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All ten strains were virulent on apple, pear, cherry and peach trees. The extent of tissue colonized varied considerably among strains and cultivars. On excised shoots and twigs of apple and pear, strains BPI 176, BPI 203, PI 2 and PI 14 were the most virulent and strains BPI 689, BPI 992, BPI 4, BPI 20, PI 18 and PI 19 were the least virulent. On excised shoots and twigs of peach and cherry, strains BPI 176, BPI 203, PI 2, PI 14, PI 18 and PI 19 were the most virulent and strains BPI 4 and BPI 20 were the least virulent. Moderate virulence was evinced by strains BPI 689 and BPI 992. These pathogenicity assays are proposed as rapid and reproducible screening systems to evaluate the susceptibility of apple, pear, cherry and peach cultivars to this bacterial pathogen.",{"EN":108},"Note: Comparison of three laboratory methods to evaluate the pathogenicity and virulence of tenPseudomonas syringae pv.syringae strains on apple, pear, cherry and peach trees",{"VOID":110},"[\"10130738051337698699\"]",{"VOID":112},"10.1007\u002FBF03029971","PUBLICATION","VERIFIED","2024-05-03T07:00:06.729+00:00","Auto Verify","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002FBF03029971",[119,137,150,163],{"id":120,"sortIndex":18,"researcher":17,"roles":121,"affiliations":123,"properties":132,"displayName":134,"givenName":17,"familyName":17},"7441aa78-8ddf-4a79-a0e9-2586b155b8ff",[122],"AUTHOR",[124],{"id":125,"sortIndex":18,"affiliation":126,"properties":17},"2a7f3350-a511-4f99-964b-965c46da2449",{"id":125,"createTime":17,"updateTime":17,"relativeEntities":127,"slug":17,"properties":128,"entityType":17,"verifyStatus":17,"verifyTime":17,"verifyNote":17,"languages":17,"translateLanguages":17,"viewCount":17,"url":17,"parentIds":131,"statistic":17},[],{"title":129},{"VI":130},"National Agriculture Research Foundation (NAGREF), Pomology Institute, Naoussa, Greece",[],{"title":133,"gsAuthor":135},{"VI":134},"T. 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(1999) The interaction of lipodepsipeptide toxins fromPseudomonas syringae pv.syringae with biological and model membranes: A comparison of syringotoxin, syringomycin, and two syringopeptins.Mol. Plant-Microbe Interact. 12: 391–400.","https:\u002F\u002Flink.springer.com\u002F10.1007\u002Fs10440-022-00541-7",{"doi":245},"10.1007\u002Fs10440-022-00541-7",{"id":241,"text":247,"url":243,"identifiers":248},"Krzesinska, E.Z. and Azarenko, A.N. (1992) Excised twig assay to evaluate cherry rootstocks for tolerance toPseudomonas syringae pv.syringae.HortScience 27: 153–155.",{"doi":245},{"id":17,"text":250,"url":17,"identifiers":251},"Little, E.L., Bostock, R.M. and Kirkpatrick, B.C. (1998) Genetic characterizationof Pseudomonas syringae pv.syringae strains from stone fruits in California.Appl. Environ. Microbiol. 64: 3818–3823.",{},{"id":17,"text":253,"url":17,"identifiers":254},"Moragrega, C., Llorente, I., Manceau, C. and Montesinos, E. (2003) Susceptibility of European pear cultivars toPseudomonas syringae pv.syringae using immature fruit and detached leaf assays.Eur. J. Plant Pathol. 109: 319–326.",{},{"id":241,"text":256,"url":243,"identifiers":257},"Scheck, H.J., Canfield, M.L., Pscheidt, J.W. and Moore, L.W. (1997) Rapid evaluation of pathogenicity inPseudomonas syringae pv.syringae with a lilac tissue culture bioassay and syringomycin DNA probes.Plant Dis. 81: 905–910.",{"doi":245},{"id":17,"text":259,"url":17,"identifiers":260},"Thomidis, T. (2000) Field susceptibility of four peach rootstocks toPhytophthora citrophthora andP. syringae.Phytopathol. Mediterr. 