanders. Copeia 2002:511–517",{"doi":218},{"id":214,"text":1021,"url":216,"identifiers":1022},"Cohen CS, Strathmann RR (1996) Embryos at the edge of tolerance: effects of environment and structure of egg masses on supply of oxygen to embryos. Biol Bull 190:8–15",{"doi":218},{"id":214,"text":1024,"url":216,"identifiers":1025},"Croshaw DA, Scott DE (2005) Experimental evidence that nest attendance benefits female marbled salamanders (Ambystoma opacum) by reducing egg mortality. Am Midl Nat 154:398–411",{"doi":218},{"id":1027,"text":1028,"url":1029,"identifiers":1030},"005f86cf-e981-4546-bea0-b3dd9ae3eddf","Graham ER, Fay SA, Davey A, Sanders RW (2013) Intracapsular algae provide fixed carbon to developing embryos of the salamander Ambystoma maculatum. J Exp Biol 216:452–459. doi:10.1242\u002Fjeb.076711","https:\u002F\u002Fjournals.biologists.com\u002Fjeb\u002Farticle\u002Fdoi\u002F10.1242\u002Fjeb.076711\u002F257931\u002FIntracapsular-algae-provide-fixed-carbon-to",{"doi":1031},"10.1242\u002Fjeb.076711",{"id":214,"text":1033,"url":216,"identifiers":1034},"Hale RE, Travis J (2012) The evolution of developmental dependence or “Why do my kids need me so much?”. Evol Ecol Res 14:1–15",{"doi":218},{"id":24,"text":1036,"url":24,"identifiers":1037},"Harrison RG (1969) Harrison stages and description of the normal development of the spotted salamander, Ambystoma punctatum (Linn.). In: Wilens S (ed) Organization and development of the embryo. Yale University Press, New Haven, pp 44–66",{},{"id":24,"text":1039,"url":24,"identifiers":1040},"Kinne O, Kinne EM (1962) Rates of development in embryos of a cyprinodont fish exposed to different temperature-salinity-oxygen combinations. Can J Zool 40:231–253",{},{"id":214,"text":1042,"url":216,"identifiers":1043},"Lee CE, Strathmann RR (1998) Scaling of gelatinous clutches: effects of siblings’ competition for oxygen on clutch size and parental investment per offspring. Am Nat 151:293–310",{"doi":218},{"id":24,"text":1045,"url":24,"identifiers":1046},"Lenth R (2015) lsmeans: Least-square means",{},{"id":24,"text":1048,"url":24,"identifiers":1049},"Marco A, Blaustein AR (1998) Egg gelatinous matrix protects Ambystoma gracile embryos from prolonged exposure to air. Herpetol J 8:207–211",{},{"id":214,"text":1051,"url":216,"identifiers":1052},"Martin KLM (1999) Ready and waiting: delayed hatching and extended incubation of anamniotic vertebrate terrestrial eggs. Am Zool 39:279–288",{"doi":218},{"id":1054,"text":1055,"url":1056,"identifiers":1057},"253a79f0-ce82-4f5a-ab55-4bc78a42186a","Martin KL, Carter AL (2013) Brave new propagules: terrestrial embryos in anamniotic eggs. Integr Comp Biol 53:233–247. doi:10.1093\u002Ficb\u002Fict018","https:\u002F\u002Facademic.oup.com\u002Ficb\u002Farticle-lookup\u002Fdoi\u002F10.1093\u002Ficb\u002Fict018",{"doi":1058},"10.1093\u002Ficb\u002Fict018",{"id":214,"text":1060,"url":216,"identifiers":1061},"Montague JR (1987) Yolk absorption and early larval growth in Desmognathine salamanders. J Herpetol 21:226–228",{"doi":218},{"id":214,"text":1063,"url":216,"identifiers":1064},"Nussbaum RA (1985) The evolution of parental care in salamanders. Museum of Zoology University of Michigan, Ann Arbor, pp 1–50",{"doi":218},{"id":1066,"text":1067,"url":1068,"identifiers":1069},"97194635-7ef1-4fd2-bb1d-9d6108581956","Nussbaum RA (1987) Parental care and egg size in salamanders: an examination of the safe harbor hypothesis. Res Popul Ecol (Kyoto) 29:27–44","https:\u002F\u002Fesj-journals.onlinelibrary.wiley.com\u002Fdoi\u002F10.1007\u002FBF02515423",{"doi":1070},"10.1007\u002FBF02515423",{"id":214,"text":1072,"url":216,"identifiers":1073},"Nussbaum RA, Schultz DL (1989) Coevolution of parental care and egg size. Am Nat 133:591–603",{"doi":218},{"id":24,"text":1075,"url":24,"identifiers":1076},"Nyman KJ (1987) Ambystoma maculatum (spotted salamander). Reprod Herpetol Rev 18:14–15",{},{"id":24,"text":1078,"url":24,"identifiers":1079},"Ojanguren AF, Reyes-Gavilan FG, Rodriguez Munoz R (1999) Effects of temperature on growth and efficiency of yolk utilization in eggs and pre-feeding larval stages of Atlantic salmon. Aquac Int 7:81–87",{},{"id":214,"text":1081,"url":216,"identifiers":1082},"Orr LP, Maple WT (1978) Competition avoidance mechanisms in salamander larvae of the genus Desmognathus. Copeia 1978:679–685",{"doi":218},{"id":214,"text":1084,"url":216,"identifiers":1085},"Petranka JW (1998) Salamanders of the United States and Canada. Smithsonian Institution Press, Washington",{"doi":218},{"id":214,"text":1087,"url":216,"identifiers":1088},"Petranka JW, Petranka JG (1981) On the evolution of nest site selection in the marbled salamander, Ambystoma opacum. Copeia 1981:387–391",{"doi":218},{"id":214,"text":1090,"url":216,"identifiers":1091},"Petranka JW, Just JJ, Crawford EC (1982) Hatching of amphibian embryos: the physiological trigger. Science 217:257–259",{"doi":218},{"id":214,"text":1093,"url":216,"identifiers":1094},"Pinder AW, Friet SC (1994) Oxygen transport in egg masses of the Amphibians Rana sylvatica and Ambystoma maculatum: convection, diffusion and oxygen production by algae. J Exp Biol 197:17–30",{"doi":218},{"id":24,"text":1096,"url":24,"identifiers":1097},"Pinheiro J, Bates D, DebRoy S, Deepayan S (2006) nlme: Linear and nonlinear mixed effects models",{},{"id":214,"text":1099,"url":216,"identifiers":1100},"R Development Core Team (2010) R: A language and environment for statistical computing",{"doi":218},{"id":214,"text":1102,"url":216,"identifiers":1103},"Rombough PJ (1987) Growth, aerobic metabolism and dissolved oxygen requirements of embryos and alevins of the steelhead trout, Salmo gairdneri. Can J Zool 66:651–660",{"doi":218},{"id":214,"text":1105,"url":216,"identifiers":1106},"Ryan TJ, Plague GR (2004) Hatching asynchrony, survival, and the fitness of alternative adult morphs in Ambystoma talpoideum. Oecologia 140:46–51",{"doi":218},{"id":214,"text":1108,"url":216,"identifiers":1109},"Scott D (1990) Effects of larval density in Ambystoma opacum: an experiment large-scale field enclosures. Ecology 71:296–306",{"doi":218},{"id":1111,"text":1112,"url":1113,"identifiers":1114},"f7124113-3692-4e73-9ff5-c4d09e8a4cf9","Scott DE (1994) The effect of larval density on adult demographic traits in Ambystoma opacum. Ecology 75:1383–1396. doi:10.2307\u002F1937462","https:\u002F\u002Fesajournals.onlinelibrary.wiley.com\u002Fdoi\u002F10.2307\u002F1937462",{"doi":1115},"10.2307\u002F1937462",{"id":214,"text":1117,"url":216,"identifiers":1118},"Scott DE (2005) Ambystoma opacum (Marbled Salamander). In: Lannoo M (ed) Amphibian declines: the conservation status of United States species. University of California Press, Berkeley, pp 627–632",{"doi":218},{"id":214,"text":1120,"url":216,"identifiers":1121},"Semlitsch RD, Scott DE, Pechmann JHK (1988) Time and size at metamorphosis related to adult fitness in Ambystoma talpoideum. Ecology 69:184–192",{"doi":218},{"id":214,"text":1123,"url":216,"identifiers":1124},"Seymour RS (1995) Oxygen uptake by embryos in gelatinous egg masses of Rana sylvatica: the roles of diffusion and convection. Copeia 1995:577–585",{"doi":218},{"id":214,"text":1126,"url":216,"identifiers":1127},"Seymour RS, Roberts JD (1991) Embryonic respiration and oxygen distribution in foamy and nonfoamy egg masses of the frog Limnodynastes tasmaniensis. Physiol Zool 64:1322–1340",{"doi":218},{"id":1129,"text":1130,"url":1131,"identifiers":1132},"403705d9-ba0c-477c-850e-1d016cc472c3","Shaffer HB, Clark JM, Kraus F (1991) When molecules and morphology clash: a phylogenetic analysis of the North American Ambystomatid salamanders (Caudata: Ambystomatidae). Syst Biol 40:284–303. doi:10.1093\u002Fsysbio\u002F40.3.284","https:\u002F\u002Facademic.oup.com\u002Fsysbio\u002Farticle-lookup\u002Fdoi\u002F10.1093\u002Fsysbio\u002F40.3.284",{"doi":1133},"10.1093\u002Fsysbio\u002F40.3.284",{"id":214,"text":1135,"url":216,"identifiers":1136},"Smith C (1990) Effects of variation body size on intraspecifc competion among larval salamanders. Ecology 71:1777–1788",{"doi":218},{"id":24,"text":1138,"url":1139,"identifiers":1140},"St. Mary CM, Gordon E, Hale RE (2004) Environmental effects on egg development and hatching success in Jordanella floridae, a species with parental care. J Fish Biol 65:760–768. doi:10.1111\u002Fj.1095-8649.2004.00481.x","https:\u002F\u002Fdoi.org\u002F10.1111\u002Fj.0022-1112.2004.00481.x",{"mag":1141,"openalex":1142,"doi":1143},"2066506382","W2066506382","10.1111\u002Fj.0022-1112.2004.00481.x",{"id":214,"text":1145,"url":216,"identifiers":1146},"Stenhouse S, Hairston N, Cobey A (1983) Predation and competition in Ambystoma larvae: field and laboratory experiments. J Herpetol 17:210–220",{"doi":218},{"id":1148,"text":1149,"url":1150,"identifiers":1151},"199ade7a-ce7f-4df0-ab56-3028e9b78e97","Tattersall GJ, Spiegelaar N (2008) Embryonic motility and hatching success of Ambystoma maculatum are influenced by a symbiotic alga. Can J Zool 86:1289–1298. doi:10.1139\u002FZ08-115","http:\u002F\u002Fwww.nrcresearchpress.com\u002Fdoi\u002F10.1139\u002FZ08-115",{"doi":1152},"10.1139\u002Fz08-115",{"id":1154,"text":1155,"url":1156,"identifiers":1157},"38a6d2eb-70aa-4a07-9423-5a5d3337193f","Tukey J (1949) Comparing individual means in the analysis of variance. Biometrics 5:99–114","https:\u002F\u002Fwww.jstor.org\u002Fstable\u002F3001913?origin=crossref",{"doi":1158},"10.2307\u002F3001913",{"id":1160,"text":1161,"url":1162,"identifiers":1163},"73316f8c-0d3d-40bc-a451-783706e7aed9","Urban MC (2007) Risky prey behavior evolves in risky habitats. Proc Natl Acad Sci USA 104:14377–14382. doi:10.1073\u002Fpnas.0704645104","https:\u002F\u002Fpnas.org\u002Fdoi\u002Ffull\u002F10.1073\u002Fpnas.0704645104",{"doi":1164},"10.1073\u002Fpnas.0704645104",{"id":1166,"text":1167,"url":1168,"identifiers":1169},"eb331da7-0e53-483b-92b0-0aa57316c988","Valls JH, Mills NE (2007) Intermittent hypoxia in eggs of Ambystoma maculatum: embryonic development and egg capsule conductance. J Exp Biol 210:2430–2435. doi:10.1242\u002Fjeb.003541","https:\u002F\u002Fjournals.biologists.com\u002Fjeb\u002Farticle\u002F210\u002F14\u002F2430\u002F16915\u002FIntermittent-hypoxia-in-eggs-of-Ambystoma",{"doi":1170},"10.1242\u002Fjeb.003541",{"id":214,"text":1172,"url":216,"identifiers":1173},"Van Buskirk J, McCollum SA, Werner EE (1997) Natural selection for environmentally induced phenotypes in tadpoles. Evolution (NY) 51:1983–1992",{"doi":218},{"id":214,"text":1175,"url":216,"identifiers":1176},"Voss SR (1993) Effect of temperature on body size, developmental stage, and timing of hatching in Ambystoma maculatum. J Herpetol 27:329–333",{"doi":218},{"id":214,"text":1178,"url":216,"identifiers":1179},"Walls S (1995) Differential vulnerability to predation and refuge use in competing larval salamanders. Oecologia 101:86–93",{"doi":218},{"id":1181,"text":1182,"url":1183,"identifiers":1184},"15097ba9-bdec-4152-a487-d0431cc1e7a7","Walls S, Blaustein A (1995) Larval marbled salamanders, Ambystoma opacum, eat their kin. Anim Behav 50:537–545","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS0003347285702680",{"doi":1185},"10.1006\u002Fanbe.1995.0268",{"id":1187,"text":1188,"url":1189,"identifiers":1190},"6ff4f51a-f505-4c62-a821-2d6decba50a1","Warkentin KM (2007) Oxygen, gills, and embryo behavior: mechanisms of adaptive plasticity in hatching. Comp Biochem Physiol A Mol Integr Physiol 148:720–731. doi:10.1016\u002Fj.cbpa.2007.02.009","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS1095643307007738",{"doi":1191},"10.1016\u002Fj.cbpa.2007.02.009",{"id":1193,"text":1194,"url":1195,"identifiers":1196},"8871f5c3-9cd6-4b71-83af-7e74b212972e","Warkentin KM (2011) Plasticity of hatching in amphibians: evolution, trade-offs, cues and mechanisms. Integr Comp Biol 51:111–127. doi:10.1093\u002Ficb\u002Ficr046","https:\u002F\u002Facademic.oup.com\u002Ficb\u002Farticle-lookup\u002Fdoi\u002F10.1093\u002Ficb\u002Ficr046",{"doi":1197},"10.1093\u002Ficb\u002Ficr046",{"id":1199,"text":1200,"url":1201,"identifiers":1202},"a9e0eb03-066b-4c6c-becb-bf7b3daf6386","Williams JS, Niedzwiecki JH, Weisrock DW (2013) Species tree reconstruction of a poorly resolved clade of salamanders (Ambystomatidae) using multiple nuclear loci. Mol Phylogenet Evol 68:671–682. doi:10.1016\u002Fj.ympev.2013.04.013","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS1055790313001711",{"doi":1203},"10.1016\u002Fj.ympev.2013.04.013",{"id":24,"text":1205,"url":24,"identifiers":1206},"Worthington RD (1969) Additional observations on sympatric species of salamander larvae in a Maryland pond. Herpetologica 25:227–229",{},{"id":1208,"createTime":1209,"updateTime":1210,"relativeEntities":1211,"slug":1212,"properties":1213,"entityType":119,"verifyStatus":120,"verifyTime":1224,"verifyNote":122,"languages":1225,"translateLanguages":24,"viewCount":88,"primaryUrl":1227,"fullTextUrl":24,"authors":1228,"publicationType":144,"publisherRelationship":1269,"citationCount":88,"citationInfo":1320,"publishDate":1323,"publishYear":1321,"citationAnalyzeStatus":746,"lastCitationAnalyze":1210,"indexDatabases":1324,"openAccess":24,"references":1325,"isForceReanalyzing":297},"34e9642f-2e8b-4ab2-8048-c9ac2e422ecd","2024-04-19T08:08:46.865+00:00","2026-07-10T15:05:12.353+00:00",[],"Haematozoan-Parasites-and-Migratory-Behaviour-in-Waterfowl",{"openalex":1214,"mag":1216,"title":1218,"gsPaper":1220,"doi":1222},{"VOID":1215},"W2162255327",{"VOID":1217},"2162255327",{"EN":1219},"Haematozoan Parasites and Migratory Behaviour in Waterfowl",{"VOID":1221},"[\"14848870659408523157\"]",{"VOID":1223},"10.1023\u002Fa:1011009419264","2024-04-30T16:16:57.593+00:00",[1226],"EN","http:\u002F\u002Flink.springer.com\u002F10.1023\u002FA:1011009419264",[1229,1250],{"id":1230,"sortIndex":88,"researcher":24,"roles":1231,"affiliations":1232,"properties":1241,"displayName":1245,"givenName":24,"familyName":24},"69d240c7-6991-46a8-a635-484ebea4dc77",[],[1233],{"id":1234,"sortIndex":88,"affiliation":1235,"properties":24},"eff67451-5f81-4e2e-a86c-507c2c1af805",{"id":1234,"createTime":24,"updateTime":24,"relativeEntities":1236,"slug":24,"properties":1237,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":1240,"statistic":24},[],{"title":1238},{"VI":1239},"Department of Applied Biology, Estación Biológica de Doñana, CSIC, Sevilla, Spain",[],{"orcid":1242,"title":1244,"gsAuthor":1246,"openalex":1248},{"VOID":1243},"https:\u002F\u002Forcid.org\u002F0000-0002-4664-9011",{"EN":1245},"Jordi Figuerola",{"VOID":1247},"[\"YCTrDuMAAAAJ\"]",{"VOID":1249},"A5063469614",{"id":1251,"sortIndex":93,"researcher":24,"roles":1252,"affiliations":1253,"properties":1260,"displayName":1264,"givenName":24,"familyName":24},"29a141c4-8c46-4720-b020-eeb09233ed92",[],[1254],{"id":1234,"sortIndex":88,"affiliation":1255,"properties":24},{"id":1234,"createTime":24,"updateTime":24,"relativeEntities":1256,"slug":24,"properties":1257,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":1259,"statistic":24},[],{"title":1258},{"VI":1239},[],{"orcid":1261,"title":1263,"gsAuthor":1265,"openalex":1267},{"VOID":1262},"https:\u002F\u002Forcid.org\u002F0000-0002-1268-4951",{"EN":1264},"Andy J. Green",{"VOID":1266},"[\"wTg9HCcAAAAJ\"]",{"VOID":1268},"A5024951630",{"url":24,"publisher":1270,"properties":1313},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":1271,"slug":10,"properties":1272,"entityType":22,"verifyStatus":23,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":25,"subjectFields":1277,"manageAffiliations":1282,"indexDatabases":1293,"url":86,"thumbnailPath":24,"statistic":1308,"gsStatistic":24,"type":24,"analyzePriority":24},[],{"country":1273,"eissn":1274,"issn":1275,"title":1276},{"VOID":13},{"VOID":15},{"VOID":17},{"EN":19},[1278],{"id":28,"createTime":24,"updateTime":24,"relativeEntities":1279,"label":1280,"description":1281,"parentId":24,"standard":24,"scholarHubFieldId":24},[],{"EN":31},{},[1283,1288],{"id":35,"createTime":24,"updateTime":24,"relativeEntities":1284,"slug":24,"properties":1285,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":1287,"statistic":24},[],{"title":1286},{"EN":39},[],{"id":42,"createTime":24,"updateTime":24,"relativeEntities":1289,"slug":24,"properties":1290,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":1292,"statistic":24},[],{"title":1291},{"EN":46},[48],[1294,1301],{"id":51,"indexDatabase":1295,"url":64,"indexYears":24,"academicFieldIds":1300,"indexDatabaseRanking":24},{"id":53,"createTime":24,"updateTime":24,"relativeEntities":1296,"label":1297,"description":1298,"key":60,"publicationTags":1299,"standard":24},[],{"EN":56,"VI":56},{"EN":58,"VI":59},[62,63],[66,67,68],{"id":70,"indexDatabase":1302,"url":81,"indexYears":82,"academicFieldIds":1307,"indexDatabaseRanking":85},{"id":72,"createTime":24,"updateTime":24,"relativeEntities":1303,"label":1304,"description":1305,"key":78,"publicationTags":1306,"standard":24},[],{"EN":75,"VI":75},{"EN":75,"VI":77},[80],[84],{"impactFactor":88,"impactFactorByYear":1309,"i10Index":88,"i10IndexLast5Year":88,"totalPublication":90,"totalPublicationByYear":1310,"totalCitation":88,"totalCitationByYear":1311,"totalCitationPerPublication":88,"totalCitationPerPublicationByYear":1312,"hindexLast5Year":88,"hindex":88},{},{"1987":92,"1989":93,"1990":92,"1991":92,"1992":92,"1993":93,"1995":93,"1996":92,"1997":92,"1998":93,"2000":93,"2001":93,"2002":93,"2005":92,"2006":94,"2007":95,"2008":94,"2009":92,"2010":92,"2011":96,"2012":97,"2014":97,"2015":97,"2016":92,"2017":92,"2018":93,"2019":95,"2020":94,"2021":92,"2022":97,"2023":92},{},{},{"issue":1314,"pages":1316,"volume":1318},{"VOID":1315},"2",{"VOID":1317},"143-153",{"VOID":1319},"14",{"total":88,"publishYear":1321,"statisticByYear":1322},2000,{},"2000-03-01",[62,85],[1326,1330,1334,1337,1340,1344,1347,1351,1355,1358,1362,1365,1369,1373,1377,1381,1385,1389,1393,1397,1401,1405,1409,1413,1417,1421,1424,1428,1432,1436,1440,1443,1447,1451,1454,1458,1462,1465,1468,1472,1476,1480,1484,1488,1492,1495,1499,1502,1506,1509,1512,1516,1520,1523,1526,1529],{"id":24,"text":1327,"url":24,"identifiers":1328},"Allander, K. and Sundberg, J. (1997) Temporal variation and reliability of blood parasite levels in captive Yellowhammer males Emberiza citrinella. J. Avian Biol. 28, 325–330.",{"doi":1329},"10.2307\u002F3676946",{"id":24,"text":1331,"url":24,"identifiers":1332},"Atkinson, C.T. and van Riper III, C. (1991) Pathogenicity and epizootiology of avian haematozoa: Plasmodium, Leucocytozoon and Haemoproteus. In J.E. Loye and M. Zuk (eds) Bird–Parasite Interations. Oxford University Press, Oxford, pp. 19–48.",{"doi":1333},"10.1093\u002Foso\u002F9780198577386.003.0002",{"id":24,"text":1335,"url":24,"identifiers":1336},"Balmford, A. and Read, A.F. (1991) Testing alternative models of sexual selection through female choice. Tree 6, 274–276.",{},{"id":24,"text":1338,"url":24,"identifiers":1339},"Batt, B.D.J., Afton, A.D., Anderson, M.G., Ankney, C.D., Johnson, D.H., Kadlec, J.A. and Krapu, G.L. (1992) Ecology and Management of Breeding Waterfowl. University