39: 404–409.",{},{"id":241,"text":262,"url":243,"identifiers":263},"Vicente, J.G., Alves, J.P., Russell, K. and Roberts, S.J. (2004) Identification and discrimination ofPseudomonas syringae isolates from wild cherry in England.Eur. J. Plant Pathol. 110: 337–351.",{"doi":245},{"id":241,"text":265,"url":243,"identifiers":266},"Yessad, S., Manceau, C. and Luisetti, J. (1992) A detached leaf assay to evaluate virulence and pathogenicity of strains ofPseudomonas syringae pv.syringae on pear.Plant Dis. 76: 370–373.",{"doi":245},{"id":241,"text":268,"url":243,"identifiers":269},"Yessad-Carreau, S., Manceau, C. and Luisetti, J. (1994) Occurrence of specific reactions induced byPseudomonas syringae pv.syringae on bean pods, lilac and pear plants.Plant Pathol. 43: 528–536.",{"doi":245},false,{"id":272,"createTime":273,"updateTime":274,"relativeEntities":275,"slug":276,"properties":277,"entityType":113,"verifyStatus":114,"verifyTime":286,"verifyNote":116,"languages":17,"translateLanguages":17,"viewCount":18,"primaryUrl":287,"fullTextUrl":17,"authors":288,"publicationType":179,"publisherRelationship":304,"citationCount":355,"citationInfo":356,"publishDate":359,"publishYear":357,"citationAnalyzeStatus":236,"lastCitationAnalyze":360,"indexDatabases":361,"openAccess":17,"references":17,"isForceReanalyzing":270},"0fa04dbb-cb77-45a7-80bd-87275443ba90","2024-02-20T21:52:23.983+00:00","2026-07-27T02:36:44.184+00:00",[],"Lessons-provided-by-the-house-fly-on-the-evolution-of-resistance-R-to-insecticides",{"title":278,"gsPaper":280,"references":282,"doi":284},{"EN":279},"Lessons provided by the house fly on the evolution of resistance (R) to insecticides",{"VOID":281},"[\"12078157380283034590\"]",{"VOID":283},"Chapman, P.A. (1984)Proc. Br. Crop Prot. Conf. 1984:535–540.\nDenholm, I., Farnham, A.W., O’Dell, K. and Sawicki, R.M. (1983)Bull. Entomol. Res. 73:481–489.\nFarnham, A.W., O’Dell, K., Denholm, I. and Sawicki, R.M. (1984)Bull. Entomol. Res. 74:581–589.\nGeorghiou, G.P. and Taylor, C.E. (1977)J. Econ. Entomol. 70:319–323.\nGong, K.-Y. et al., (1989)In: Pest Control 5(2). [Studies on Resistance of Housefly and its Control in China.] Beijing, pp. 9–19 (in Chinese).\nKeiding, J. (1976)Pestic. Sci. 7:263–291.\nKeiding, J. (1977)In: Watson, D.A. and Brown, A.W.A. [Eds.] Pesticide Management and Insecticide Resistance. Academic Press, New York, NY. pp. 261–302.\nKeiding, J. (1986)In: National Research Council, Pesticide Resistance. Strategies and Tactics for Management. National Academy Press, Washington, DC. pp. 279–297.\nKeiding, J. and Jespersen, J.B. (1986)Proc. Br. Crop Prot. Conf. 1986 (2):623–630.\nRoush, R.T. and Daly, J.C. (1990)In: Roush, R.T. and Tabashnik, B.E. [Eds.] Pesticide Resistance in Arthropods. Chapman and Hall, London, UK. pp. 97–152.\nRoush, R.T. and Tabashnik, B.E. [Eds.] (1990) Pesticide Resistance in Arthropods. Chapman and Hall, London, UK.\nSawicki, R.M. (1975)Proc. Br. Crop Prot. Conf. 1975:799–811.\nSawicki, R.M., Famham, A.W., Denholm, I. and O’Dell, K. (1981)Proc. Br. Crop Prot. Conf. 1981:609–616.\nSawicki, R.M. and Keiding, J. (1981)Pestic. Sci. 12:587–591.\nScott, J.G. (1990)In: Roush, R.T. and Tabashnik, B.E. [Eds.] Pesticide Resistance inv Arthropods. Chapman and Hall, London, UK. pp. 39–57.