of Minnesota Press, Minneapolis and London.",{},{"id":24,"text":1341,"url":24,"identifiers":1342},"Bennett, G.M. and Fallis, A.M. (1960) Blood parasites of birds in Algonquin Park, Canada, and a discussion of their transmission. Can. J. Zool. 38, 261–273.",{"doi":1343},"10.1139\u002Fz60-033",{"id":24,"text":1345,"url":24,"identifiers":1346},"Bennett, G.F., Whiteway, M. and Woodworth–Lynas, C. (1982) Host–Parasite Catalogue of the Avian Haematozoa. Occasional Papers in Biology, Memorial University of Newfoundland, Newfoundland.",{},{"id":24,"text":1348,"url":24,"identifiers":1349},"Bennett, G.F., Stotts, V.D. and Bateman, M.C. (1991) Blood parasites of black ducks and other anatids from Labrador and insular Newfoundland. Can. J. Zool. 69, 1405–1407.",{"doi":1350},"10.1139\u002Fz91-198",{"id":24,"text":1352,"url":24,"identifiers":1353},"Bennett, G.F., Squires–Parsons, D., Siikamäki, P., Huhta, E., Allander, K. and Hillström, L. (1995) A comparisons of the blood parasites of three Fenno–Scandian populations of the Pied Flycatcher Ficedula hypoleuca. J. Avian Biol. 26, 33–38.",{"doi":1354},"10.2307\u002F3677210",{"id":24,"text":1356,"url":24,"identifiers":1357},"Bishop, M.A. and Bennett, G.F. (1992) Host–Parasite Catalogue of the Avian Haematozoa. Supplement 1. Occasional Papers in Biology, Memorial University of Newfoundland, Newfoundland.",{},{"id":24,"text":1359,"url":24,"identifiers":1360},"Clayton, D.H. (1991) The influence of parasites on host sexual selection. Parasitol. Today 7, 329–334.",{"doi":1361},"10.1016\u002F0169-4758(91)90211-6",{"id":24,"text":1363,"url":24,"identifiers":1364},"Dogiel, V.A. (1964) General Parasitology. Oliver and Boyd, Edinburgh.",{},{"id":24,"text":1366,"url":24,"identifiers":1367},"Ewald, P.W. (1994) Evolution of Infectious Disease. Oxford University Press, Oxford.",{"doi":1368},"10.1093\u002Foso\u002F9780195060584.001.0001",{"id":24,"text":1370,"url":24,"identifiers":1371},"Felsenstein, J. (1985) Phylogenies and the comparative method. Am. Nat. 125, 1–15.",{"doi":1372},"10.1086\u002F284325",{"id":24,"text":1374,"url":24,"identifiers":1375},"Figuerola, J. (1999) Effects of salinity on rates of infestation of waterbirds by haematozoa. Ecography 22, 681–685.",{"doi":1376},"10.1111\u002Fj.1600-0587.1999.tb00517.x",{"id":24,"text":1378,"url":24,"identifiers":1379},"Figuerola, J. and Green, A.J. (2000) The evolution of sexual dimorphism in relation to mating patterns, cavity nesting, insularity and sympatry in the Anseriformes. Func. Ecol. 14, 701–710.",{"doi":1380},"10.1046\u002Fj.1365-2435.2000.00474.x",{"id":24,"text":1382,"url":24,"identifiers":1383},"Fitzpatrick, S. (1994) Colourful migratory birds: evidence for a mechanism other than parasite resistance for the maintenance of `good genes' sexual selection. Proc. R. Soc. Lond. B 257, 155–160.",{"doi":1384},"10.1098\u002Frspb.1994.0109",{"id":24,"text":1386,"url":24,"identifiers":1387},"Garland Jr, T., Harvey, P.H. and Ives, A.R. (1992) Procedures for the analysis of comparative data using phylogenetically independent contrasts. Syst. Biol. 41, 18–32.",{"doi":1388},"10.1093\u002Fsysbio\u002F41.1.18",{"id":24,"text":1390,"url":24,"identifiers":1391},"Gaston, K.J. (1994) Measuring geographic range sizes. Ecography 17, 198–205.",{"doi":1392},"10.1111\u002Fj.1600-0587.1994.tb00094.x",{"id":24,"text":1394,"url":24,"identifiers":1395},"Gaston, K.J. and Blackburn, T.M. (1996) Global macroecology: interactions between population size, geographic range size and body size in the Anseriformes. J. Anim. Ecol. 65, 701–714.",{"doi":1396},"10.2307\u002F5669",{"id":24,"text":1398,"url":24,"identifiers":1399},"Green, A.J. (1996) Analyses of globally threatened Anatidae in relation to threats, distribution, migration patterns, and habitat use. Cons. Biol. 10, 1435–1445.",{"doi":1400},"10.1046\u002Fj.1523-1739.1996.10051435.x",{"id":24,"text":1402,"url":24,"identifiers":1403},"Gregory, R.D. (1990) Parasites and host geographic range as illustrated by waterfowl. Funct. Ecol. 4, 645–654.",{"doi":1404},"10.2307\u002F2389732",{"id":24,"text":1406,"url":24,"identifiers":1407},"Gregory, R.D. and Blackburn, T.M. (1991) Parasites prevalence and host sample size. Parasitol. Today 7, 316–318.",{"doi":1408},"10.1016\u002F0169-4758(91)90269-T",{"id":24,"text":1410,"url":24,"identifiers":1411},"Greiner, E.C., Bennett, G.F., White, E.M. and Cooms, R.F. (1975) Distribution of the avian hematozoa of North America. Can. J. Zool. 53, 1762–1787.",{"doi":1412},"10.1139\u002Fz75-211",{"id":24,"text":1414,"url":24,"identifiers":1415},"Hamilton, W.D. and Zuk, M. (1982) Heritable true fitness and bright birds: a role for parasites? Science 218, 384–386.",{"doi":1416},"10.1126\u002Fscience.7123238",{"id":24,"text":1418,"url":24,"identifiers":1419},"Harvey, P.H. and Pagel, M.D. (1991) The Comparative Method in Evolutionary Biology. Oxford University Press, Oxford.",{"doi":1420},"10.1093\u002Foso\u002F9780198546412.001.0001",{"id":24,"text":1422,"url":24,"identifiers":1423},"del Hoyo, J., Elliott, A. and Sargatal, J. (1992) Handbook of the Birds of the World, 1. Lynx Edicions, Barcelona.",{},{"id":24,"text":1425,"url":24,"identifiers":1426},"Iwasa, Y., Pomiankowski, A. and Nee, S. (1991) The evolution of costly mate preferences. II. The ‘handicap’ principle. Evolution 45, 1431–1442.",{"doi":1427},"10.2307\u002F2409890",{"id":24,"text":1429,"url":24,"identifiers":1430},"Livezey, B.C. (1986) A phylogenetic analysis of recent anseriform genera using morphological characters. Auk 103, 737–754.",{"doi":1431},"10.1093\u002Fauk\u002F103.4.737",{"id":24,"text":1433,"url":24,"identifiers":1434},"Livezey, B.C. (1991) A phylogenetic analysis and classification of recent Dabbling Ducks (Tribe Anatini) based on comparative morphology. Auk 108, 471–508.",{"doi":1435},"10.2307\u002F4088089",{"id":24,"text":1437,"url":24,"identifiers":1438},"Livezey, B.C. (1995a) Phylogeny and evolutionary ecology of modern Seaducks (Anatidae: Mergini). Condor 97, 233–255.",{"doi":1439},"10.2307\u002F1368999",{"id":24,"text":1441,"url":24,"identifiers":1442},"Livezey, B.C. (1995b) Phylogeny and comparative ecology of Stiff–tailed ducks (Anatidae: Oxyurini). Wilson Bull. 107, 214–234.",{},{"id":24,"text":1444,"url":24,"identifiers":1445},"Livezey, B.C. (1995c) A phylogenetic analysis of the Whistling and White–backed ducks (Anatidae: Dendrocygninae) using morphological characters. Annal. Carnegie Museum 64, 65–97.",{"doi":1446},"10.5962\u002Fp.226633",{"id":24,"text":1448,"url":24,"identifiers":1449},"Livezey, B.C. (1996a) A phylogenetic analysis of modern Pochards (Anatidae: Aythyini). Auk 113, 74–93.",{"doi":1450},"10.2307\u002F4088937",{"id":24,"text":1452,"url":24,"identifiers":1453},"Livezey, B.C. (1996b) A phylogenetic analysis of Geese and Swans (Anseriformes: Anserinae), including selected fossil species. Syst. Zool. 45, 415–450.",{},{"id":24,"text":1455,"url":24,"identifiers":1456},"Livezey, B.C. (1997a) A phylogenetic classification of waterfowl (Aves: Anseriformes), including selected fossil species. Annal. Carnegie Museum 66, 457–496.",{"doi":1457},"10.5962\u002Fp.215141",{"id":24,"text":1459,"url":24,"identifiers":1460},"Livezey, B.C. (1997b) A phylogenetic analysis of modern sheldgeese and shelducks (Anatidae, Tadornini). Ibis 139, 51–66.",{"doi":1461},"10.1111\u002Fj.1474-919X.1997.tb04504.x",{"id":24,"text":1463,"url":24,"identifiers":1464},"Livezey, B.C. and Humphrey, P.S. (1992) Taxonomy and identification of steamer–ducks (Anatidae: Tachyeres). University of Kansas, Museum of Natural History Monographs 8, 1–125.",{},{"id":24,"text":1466,"url":24,"identifiers":1467},"Madge, S. and Burn, H. (1988) Wildfowl: An Identification Guide to the Ducks, Geese and Swams of the World. Helm, London.",{},{"id":24,"text":1469,"url":24,"identifiers":1470},"Merilä, J., Björklund, M. and Bennett, G.F. (1995) Geographic and individual variation in haematozoan infections in the greenfinch, Carduelis chloris. Can. J. Zool. 73, 1798–1804.",{"doi":1471},"10.1139\u002Fz95-212",{"id":24,"text":1473,"url":24,"identifiers":1474},"Møller, A.P. (1990) Parasites and sexual selection: current status of the Hamilton and Zuk hypothesis. J. Evol. Biol. 3, 319–328.",{"doi":1475},"10.1046\u002Fj.1420-9101.1990.3050319.x",{"id":24,"text":1477,"url":24,"identifiers":1478},"Møller, A.P. and Erritzøe, J. (1998) Host immune defence and migration in birds. Evol. Ecol. 12, 945–953.",{"doi":1479},"10.1023\u002FA:1006516222343",{"id":24,"text":1481,"url":24,"identifiers":1482},"Peirce, M.A. (1981) Distribution and host–parasite check–list of the haematozoa of birds in Western Europe. J. Nat. Hist. 15, 419–458.",{"doi":1483},"10.1080\u002F00222938100770321",{"id":24,"text":1485,"url":24,"identifiers":1486},"Piersma, T. (1997) Do global patterns of habitat use and migration strategies co–evolve with relative investment in immunocompetence due to spatial variation in parasite pressure? Oikos 80, 623–631.",{"doi":1487},"10.2307\u002F3546640",{"id":24,"text":1489,"url":24,"identifiers":1490},"Price, P.W., Westoby, M. and Rice, B. (1988) Parasite–mediated competition: some predictions and tests. Am. Nat. 131, 544–555.",{"doi":1491},"10.1086\u002F284805",{"id":24,"text":1493,"url":24,"identifiers":1494},"Purvis, A. and Rambaut, A. (1995). Comparative analysis by independent contrasts (CAIC): an Apple Macintosh application for analysing comparative data. Comput. Appl. Biosci. 11, 247–251.",{},{"id":24,"text":1496,"url":24,"identifiers":1497},"Purvis, A., Gittleman, J.L. and Luh, H.