\nWorld Health Organization (1976) 22nd Report of the WHO Expert Committee on Insecticides.Tech. Rep. Ser. 585:53–58.",{"VOID":285},"10.1007\u002FBF02980969","2024-05-13T05:48:43.195+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002FBF02980969",[289],{"id":290,"sortIndex":18,"researcher":17,"roles":291,"affiliations":292,"properties":301,"displayName":303,"givenName":17,"familyName":17},"52b99067-9556-44cb-bfe3-13d5f1d1f683",[122],[293],{"id":294,"sortIndex":18,"affiliation":295,"properties":17},"cc55cadd-e661-405d-8fa8-b9df3314a6a6",{"id":294,"createTime":17,"updateTime":17,"relativeEntities":296,"slug":17,"properties":297,"entityType":17,"verifyStatus":17,"verifyTime":17,"verifyNote":17,"languages":17,"translateLanguages":17,"viewCount":17,"url":17,"parentIds":300,"statistic":17},[],{"title":298},{"VI":299},"Scientist Emeritus, Insect Department, Danish Pest Infestation Laboratory, Lyngby, Denmark",[],{"title":302},{"VI":303},"Johannes Keiding",{"url":287,"publisher":305,"properties":350},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":306,"slug":10,"properties":307,"entityType":15,"verifyStatus":16,"verifyTime":17,"verifyNote":17,"languages":17,"translateLanguages":17,"viewCount":18,"subjectFields":310,"manageAffiliations":319,"indexDatabases":330,"url":17,"thumbnailPath":17,"statistic":345,"gsStatistic":17,"type":93,"analyzePriority":17},[],{"issn":308,"title":309},{"VOID":13},{"VOID":10},[311,315],{"id":21,"createTime":17,"updateTime":17,"relativeEntities":312,"label":313,"description":314,"parentId":17,"standard":17,"scholarHubFieldId":17},[],{"EN":24},{},{"id":27,"createTime":17,"updateTime":17,"relativeEntities":316,"label":317,"description":318,"parentId":17,"standard":17,"scholarHubFieldId":17},[],{"EN":30},{},[320,325],{"id":34,"createTime":17,"updateTime":17,"relativeEntities":321,"slug":17,"properties":322,"entityType":17,"verifyStatus":17,"verifyTime":17,"verifyNote":17,"languages":17,"translateLanguages":17,"viewCount":17,"url":17,"parentIds":324,"statistic":17},[],{"title":323},{"EN":38},[40],{"id":42,"createTime":17,"updateTime":17,"relativeEntities":326,"slug":17,"properties":327,"entityType":17,"verifyStatus":17,"verifyTime":17,"verifyNote":17,"languages":17,"translateLanguages":17,"viewCount":17,"url":17,"parentIds":329,"statistic":17},[],{"title":328},{"EN":46},[],[331,338],{"id":50,"indexDatabase":332,"url":63,"indexYears":17,"academicFieldIds":337,"indexDatabaseRanking":17},{"id":52,"createTime":17,"updateTime":17,"relativeEntities":333,"label":334,"description":335,"key":59,"publicationTags":336,"standard":17},[],{"EN":55,"VI":55},{"EN":57,"VI":58},[61,62],[65,66,67],{"id":69,"indexDatabase":339,"url":80,"indexYears":81,"academicFieldIds":344,"indexDatabaseRanking":85},{"id":71,"createTime":17,"updateTime":17,"relativeEntities":340,"label":341,"description":342,"key":77,"publicationTags":343,"standard":17},[],{"EN":74,"VI":74},{"EN":74,"VI":76},[79],[83,84],{"impactFactor":18,"impactFactorByYear":346,"i10Index":18,"i10IndexLast5Year":18,"totalPublication":88,"totalPublicationByYear":347,"totalCitation":18,"totalCitationByYear":348,"totalCitationPerPublication":18,"totalCitationPerPublicationByYear":349,"hindexLast5Year":18,"hindex":18},{},{"1988":90,"1998":90},{},{},{"pages":351,"volume":353},{"VOID":352},"97-100",{"VOID":354},"23",5,{"total":355,"publishYear":357,"statisticByYear":358},1995,{"2004":88,"2014":90,"2015":88},"1995-06-01","2026-07-27T02:36:44.183+00:00",[85,61],{"id":363,"createTime":364,"updateTime":365,"relativeEntities":366,"slug":367,"properties