–K. (1994) Truth or consequences: effects of phylogenetic accuracy on two comparative methods. J. Theor. Biol. 167, 293–300.",{"doi":1498},"10.1006\u002Fjtbi.1994.1071",{"id":24,"text":1500,"url":24,"identifiers":1501},"Sheldon, B.C. and Verhulst, S. (1996) Ecological immunology: costly parasite defences and trade–offs in evolutionary ecology. TREE 11, 317–321.",{},{"id":24,"text":1503,"url":24,"identifiers":1504},"Sol, D., Jovani, R. and Torres, J. (2000) Geographical variation in blood parasites in feral pigeons: the role of vectors. Ecography 23, 307–314.",{"doi":1505},"10.1111\u002Fj.1600-0587.2000.tb00286.x",{"id":24,"text":1507,"url":24,"identifiers":1508},"Sorenson, L.G. (1991) Mating systems of tropical and southern hemisphere dabbling ducks. In Acta XX Congressus Internationalis Ornithologici. New Zealand Ornithological Congress Trust Board, Wellington, pp. 851–859.",{},{"id":24,"text":1510,"url":24,"identifiers":1511},"Valkiunas, G. (1991) The role of seasonal migrations in the distribution of Haemosporidia of birds in Noth Palearctic. Ekologija 1993, 57–73.",{},{"id":24,"text":1513,"url":24,"identifiers":1514},"Van Riper III, C., van Riper, S.G., Goff, M.L. and Laird, M. (1986) The epizootiology and ecological significance of malaria in Hawaiian land birds. Ecol. Monog. 56, 327–344.",{"doi":1515},"10.2307\u002F1942550",{"id":24,"text":1517,"url":24,"identifiers":1518},"Warner, R.E. (1968) The role of introduced diseases in the extinction of the endemic Hawaiian avifauna. Condor 70, 101–120.",{"doi":1519},"10.2307\u002F1365954",{"id":24,"text":1521,"url":24,"identifiers":1522},"Weatherhead, P.J., Bennett, G.F. and Schluter, D. (1991) Sexual selection and parasites in wood warblers. Auk 108, 147–152.",{},{"id":24,"text":1524,"url":24,"identifiers":1525},"Williams, P. (1996) WORLDMAP, Priority Areas for Biodiversity: Using Version 4. Privately Distributed Computer Software and Manual, London.",{},{"id":24,"text":1527,"url":24,"identifiers":1528},"Worms, M.J. and Cook, W.A. (1966) Blood parasites of ducks in the British Isles. Wildfowl 17, 33–35.",{},{"id":24,"text":1530,"url":24,"identifiers":1531},"Zuk, M. (1991) Parasites and bright birds: new data and a new prediction. In J.E. Loye and M. Zuk (eds) Bird–Parasite Interactions. Oxford University Press, Oxford, pp. 317–327.",{"doi":1532},"10.1093\u002Foso\u002F9780198577386.003.0016",{"id":1534,"createTime":1535,"updateTime":1536,"relativeEntities":1537,"slug":1538,"properties":1539,"entityType":119,"verifyStatus":120,"verifyTime":1550,"verifyNote":122,"languages":1551,"translateLanguages":24,"viewCount":88,"primaryUrl":1552,"fullTextUrl":24,"authors":1553,"publicationType":144,"publisherRelationship":1613,"citationCount":88,"citationInfo":1664,"publishDate":1667,"publishYear":1665,"citationAnalyzeStatus":23,"lastCitationAnalyze":1668,"indexDatabases":1669,"openAccess":24,"references":1670,"isForceReanalyzing":297},"244e1e3b-9781-4194-8077-847425d49890","2024-04-22T04:03:05.953+00:00","2026-07-01T14:20:47.598+00:00",[],"Plasticity-in-thermal-hardening-of-the-invasive-Asian-house-gecko",{"openalex":1540,"mag":1542,"title":1544,"gsPaper":1546,"doi":1548},{"VOID":1541},"W3135029994",{"VOID":1543},"3135029994",{"EN":1545},"Plasticity in thermal hardening of the invasive Asian house gecko",{"VOID":1547},"[\"390934374396621073\"]",{"VOID":1549},"10.1007\u002Fs10682-021-10116-x","2024-05-03T10:23:54.374+00:00",[1226],"https:\u002F\u002Flink.springer.com\u002F10.1007\u002Fs10682-021-10116-x",[1554,1575,1594],{"id":1555,"sortIndex":88,"researcher":24,"roles":1556,"affiliations":1557,"properties":1566,"displayName":1570,"givenName":24,"familyName":24},"313b1fe2-9999-4b09-a136-96b26293df2a",[],[1558],{"id":1559,"sortIndex":88,"affiliation":1560,"properties":24},"64b4037d-1bc5-4e61-b7de-10242643c6ec",{"id":1559,"createTime":24,"updateTime":24,"relativeEntities":1561,"slug":24,"properties":1562,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":1565,"statistic":24},[],{"title":1563},{"VI":1564},"School of Life Sciences, University of Technology Sydney, Broadway, NSW, 2007, Australia",[],{"orcid":1567,"title":1569,"gsAuthor":1571,"openalex":1573},{"VOID":1568},"https:\u002F\u002Forcid.org\u002F0000-0003-0699-4627",{"EN":1570},"Yingyod Lapwong",{"VOID":1572},"[\"X83GZdIAAAAJ\"]",{"VOID":1574},"A5065714648",{"id":1576,"sortIndex":93,"researcher":24,"roles":1577,"affiliations":1578,"properties":1587,"displayName":1591,"givenName":24,"familyName":24},"ca2f89d9-fe2c-4918-b6f7-e73315d16ff7",[],[1579],{"id":1580,"sortIndex":88,"affiliation":1581,"properties":24},"bce0f7a1-c3b4-43bc-a68e-77f30bf47a08",{"id":1580,"createTime":24,"updateTime":24,"relativeEntities":1582,"slug":24,"properties":1583,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":1586,"statistic":24},[],{"title":1584},{"EN":1585},"Department of Biology, Faculty of Science, Prince of Songkla University, Hat Yai, Songkhla, 90112, Thailand",[],{"orcid":1588,"title":1590,"openalex":1592},{"VOID":1589},"https:\u002F\u002Forcid.org\u002F0000-0002-3258-1618",{"EN":1591},"Ariya Dejtaradol",{"VOID":1593},"A5001820389",{"id":1595,"sortIndex":92,"researcher":24,"roles":1596,"affiliations":1597,"properties":1604,"displayName":1608,"givenName":24,"familyName":24},"08cb28de-e4a7-4f8e-a7a5-9c434da25453",[],[1598],{"id":1559,"sortIndex":88,"affiliation":1599,"properties":24},{"id":1559,"createTime":24,"updateTime":24,"relativeEntities":1600,"slug":24,"properties":1601,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":1603,"statistic":24},[],{"title":1602},{"VI":1564},[],{"orcid":1605,"title":1607,"gsAuthor":1609,"openalex":1611},{"VOID":1606},"https:\u002F\u002Forcid.org\u002F0000-0003-4822-6829",{"EN":1608},"Jonathan K. Webb",{"VOID":1610},"[\"KZIbvHYAAAAJ\"]",{"VOID":1612},"A5015799963",{"url":24,"publisher":1614,"properties":1657},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":1615,"slug":10,"properties":1616,"entityType":22,"verifyStatus":23,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":25,"subjectFields":1621,"manageAffiliations":1626,"indexDatabases":1637,"url":86,"thumbnailPath":24,"statistic":1652,"gsStatistic":24,"type":24,"analyzePriority":24},[],{"country":1617,"eissn":1618,"issn":1619,"title":1620},{"VOID":13},{"VOID":15},{"VOID":17},{"EN":19},[1622],{"id":28,"createTime":24,"updateTime":24,"relativeEntities":1623,"label":1624,"description":1625,"parentId":24,"standard":24,"scholarHubFieldId":24},[],{"EN":31},{},[1627,1632],{"id":35,"createTime":24,"updateTime":24,"relativeEntities":1628,"slug":24,"properties":1629,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":1631,"statistic":24},[],{"title":1630},{"EN":39},[],{"id":42,"createTime":24,"updateTime":24,"relativeEntities":1633,"slug":24,"properties":1634,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":1636,"statistic":24},[],{"title":1635},{"EN":46},[48],[1638,1645],{"id":51,"indexDatabase":1639,"url":64,"indexYears":24,"academicFieldIds":1644,"indexDatabaseRanking":24},{"id":53,"createTime":24,"updateTime":24,"relativeEntities":1640,"label":1641,"description":1642,"key":60,"publicationTags":1643,"standard":24},[],{"EN":56,"VI":56},{"EN":58,"VI":59},[62,63],[66,67,68],{"id":70,"indexDatabase":1646,"url":81,"indexYears":82,"academicFieldIds":1651,"indexDatabaseRanking":85},{"id":72,"createTime":24,"updateTime":24,"relativeEntities":1647,"label":1648,"description":1649,"key":78,"publicationTags":1650,"standard":24},[],{"EN":75,"VI":75},{"EN":75,"VI":77},[80],[84],{"impactFactor":88,"impactFactorByYear":1653,"i10Index":88,"i10IndexLast5Year":88,"totalPublication":90,"totalPublicationByYear":1654,"totalCitation":88,"totalCitationByYear":1655,"totalCitationPerPublication":88,"totalCitationPerPublicationByYear":1656,"hindexLast5Year":88,"hindex":88},{},{"1987":92,"1989":93,"1990":92,"1991":92,"1992":92,"1993":93,"1995":93,"1996":92,"1997":92,"1998":93,"2000":93,"2001":93,"2002":93,"2005":92,"2006":94,"2007":95,"2008":94,"2009":92,"2010":92,"2011":96,"2012":97,"2014":97,"2015":97,"2016":92,"2017":92,"2018":93,"2019":95,"2020":94,"2021":92,"2022":97,"2023":92},{},{},{"issue":1658,"pages":1660,"volume":1662},{"VOID":1659},"4",{"VOID":1661},"631-641",{"VOID":1663},"35",{"total":88,"publishYear":1665,"statisticByYear":1666},2021,{},"2021-08-01","2026-07-01T14:20:47.597+00:00",[62,85],[1671,1675,1679,1683,1687,1691,1694,1698,1702,1706,1710,1713,1716,1720,1724,1728,1732,1736,1740,1744,1748,1752,1756,1760,1764,1768,1772,1776,1780,1784,1788,1791,1795,1799,1802,1806,1810,1814,1818,1822,1826,1830,1833,1837,1841,1845,1849,1853,1857,1860,1864,1868,1872],{"id":24,"text":1672,"url":24,"identifiers":1673},"Abayarathna T, Murray BR, Webb JK (2019) Higher incubation temperatures produce long-lasting upward shifts in cold tolerance, but not heat tolerance, of hatchling geckos. Biol Open. https:\u002F\u002Fdoi.org\u002F10.1242\u002Fbio.042564",{"doi":1674},"10.1242\u002Fbio.042564",{"id":24,"text":1676,"url":24,"identifiers":1677},"Angetter L-S, LÖTters S, RÖDder D, (2011) Climate niche shift in invasive species: the case of the brown anole. Biol J Lin Soc 104:943–954. https:\u002F\u002Fdoi.org\u002F10.1111\u002Fj.1095-8312.2011.01780.x",{"doi":1678},"10.1111\u002Fj.1095-8312.2011.01780.x",{"id":24,"text":1680,"url":24,"identifiers":1681},"Angilletta MJ (2009) Thermal Adaptation: a theoretical and empirical synthesis. Oxford University Press USA - OSO, Oxford, United Kindom, Thermal Acclimation",{"doi":1682},"10.1093\u002Facprof:oso\u002F9780198570875.001.1",{"id":24,"text":1684,"url":24,"identifiers":1685},"Berrigan D, Hoffmann AA (1998) Correlations between measures of heat resistance and acclimation in two species of Drosophila and their hybrids. Biol J Lin Soc 64:449–462. https:\u002F\u002Fdoi.org\u002F10.1006\u002Fbijl.1998.0232",{"doi":1686},"10.1006\u002Fbijl.1998.0232",{"id":24,"text":1688,"url":24,"identifiers":1689},"Braby CE, Somero GN (2006) Ecological gradients and relative abundance of native (Mytilus trossulus) and invasive (Mytilus galloprovincialis) blue mussels in the California hybrid zone. Mar Biol 148:1249–1262. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs00227-005-0177-0",{"doi":1690},"10.1007\u002Fs00227-005-0177-0",{"id":24,"text":1692,"url":24,"identifiers":1693},"Bureau of Meteorology (2020) Climate statistics for Australian locations. http:\u002F\u002Fwww.bom.gov.au\u002Fclimate\u002Fdata\u002F. Accessed 22\u002F05\u002F2020",{},{"id":24,"text":1695,"url":24,"identifiers":1696},"Cameron SF, Wheatley R, Wilson RS (2018) Sex-specific thermal sensitivities of performance and activity in the asian house gecko, Hemidactylus frenatus. J Comp Physiol B 188:635–647. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs00360-018-1149-2",{"doi":1697},"10.1007\u002Fs00360-018-1149-2",{"id":24,"text":1699,"url":24,"identifiers":1700},"Carranza S, Arnold EN (2006) Systematics, biogeography, and evolution of Hemidactylus geckos (Reptilia: Gekkonidae) elucidated using mitochondrial DNA sequences. Mol Phylogenet Evol 38:531–545. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.ympev.2005.07.012",{"doi":1701},"10.1016\u002Fj.ympev.2005.07.012",{"id":24,"text":1703,"url":24,"identifiers":1704},"Chown SL, Slabber S, McGeoch MA, Janion C, Leinaas HP (2007) Phenotypic plasticity mediates climate change responses among invasive and indigenous arthropods. Proc Royal Soc B: Biol Sci 274:2531–2537. https:\u002F\u002Fdoi.org\u002F10.1098\u002Frspb.2007.0772",{"doi":1705},"10.1098\u002Frspb.2007.0772",{"id":24,"text":1707,"url":24,"identifiers":1708},"Clusella-Trullas S, Chown S (2014) Lizard thermal trait variation at multiple scales: a review. J Comp Physiol B 184:5–21. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs00360-013-0776-x",{"doi":1709},"10.1007\u002Fs00360-013-0776-x",{"id":24,"text":1711,"url":24,"identifiers":1712},"Cole NC (2004) A novel technique for capturing arboreal geckos. Herpetological Review 35:358–359",{},{"id":24,"text":1714,"url":24,"identifiers":1715},"Conroy CJ, Papenfuss T, Parker J, Hahn NE (2009) Use of tricaine methanesulfonate (MS222) for euthanasia of reptiles. J Am Assoc Lab Anim Sci 48:28–32",{},{"id":24,"text":1717,"url":24,"identifiers":1718},"Cowan T, Purich A, Perkins S, Pezza A, Boschat G, Sadler K (2014) More frequent, longer, and hotter heat waves for Australia in the twenty-first century. J Clim 27:5851–5871. https:\u002F\u002Fdoi.org\u002F10.1175\u002Fjcli-d-14-00092.1",{"doi":1719},"10.1175\u002Fjcli-d-14-00092.1",{"id":24,"text":1721,"url":24,"identifiers":1722},"Deery SW, Rej JE, Haro D, Gunderson AR (2021) Heat hardening in a pair of Anolis lizards: constraints, dynamics and ecological consequences. J Exp Biol. https:\u002F\u002Fdoi.org\u002F10.1242\u002Fjeb.240994",{"doi":1723},"10.1242\u002Fjeb.240994",{"id":24,"text":1725,"url":24,"identifiers":1726},"Farr WL (2011) Distribution of Hemidactylus frenatus in Mexico. Southwest Nat 56:265–273",{"doi":1727},"10.1894\u002FN06-FJRR-01.1",{"id":24,"text":1729,"url":24,"identifiers":1730},"Ghalambor CK, Huey RB, Martin PR, Tewksbury JJ, Wang G (2006) Are mountain passes higher in the tropics? Janzen’s hypothesis revisited. Integr Comp Biol 46:5–17. https:\u002F\u002Fdoi.org\u002F10.1093\u002Ficb\u002Ficj003",{"doi":1731},"10.1093\u002Ficb\u002Ficj003",{"id":24,"text":1733,"url":24,"identifiers":1734},"Gilbert AL, Miles DB (2019) Antagonistic responses of exposure to sublethal temperatures: adaptive phenotypic plasticity coincides with a reduction in organismal performance. Am Nat 194:344–355. https:\u002F\u002Fdoi.org\u002F10.1086\u002F704208",{"doi":1735},"10.1086\u002F704208",{"id":24,"text":1737,"url":24,"identifiers":1738},"Hoffmann AA, Sørensen JG, Loeschcke V (2003) Adaptation of Drosophila to temperature extremes: bringing together quantitative and molecular approaches. J Therm Biol 28:175–216. https:\u002F\u002Fdoi.org\u002F10.1016\u002FS0306-4565(02)00057-8",{"doi":1739},"10.1016\u002FS0306-4565(02)00057-8",{"id":24,"text":1741,"url":24,"identifiers":1742},"Hoskin CJ (2011) The invasion and potential impact of the Asian house gecko (Hemidactylus frenatus) in Australia. Austral Ecol 36:240–251. https:\u002F\u002Fdoi.org\u002F10.1111\u002Fj.1442-9993.2010.02143.x",{"doi":1743},"10.1111\u002Fj.1442-9993.2010.02143.x",{"id":24,"text":1745,"url":24,"identifiers":1746},"Hu J-t, Chen B, Li Z-h (2014) Thermal plasticity is related to the hardening response of heat shock protein expression in two Bactrocera fruit flies. J Insect Physiol 67:105–113. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.jinsphys.2014.06.009",{"doi":1747},"10.1016\u002Fj.jinsphys.2014.06.009",{"id":24,"text":1749,"url":24,"identifiers":1750},"Janzen DH (1967) Why mountain passes are higher in the tropics. Am Nat 101:233–249. https:\u002F\u002Fdoi.org\u002F10.1086\u002F282487",{"doi":1751},"10.1086\u002F282487",{"id":24,"text":1753,"url":24,"identifiers":1754},"Jiménez-Valverde A, Peterson AT, Soberón J, Overton JM, Aragón P, Lobo JM (2011) Use of niche models in invasive species risk assessments. Biol Invasions 13:2785–2797. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs10530-011-9963-4",{"doi":1755},"10.1007\u002Fs10530-011-9963-4",{"id":24,"text":1757,"url":24,"identifiers":1758},"Kelley AL (2014) The role thermal physiology plays in species invasion. Conser Physiol 2:1. https:\u002F\u002Fdoi.org\u002F10.1093\u002Fconphys\u002Fcou045",{"doi":1759},"10.1093\u002Fconphys\u002Fcou045",{"id":24,"text":1761,"url":24,"identifiers":1762},"Kolbe JJ, VanMiddlesworth PS, Losin N, Dappen N, Losos JB (2012) Climatic niche shift predicts thermal trait response in one but not both introductions of the Puerto Rican lizard Anolis cristatellus to Miami, Florida, USA. Ecol Evol 2:1503–1516. https:\u002F\u002Fdoi.org\u002F10.1002\u002Fece3.263",{"doi":1763},"10.1002\u002Fece3.263",{"id":24,"text":1765,"url":24,"identifiers":1766},"Kurita T (2013) Current status of the introduced common house gecko, Hemidactylus frenatus (Squamata: Gekkonidae), on Amamioshima Island of the Ryukyu Archipelago, Japan. Current Herpetology 32:50–60. https:\u002F\u002Fdoi.org\u002F10.5358\u002Fhsj.32.50",{"doi":1767},"10.5358\u002Fhsj.32.50",{"id":24,"text":1769,"url":24,"identifiers":1770},"Lapwong Y, Dejtaradol A, Webb JK (2020) Shifts in thermal preference of introduced Asian house geckos (Hemidactylus frenatus) in temperate regions of southeastern Australia. J Therm Biol 91:102625. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.jtherbio.2020.102625",{"doi":1771},"10.1016\u002Fj.jtherbio.2020.102625",{"id":24,"text":1773,"url":24,"identifiers":1774},"Leal M, Gunderson AR (2012) Rapid change in the thermal tolerance of a tropical lizard. Am Nat 180:815–822. https:\u002F\u002Fdoi.org\u002F10.1086\u002F668077",{"doi":1775},"10.1086\u002F668077",{"id":24,"text":1777,"url":24,"identifiers":1778},"Lee RE Jr, Chen CP, Denlinger DL (1987) A rapid cold-hardening process in insects. Science 238:1415–1417. https:\u002F\u002Fdoi.org\u002F10.1126\u002Fscience.238.4832.1415",{"doi":1779},"10.1126\u002Fscience.238.4832.1415",{"id":24,"text":1781,"url":24,"identifiers":1782},"Lenz M et al (2018) Heat challenges can enhance population tolerance to thermal stress in mussels: a potential mechanism by which ship transport can increase species invasiveness. Biol Invasions 20:3107–3122. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs10530-018-1762-8",{"doi":1783},"10.1007\u002Fs10530-018-1762-8",{"id":24,"text":1785,"url":24,"identifiers":1786},"Liwanag HEM, Haro D, Callejas B, Labib G, Pauly GB (2018) Thermal tolerance varies with age and sex for the nonnative Italian Wall Lizard (Podarcis siculus) in Southern California. J Therm Biol 78:263–269. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.jtherbio.2018.10.010",{"doi":1787},"10.1016\u002Fj.jtherbio.2018.10.010",{"id":24,"text":1789,"url":24,"identifiers":1790},"Lockwood JL, Hoopes MF, Marchetti MP (2013) Invasion Ecology, 2nd edn. Wiley, Chicester",{},{"id":24,"text":1792,"url":24,"identifiers":1793},"Loeschcke V, Hoffmann AA (2007) Consequences of heat hardening on a field fitness component in Drosophila depend on environmental temperature. Am Nat 169:175–183. https:\u002F\u002Fdoi.org\u002F10.1086\u002F510632",{"doi":1794},"10.1086\u002F510632",{"id":24,"text":1796,"url":24,"identifiers":1797},"McCann S, Greenlees MJ, Newell D, Shine R (2014) Rapid acclimation to cold allows the cane toad to invade montane areas within its Australian range. Funct Ecol 28:1166–1174. https:\u002F\u002Fdoi.org\u002F10.1111\u002F1365-2435.12255",{"doi":1798},"10.1111\u002F1365-2435.12255",{"id":24,"text":1800,"url":24,"identifiers":1801},"McNeil KA, Newman I, Kelly FJ (1996) Testing research hypotheses with the general linear model. Southern Illinois University Press,",{},{"id":24,"text":1803,"url":24,"identifiers":1804},"Nyamukondiwa C, Kleynhans E, Terblanche JS (2010) Phenotypic plasticity of thermal tolerance contributes to the invasion potential of Mediterranean fruit flies (Ceratitis capitata). Ecol Entomol 35:565–575. https:\u002F\u002Fdoi.org\u002F10.1111\u002Fj.1365-2311.2010.01215.x",{"doi":1805},"10.1111\u002Fj.1365-2311.2010.01215.x",{"id":24,"text":1807,"url":24,"identifiers":1808},"Ota H, Whitaker AH (2010) Hemidactylus frenatus. The IUCN red list of threatened species 2010: e.T176130A7184890. Accessed 12 April 2017. https:\u002F\u002Fdoi.org\u002F10.2305\u002FIUCN.UK.2010-4.RLTS.T176130A7184890.en",{"doi":1809},"10.2305\u002FIUCN.UK.2010-4.RLTS.T176130A7184890.en",{"id":24,"text":1811,"url":24,"identifiers":1812},"Overgaard J, Sørensen JG (2008) Rapid thermal adaptation during field temperature variations in Drosophila melanogaster. Cryobiology 56:159–162. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.cryobiol.2008.01.001",{"doi":1813},"10.1016\u002Fj.cryobiol.2008.01.001",{"id":24,"text":1815,"url":24,"identifiers":1816},"Phillips BL, Muñoz MM, Hatcher A, Macdonald SL, Llewelyn J, Lucy V, Moritz C (2016) Heat hardening in a tropical lizard: geographic variation explained by the predictability and variance in environmental temperatures. Funct Ecol 30:1161–1168. https:\u002F\u002Fdoi.org\u002F10.1111\u002F1365-2435.12609",{"doi":1817},"10.1111\u002F1365-2435.12609",{"id":24,"text":1819,"url":24,"identifiers":1820},"Refsnider JM, Vazquez TK, Clifton IT, Jayawardena DM, Heckathorn SA (2021) Cellular and whole-organism effects of prolonged versus acute heat stress in a montane, desert lizard. J Exp Zool Part A: Ecol Integ Physiol 335:126–135. https:\u002F\u002Fdoi.org\u002F10.1002\u002Fjez.2426",{"doi":1821},"10.1002\u002Fjez.2426",{"id":24,"text":1823,"url":24,"identifiers":1824},"Richter K, Haslbeck M, Buchner J (2010) The heat shock response: life on the verge of death. Mol Cell 40:253–266. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.molcel.2010.10.006",{"doi":1825},"10.1016\u002Fj.molcel.2010.10.006",{"id":24,"text":1827,"url":24,"identifiers":1828},"Ritossa F (1962) A new puffing pattern induced by temperature shock and DNP in drosophila. Experientia 18:571–573. https:\u002F\u002Fdoi.org\u002F10.1007\u002FBF02172188",{"doi":1829},"10.1007\u002FBF02172188",{"id":24,"text":1831,"url":24,"identifiers":1832},"Rödder D, Solé M, Böhme W (2008) Predict the potential distributions of two alien invasive Housegeckoes (Gekkonidae: Hemidactylus frenatus, Hemidactyus mabouia). North-Western J Zool 4:236–246",{},{"id":24,"text":1834,"url":24,"identifiers":1835},"Seebacher F (2005) A review of thermoregulation and physiological performance in reptiles: what is the role of phenotypic flexibility? J Comp Physiol [B] 175:453–461. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs00360-005-0010-6",{"doi":1836},"10.1007\u002Fs00360-005-0010-6",{"id":24,"text":1838,"url":24,"identifiers":1839},"Sejerkilde M, Sørensen JG, Loeschcke V (2003) Effects of cold- and heat hardening on thermal resistance in Drosophila melanogaster. J Insect Physiol 49:719–726. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fs0022-1910(03)00095-7",{"doi":1840},"10.1016\u002Fs0022-1910(03)00095-7",{"id":24,"text":1842,"url":24,"identifiers":1843},"Simões-Araújo JL, Rumjanek NG, Margis-Pinheiro M (2003) Small heat shock proteins genes are differentially expressed in distinct varieties of common bean. Braz J Plant Physiol 15:33–41. https:\u002F\u002Fdoi.org\u002F10.1590\u002FS1677-04202003000100005",{"doi":1844},"10.1590\u002FS1677-04202003000100005",{"id":24,"text":1846,"url":24,"identifiers":1847},"Sørensen JG, Kristensen TN, Loeschcke V (2003) The evolutionary and ecological role of heat shock proteins. Ecol Lett 6:1025–1037. https:\u002F\u002Fdoi.org\u002F10.1046\u002Fj.1461-0248.2003.00528.x",{"doi":1848},"10.1046\u002Fj.1461-0248.2003.00528.x",{"id":24,"text":1850,"url":24,"identifiers":1851},"Teets NM, Denlinger DL (2013) Physiological mechanisms of seasonal and rapid cold-hardening in insects. Physiol Entomol 38:105–116. https:\u002F\u002Fdoi.org\u002F10.1111\u002Fphen.12019",{"doi":1852},"10.1111\u002Fphen.12019",{"id":24,"text":1854,"url":24,"identifiers":1855},"Teets NM, Gantz JD, Kawarasaki Y (2020) Rapid cold hardening: ecological relevance, physiological mechanisms and new perspectives. J Exp Biol. https:\u002F\u002Fdoi.org\u002F10.1242\u002Fjeb.203448",{"doi":1856},"10.1242\u002Fjeb.203448",{"id":24,"text":1858,"url":24,"identifiers":1859},"Thai meteorological department (2020) climatological data for the period 1981–2010.",{},{"id":24,"text":1861,"url":24,"identifiers":1862},"Thieringer HA, Jones PG, Inouye M (1998) Cold shock and adaptation. BioEssays 20:49–57. https:\u002F\u002Fdoi.org\u002F10.1002\u002F(SICI)1521-1878(199801)20:1%3c49::AID-BIES8%3e3.0.CO;2-N",{"doi":1863},"10.1002\u002F(SICI)1521-1878(199801)20:1\u003C49::AID-BIES8>3.0.CO;2-N",{"id":24,"text":1865,"url":24,"identifiers":1866},"van Heerwaarden B, Kellermann V, Sgrò CM (2016) Limited scope for plasticity to increase upper thermal limits. Funct Ecol 30:1947–1956. https:\u002F\u002Fdoi.org\u002F10.1111\u002F1365-2435.12687",{"doi":1867},"10.1111\u002F1365-2435.12687",{"id":24,"text":1869,"url":24,"identifiers":1870},"Vimercati G, Davies S, Measey J (2018) Rapid adaptive response to a Mediterranean environment reduces phenotypic mismatch in a recent amphibian invader. J Exp Biol. https:\u002F\u002Fdoi.org\u002F10.1242\u002Fjeb.174797",{"doi":1871},"10.1242\u002Fjeb.174797",{"id":24,"text":1873,"url":24,"identifiers":1874},"Zerebecki RA, Sorte CJB (2011) Temperature tolerance and stress proteins as mechanisms of invasive species success. PLoS ONE 6:e14806–e14806. https:\u002F\u002Fdoi.org\u002F10.1371\u002Fjournal.pone.0014806",{"doi":1875},"10.1371\u002Fjournal.pone.0014806",{"id":1877,"createTime":1878,"updateTime":1879,"relativeEntities":1880,"slug":1881,"properties":1882,"entityType":119,"verifyStatus":120,"verifyTime":1892,"verifyNote":122,"languages":24,"translateLanguages":24,"viewCount":88,"primaryUrl":1893,"fullTextUrl":24,"authors":1894,"publicationType":144,"publisherRelationship":1988,"citationCount":24,"citationInfo":24,"publishDate":2036,"publishYear":411,"citationAnalyzeStatus":412,"lastCitationAnalyze":2037,"indexDatabases":2038,"openAccess":24,"references":24,"isForceReanalyzing":297},"7bd9ecab-68d7-4c55-812e-5fd0cfd18265","2024-01-21T09:58:26.601+00:00","2026-05-29T03:03:11.556+00:00",[],"Temporal-stability-of-niche-use-exposes-sympatric-Arctic-charr-to-alternative-selection-pressures",{"abstract":1883,"title":1885,"gsPaper":1887,"references":1888,"doi":1890},{"EN":1884},"There is now strong evidence that foraging niche specialisation plays a critical role in the very early stages of resource driven speciation. Here we test critical elements of models defining this process using a known polymorphic population of Arctic charr from subarctic Norway. We test the long-term stability of niche specialisation amongst foraging predators and discuss the possibility that contrasting foraging specialists are exposed to differing selection regimes. Inter-individual foraging niche stability was measured by combining two time-integrated ecological tracers of the foraging niche (each individual’s δ13C and δ15N stable isotope (SI) signatures and their food borne parasite fauna) with a short-term measure of foraging niche use (stomach contents composition). Three dietary subgroups of predators were identified, including zooplankton, gammarid and benthivore specialists foragers. Zooplanktivorous specialists had muscle low in δ 13C, a high abundance of parasites transmitted from pelagic copepods, a smaller head, longer snout and a more slender body-form than gammaridivorous specialist individuals which had muscle more enriched in δ 13C and high abundance of parasites transmitted from benthic Gammarus. Benthivorous individuals were intermediate between the other two foraging groups according to muscle SI-signals (δ13C) and loadings of parasites transmitted from both copepods and Gammarus. The close relationship between subgroups identified by stomach contents, time-integrated tracers of niche use (SI and parasites) and functional trophic morphology (niche adaptations) demonstrate a long-term temporally stable niche use of each individual predator. Differential habitat use and contrasting parasite communities and loadings, show differential exposure to different suites of selection pressures for different foraging specialists. Results also show that individual specialisation in trophic behaviour and thus exposure to different suites of selection pressures are stable over time, and thus provide a platform for disruptive selection to operate within this sympatric system.",{"EN":1886},"Temporal stability of niche use exposes sympatric Arctic charr to alternative selection pressures",{"VOID":310},{"VOID":1889},"Abrams PA (2006) The effects of switching behaviour on the evolutionary diversification of generalist consumers. Am Nat 168:645–659\nAdams CE, Huntingford FA (2002a) Inherited differences in head allometry in polymorphic charr from Loch Rannoch, Scotland. J Fish Biol 60:515–520\nAdams CE, Huntingford FA (2002b) The functional significance of inherited differences in feeding morphology in sympatric polymorphic population of Arctic charr. Evol Ecol 16:15–25\nAdams CE, Huntingford FA (2004) Incipient speciation driven by phenotypic plasticity? Evidence from sympatric populations of Arctic charr. Biol J Linn Soc 81:611–618\nAdams CE, Fraser D, Huntingford FA, Greer RB, Askew CM, Walker AF (1998) Trophic polymorphism amongst Arctic charr from Loch Rannoch, Scotland. J Fish Biol 52:1259–1271\nAdams CE, Woltering C, Alexander G (2003) Epigenetic regulation of trophic morphology through feeding behaviour in Arctic charr, Salvelinus alpinus. J Fish Biol 78:43–49\nAdams DC, Rohlf FJ, Slice DE (2004) Geometric morphometrics: ten years of progress following the ‘revolution’. Ital. J. Zool. 71:5–16\nAlbertson RC, Streelman JT, Kocher TD, Yelick PC (2005) Integration and evolution of the cichlid mandible: The molecular basis of alternate feeding strategies. PNAS 102:16287–16292\nAlexander GD, Adams CE (2004) Exposure to a common environments erodes between-strain trophic morphology differences in Arctic charr. J Fish Biol 64:254–258\nAmundsen P-A, Gabler H-M, Staldvik FJ (1996) A new approach to graphical analysis of feeding strategy from stomach contents data–modification of the Costello (1990) method. J Fish Biol 48:607–614\nAmundsen P-A, Knudsen R, Kuris AM, Kristoffersen R (2003) Seasonal and ontogenetic dynamics in trophic transmission of parasites. Oikos 102:285–293\nAmundsen P-A, Knudsen R, Klemetsen A (2008) Seasonal and ontogenetic variation in resource use by two sympatric Arctic charr populations. Environ Biol Fish 83:45–55\nBehm JE, Ives AR, Boughman JW (2010) Breakdown in postmating isolation and the collapse of a species pair through hybridization. Am Nat 175:11–26\nBlanchet S, Rey O, Berthier P, Lek S, Loot G (2009) Evidence of parasite-mediated disruptive selection on genetic diversity in a wild fish population. Mol Ecol 18:1112–1123\nBolnick DI (2006) Multi-species outcomes in a common model of sympatric speciation. J Theor Biol 241:734–744\nBolnick DI, Yang LH, Fordyce JA, Davis JM, Svanbäck R (2002) Measuring individual-level resource specialization. Ecology 83:2936–2941\nBolnick DI, Svanbäck R, Fordyce JA, Yang LH, Davis JM, Hulsey CD, Forister ML (2003) The ecology of individuals: incidence and implications of individual specialisation. Am Nat 161:1–28\nBush AO, Lafferty KD, Lotz JM, Shostak AW (1997) Parasitology meets ecology on its own terms: Margolis et al. revisited. J Parasitol 83:575–583\nCurtis MA (1984) Diphyllobothrium spp. and the Arctic charr: parasite acquisition and its effects on a lake resident population. In: Johnson L, Burns BI (eds) Biology of the Arctic charr. Proceedings of the International Symposium on a Arctic charr, Winnipeg, Mannitoba, May 1981. University of Manitoba Press, Winnipeg, pp 395–411\nDay T, McPhail JD (1996) The effect of behavioural and morphological plasticity on foraging efficiency in the threespine stickleback (Gasterosteus sp.). Oecologia 108:380–388\nDieckmann U, Doebeli M (1999) On the origin of species by sympatric speciation. Nature 400:354–357\nDoebeli M, Block HJ, Leimar O, Dieckmann U (2007) Multimodal pattern formation in phenotype distributions of sexual populations. Proc R Soc B 274:347–357\nDuckworth RA (2009) The role of behaviour in evolution: a search for mechanisms. Evol Ecol 23:513–531\nFraser D, Huntingford FA, Adams CE (2008) Foraging specialisms, prey size and life-history patterns: a test of predictions using sympatric polymorphic Arctic charr (Salvelinus alpinus). Ecol Freshw Fish 17:1–9\nFunk DJ (2010) Does strong selection promote host specialisation and ecological speciation in insect herbivores? Evidence from Neochlamisus leaf beetles. Ecol Entomol 35:41–53\nGarduño-Paz MV, Adams CE (2010) Discrete prey availability promotes foraging segregation and early divergence in Arctic charr, Salvelinus alpinus. Hydrobiologia 650:15–26\nGarduño-Paz MV, Couderc S, Adams CE (2010) Habitat modulates phenotypic expression through developmental plasticity in the three-spined stickleback. Biol J Linn Soc 100:407–413\nGavrilets S (2004) Fitness landscapes and the origin of species. Princeton University Press, NJ, p 432\nHead ML, Price EA, Boughman JW (2009) Body size differences do not arise from divergent mate preferences in a species pair of threespine stickleback. Biol Lett 5:517–520\nHendry AP (2009) Ecological speciation! Or the lack thereof? Can J Fish Aquat Sci 66:1383–1398\nHerrel A, Huyghe K, Vanhooydonck B, Backeljau T, Breugelmans K, Grbac I, Van Damme R, Irschick DJ (2008) Rapid large-scale evolutionary divergence in morphology and performance associated with exploitation of a different dietary resource. Proc Natl Acad Sci USA 105:4792–4795\nKahilainen KK, Østbye K (2006) Morphological differentiation and resource polymorphism in three sympatric whitefish Coregonus lavaretus (L.) forms in a subarctic lake. J Fish Biol 68:63–79\nKlemetsen A (2010) The charr problem revisited: exceptional phenotypic plasticity promotes ecological speciation in postglacial lakes. Freshw Rev 3:49–74\nKlemetsen A, Amundsen P-A, Knudsen R, Hermansen B (1997) A profundal, winter-spawning morph of Arctic charr Salvelinus alpinus (L.) in lake Fjellfrøsvatn, northern Norway. Nord J Freshw Res 73:13–23\nKlemetsen A, Elliot JM, Knudsen R, Sørensen P (2002) Evidence for genetic differences in the offspring of two sympatric morphs of Arctic charr. J Fish Biol 60:933–950\nKlemetsen A, Knudsen R, Primicerio R, Amundsen P-A (2006) Divergent natural selection on the feeding behaviour of two sympatric Arctic charr (Salvelinus alpinus) morphs. Ecol Freshw Fish 15:350–355\nKlingenberg CP (2008) MorphoJ. Faculty of Life Sciences, University of Manchester, UK. Available at http:\u002F\u002Fwww.flywings.org.uk\u002FMorphoJ_page.htm\nKnudsen R, Amundsen P-A, Klemetsen A (2003) Inter-and intra-morph patterns in helminth communities of sympatric whitefish morphs. J Fish Biol 62:847–859\nKnudsen R, Curtis MA, Kristoffersen R (2004) Aggregation of helminths: the role of feeding behaviour of fish hosts. J Parasitol 90:1–7\nKnudsen R, Klemetsen A, Amundsen P-A, Hermansen B (2006) Incipient speciation through niche expansion: an example from the Arctic charr in a subarctic lake. Proc R Soc B 273:2291–2298\nKnudsen R, Amundsen P-A, Primicerio R, Klemetsen A, Sørensen P (2007) Contrasting niche-based variation on trophic morphology within Arctic charr populations. Evol Ecol Res 9:1005–1021\nKnudsen R, Jobling M, Amundsen P-A, Klemetsen A (2008) Differences in pyloric caeca morphology between Arctic charr ecotypes: adaptation to trophic specialisation or parasite-induced phenotypic modifications? J Fish Biol 73:275–287\nKnudsen R, Primicerio R, Amundsen P-A, Klemetsen A (2010) Temporal stability of individual feeding specialization may promote speciation. J Anim Ecol 79:161–168\nKristjansson B, Skúlason S, Noakes DL (2002) Morphological segregation of Icelandic threespine stickleback (Gasterosteus aculeatus L). J Fish Biol 76:247–257\nLafferty KD, Thomas F, Skorping A (2000) Evolution of host phenotype manipulation by parasites and its consequences. Develop Anim Vet Sci 32:117–127\nLegendre P, Legendre L (1998) Numerical ecology. Elsevier, Amsterdam\nLosos JB (2010) Adaptive radiation, ecological opportunity, and evolutionary determinism. Am Nat 175:623–639\nMaan ME, Van Rooijen AMC, Van Alphen JJM, Seehausen O (2008) Parasite-mediated sexual selection and species divergence in Lake Victoria cichlid fish. Biol J Linn Soc 94:53–60\nMacColl ADC (2009) Parasite may contribute to ‘magic trait’ evolution in the adaptive radiation of three-spined sticklebacks, Gasterosteus aculeatus (Gasterosteiformes: Gasterosteidae). Biol J Linn Soc 96:425–433\nMatthews B, Harmon LJ, M'Gonigle L, Marchinko KB, Schaschol H (2010) Sympatric and allopatric divergence of MHC genes in threespined stickleback. Plos One 5:e10948\nMoret Y, Schmid-Hempel P (2000) Survival for immunity: the price of immune system for activation of bumblebee workers. Science 290:1166–1168\nNosil P, Harmon JL, Seehausen O (2009) Ecological explanations for (incomplete) speciation. Trends Ecol Evol 24:145–146\nParnell AC, Inger R, Bearhop S, Jackson AL (2010) Source partitioning using stable isotopes: coping with too much variation. Plos One 5:e9672\nPerga ME, Gerdeaux D (2005) ‘Are fish what they eat’ all year round? Oecologia 144:598–606\nPfennig DW, Wund MA, Snell-Rodd EC, Cruickshank T, Schlicthing CD, Moczek AP (2010) Phenotypic plasticity’s impacts on diversification and speciation. Trends Ecol Evol 25:459–467\nPinnegar JK, Polunin NVC (1999) Differential fractionation of δ13C and δ15N among fish tissues: implications for the study of trophic interactions. Func Ecol 13:225–231\nPost DM (2002) Using stable isotopes to estimate trophic position: models, methods, and assumptions. Ecology 83:703–718\nR Development Core Team (2009) R: a language and environment for statistical computing. R Foundation for Statistical Computing, Vienna\nRavigne V, Dieckmann U, Olivieri I (2009) Live where you thrive: joint evolution of habitat choice and local adaptation facilitates specialization and promotes diversity. Am Nat 174:E141–E169\nRobinson BW, Parsons KJ (2002) Changing times, spaces, and faces: tests and implications of adaptive morphological plasticity in the fishes of northern postglacial lakes. Can J Fish Aquat Sci 59:1819–1833\nRoger SM, Bernatchez L (2007) The genetic architecture of ecological speciation and the association with signatures of selection in natural lake whitefish (Coregonus sp. Salmonidae) species pairs. Mol Biol Evol 24:1423–1438\nRohlf FJ (2006) TPS Dig version 2.10. Deptartment of Ecology and Evolution, State University of New York at Stony Brook. Available at http:\u002F\u002Flife.bio.sunysb.edu\u002Fmorph\nRohlf FJ, Marcus LF (1993) A revolution in morphometrics. Trends Ecol Evol 8:129–132\nRohlf FJ, Slice DE (1990) Extensions of the procrustes method for the optimal superimposition of landmarks. Syst Zool 39:40–59\nRueffler C, Van Dooren TJM, Metz AJ (2007) The interplay between behaviour and morphology in the evolutionary dynamics of resource specialisation. Am Nat 169:E34–E52\nSandlund OT, Gunnarsson K, Jonasson PM, Jonsson B, Lindem T, Magnusson KP, Malmquist HJ, Sigurjonsdottir H, Skúlason S, Snorrason SS (1992) The Arctic charr Salvelinus alpinus in Thingvallavatn. Oikos 64:305–335\nSargeant BL (2007) Individual foraging specialization: niche width versus niche overlap. Oikos 116:1431–1437\nSchluter D (1996) Ecological speciation in postglacial fishes. Phil Trans R Soc Lond B 351:807–814\nSchluter D (2000) The ecology of adaptive radiation. Oxford University Press, UK\nSchluter D (2001) The ecology and origin of species. Trends Ecol Evol 16:372–380\nSchluter D, Conte GL (2009) Genetics and ecological speciation. Proc Natl Acad Sci U S A 106:9955–9962\nSkarstein F, Folstad I (1996) Sexual dicromatism and the immunocompetence handicap: an observational approach using Arctic charr. Oikos 76:359–367\nSkúlason S, Smith TB (1995) Resource polymorphism in vertebrates. Trends Ecol Evol 10:366–370\nSkúlason S, Snorrason SS, Jonsson B (1999) Sympatric morphs, populations and speciation in freshwater fish with emphasis on Arctic charr. In: Magurran AE, May RM (eds) Evolution of biological diversity. Oxford University Press, Oxford, pp 70–92\nSnorrason SS, Skúlason S, Jonsson B, Malmquist HJ, Jónasson PM, Sandlund OT, Lindem T (1994) Trophic specialization in Arctic charr Salvelinus alpinus (Pisces; Salmonidae): morphological divergence and ontogenetic niche shifts. Biol J Linn Soc 52:1–18\nSnowberg LK, Bolnick DI (2008) Assortative mating by diet in a phenotypically unimodal but ecological variable population of stickleback. Am Nat 172:733–739\nStelkens RB, Seehausen O (2009) Phenotypic divergence but not genetic distance predicts assortative mating among species of a cichlid fish radiation. J Evol Biol 22:1679–1694\nTripathi N, Hoffmann M, Willing E-M, Lanz C, Weigel D, Dreyer C (2009) Genetic linkage map of the guppy, Poecilia reticulata, and quantitative trait loci analysis of male size and colour variation. Proc R Soc B 276:2195–2208\nWest-Eberhard MJ (1989) Phenotypic plasticity and the origins of diversity. Ann Rev Ecol Syst 20:249–278\nWest-Eberhardt MJ (2005) Developmental plasticity and the origins of species differences. Proc Natl Acad Sci U S A 102:6543–6549\nWestgaard JI, Klemetsen A, Knudsen R (2004) Genetic differences between two sympatric morphs of Arctic charr Salvelinus alpinus (L.) confirmed by microsatellite DNA. J Fish Biol 65:1185–1191\nWoo KJ, Elliot KH, Davidson M, Gaston AJ, Davoren GK (2008) Individual specialization in diet by a generalistic marine predator reflects specialisation in foraging behaviour. J Anim Ecol 77:1082–1091\nZelditch ML, Swiderski DL, Sheets HD, Fink WL (2004) Geometric morphometrics for biologists: a primer. Elsevier, New York",{"VOID":1891},"10.1007\u002Fs10682-010-9451-9","2024-06-23T00:31:01.878+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs10682-010-9451-9",[1895,1910,1923,1945,1960,1975],{"id":1896,"sortIndex":88,"researcher":24,"roles":1897,"affiliations":1898,"properties":1907,"displayName":1909,"givenName":24,"familyName":24},"53375d05-3f89-454c-940b-ba40ea91bd9f",[129],[1899],{"id":1900,"sortIndex":88,"affiliation":1901,"properties":24},"6d16b0a9-7853-4577-b0e3-4d0686dd3175",{"id":1900,"createTime":24,"updateTime":24,"relativeEntities":1902,"slug":24,"properties":1903,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":1906,"statistic":24},[],{"title":1904},{"EN":1905},"Department of Arctic and Marine Biology, University of Tromsø, Tromsø, Norway",[],{"title":1908},{"VI":1909},"Rune Knudsen",{"id":1911,"sortIndex":93,"researcher":24,"roles":1912,"affiliations":1913,"properties":1920,"displayName":1922,"givenName":24,"familyName":24},"2de148aa-2f92-44cf-96b0-e40a10b48ea1",[129],[1914],{"id":1900,"sortIndex":88,"affiliation":1915,"properties":24},{"id":1900,"createTime":24,"updateTime":24,"relativeEntities":1916,"slug":24,"properties":1917,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":1919,"statistic":24},[],{"title":1918},{"EN":1905},[],{"title":1921},{"VI":1922},"Anna Siwertsson",{"id":1924,"sortIndex":92,"researcher":24,"roles":1925,"affiliations":1926,"properties":1942,"displayName":1944,"givenName":24,"familyName":24},"a85d74b6-bd80-46f4-ad17-055cf5b5c05f",[129],[1927,1933],{"id":1900,"sortIndex":88,"affiliation":1928,"properties":24},{"id":1900,"createTime":24,"updateTime":24,"relativeEntities":1929,"slug":24,"properties":1930,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":1932,"statistic":24},[],{"title":1931},{"EN":1905},[],{"id":1934,"sortIndex":93,"affiliation":1935,"properties":1941},"c4a25e6e-31a8-4c47-85ff-0f617693ec35",{"id":1934,"createTime":24,"updateTime":24,"relativeEntities":1936,"slug":24,"properties":1937,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":1940,"statistic":24},[],{"title":1938},{"VI":1939},"Scottish Centre for Ecology and the Natural Environment, University of Glasgow, Rowardennan, Glasgow, Scotland, UK",[],{},{"title":1943},{"VI":1944},"Colin E. Adams",{"id":1946,"sortIndex":94,"researcher":24,"roles":1947,"affiliations":1948,"properties":1957,"displayName":1959,"givenName":24,"familyName":24},"73e6e728-0bef-42bb-a68e-33200aa968d6",[129],[1949],{"id":1950,"sortIndex":88,"affiliation":1951,"properties":24},"30b2d731-21c8-4c14-933f-691818bd5f7f",{"id":1950,"createTime":24,"updateTime":24,"relativeEntities":1952,"slug":24,"properties":1953,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":1956,"statistic":24},[],{"title":1954},{"VI":1955},"Facultad de Ciencias, Universidad Autónoma del Estado de México, Toluca, Estado de México, Mexico",[],{"title":1958},{"VI":1959},"Monica Garduño-Paz",{"id":1961,"sortIndex":97,"researcher":24,"roles":1962,"affiliations":1963,"properties":1972,"displayName":1974,"givenName":24,"familyName":24},"a73a7789-4b3a-4bde-a88f-16b42e41eb98",[129],[1964],{"id":1965,"sortIndex":88,"affiliation":1966,"properties":24},"e195235a-3d76-4eb1-aab5-5b04a346d1d3",{"id":1965,"createTime":24,"updateTime":24,"relativeEntities":1967,"slug":24,"properties":1968,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":1971,"statistic":24},[],{"title":1969},{"VI":1970},"NERC Life Sciences Mass Spectrometry Facility, SUERC, East Kilbride, Glasgow, Scotland, UK",[],{"title":1973},{"VI":1974},"Jason Newton",{"id":1976,"sortIndex":95,"researcher":24,"roles":1977,"affiliations":1978,"properties":1985,"displayName":1987,"givenName":24,"familyName":24},"febea271-232d-4997-9fa1-f4a284d2e112",[129],[1979],{"id":1900,"sortIndex":88,"affiliation":1980,"properties":24},{"id":1900,"createTime":24,"updateTime":24,"relativeEntities":1981,"slug":24,"properties":1982,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":1984,"statistic":24},[],{"title":1983},{"EN":1905},[],{"title":1986},{"VI":1987},"Per-Arne Amundsen",{"url":1893,"publisher":1989,"properties":2032},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":1990,"slug":10,"properties":1991,"entityType":22,"verifyStatus":23,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":25,"subjectFields":1996,"manageAffiliations":2001,"indexDatabases":2012,"url":86,"thumbnailPath":24,"statistic":2027,"gsStatistic":24,"type":24,"analyzePriority":24},[],{"country":1992,"eissn":1993,"issn":1994,"title":1995},{"VOID":13},{"VOID":15},{"VOID":17},{"EN":19},[1997],{"id":28,"createTime":24,"updateTime":24,"relativeEntities":1998,"label":1999,"description":2000,"parentId":24,"standard":24,"scholarHubFieldId":24},[],{"EN":31},{},[2002,2007],{"id":35,"createTime":24,"updateTime":24,"relativeEntities":2003,"slug":24,"properties":2004,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":2006,"statistic":24},[],{"title":2005},{"EN":39},[],{"id":42,"createTime":24,"updateTime":24,"relativeEntities":2008,"slug":24,"properties":2009,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":2011,"statistic":24},[],{"title":2010},{"EN":46},[48],[2013,2020],{"id":51,"indexDatabase":2014,"url":64,"indexYears":24,"academicFieldIds":2019,"indexDatabaseRanking":24},{"id":53,"createTime":24,"updateTime":24,"relativeEntities":2015,"label":2016,"description":2017,"key":60,"publicationTags":2018,"standard":24},[],{"EN":56,"VI":56},{"EN":58,"VI":59},[62,63],[66,67,68],{"id":70,"indexDatabase":2021,"url":81,"indexYears":82,"academicFieldIds":2026,"indexDatabaseRanking":85},{"id":72,"createTime":24,"updateTime":24,"relativeEntities":2022,"label":2023,"description":2024,"key":78,"publicationTags":2025,"standard":24},[],{"EN":75,"VI":75},{"EN":75,"VI":77},[80],[84],{"impactFactor":88,"impactFactorByYear":2028,"i10Index":88,"i10IndexLast5Year":88,"totalPublication":90,"totalPublicationByYear":2029,"totalCitation":88,"totalCitationByYear":2030,"totalCitationPerPublication":88,"totalCitationPerPublicationByYear":2031,"hindexLast5Year":88,"hindex":88},{},{"1987":92,"1989":93,"1990":92,"1991":92,"1992":92,"1993":93,"1995":93,"1996":92,"1997":92,"1998":93,"2000":93,"2001":93,"2002":93,"2005":92,"2006":94,"2007":95,"2008":94,"2009":92,"2010":92,"2011":96,"2012":97,"2014":97,"2015":97,"2016":92,"2017":92,"2018":93,"2019":95,"2020":94,"2021":92,"2022":97,"2023":92},{},{},{"pages":2033,"volume":2035},{"VOID":2034},"589-604",{"VOID":409},"2010-11-24","2026-05-29T03:03:11.555+00:00",[62,85]]