":368,"entityType":113,"verifyStatus":114,"verifyTime":377,"verifyNote":116,"languages":17,"translateLanguages":17,"viewCount":18,"primaryUrl":378,"fullTextUrl":17,"authors":379,"publicationType":179,"publisherRelationship":442,"citationCount":493,"citationInfo":494,"publishDate":497,"publishYear":495,"citationAnalyzeStatus":236,"lastCitationAnalyze":365,"indexDatabases":498,"openAccess":17,"references":499,"isForceReanalyzing":270},"5ab27240-fc9e-4ae5-8059-c1c1ad21c566","2024-01-20T09:05:09.420+00:00","2026-07-26T14:38:42.578+00:00",[],"Standardization-of-egg-dosages-for-mass-production-of-Corcyra-cephalonica-Stainton-",{"abstract":369,"title":371,"gsPaper":373,"doi":375},{"EN":370},"Rice moth, Corcyra cephalonica (Stainton) has been widely used as an efficient alternative host for the mass rearing of many biocontrol agents. With aim to increase production competence, egg dosages required for the initiation of its rearing culture were assessed. Each Corcyra rearing box containing 2.5 kg of milled sorghum was charged with different volume of eggs, i.e., 0.33 cc, 0.25 cc, 0.20 cc, 0.167 cc, 0.143 cc and 0.125 cc eggs and different parameters like larval period, first day to adult emergence, moth emergence, eggs production in F1 generation and fecundity per female were worked out. The larval period varied from 42 to 54 days and it increased with increase in volume of eggs per box. First adult emerged after 58.4 days in boxes charged with 0.33 cc eggs, which was significantly higher than other dosages (46.3 to 51.9 days). Moth emergence period in rearing boxes varied from 38 to 56 days in different dosages. Moth production per box (899.8 moths) was significantly higher at egg dosage of 0.20 cc followed by 0.25 cc, wherein 821.3 moths emerged. Similarly, egg collection in F1 generation was also maximum (8.63 cc) in boxes with initial dosage of 0.20 cc eggs per box, resulting in 43.15 fold increase as compared to volume of eggs used initially. In conclusion, the studies suggested that the optimal inoculative eggs for rearing of C. cephalonica should be 0.20 cc\u002Fbox, each having 2.5 kg of milled sorghum for maximizing its production competence.",{"EN":372},"Standardization of egg dosages for mass production of Corcyra cephalonica (Stainton)",{"VOID":374},"[\"16435089455762549579\"]",{"VOID":376},"10.1007\u002Fs12600-016-0542-1","2024-05-02T18:51:43.292+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs12600-016-0542-1",[380,397,412,427],{"id":381,"sortIndex":18,"researcher":17,"roles":382,"affiliations":383,"properties":392,"displayName":394,"givenName":17,"familyName":17},"dc789752-5ca8-47eb-a66c-50071a05127e",[122],[384],{"id":385,"sortIndex":18,"affiliation":386,"properties":17},"7b0a9201-bcfd-4e1f-887b-176c96e16940",{"id":385,"createTime":17,"updateTime":17,"relativeEntities":387,"slug":17,"properties":388,"entityType":17,"verifyStatus":17,"verifyTime":17,"verifyNote":17,"languages":17,"translateLanguages":17,"viewCount":17,"url":17,"parentIds":391,"statistic":17},[],{"title":389},{"VI":390},"Department of Entomology, Punjab Agricultural University, Ludhiana, India",[],{"title":393,"gsAuthor":395},{"VI":394},"Sudhendu Sharma",{"VOID":396},"[\"6z1V1IoAAAAJ\"]",{"id":398,"sortIndex":90,"researcher":17,"roles":399,"affiliations":400,"properties":407,"displayName":409,"givenName":17,"familyName":17},"b627143a-8424-4533-8105-627af5b01dc6",[122],[401],{"id":385,"sortIndex":18,"affiliation":402,"properties":17},{"id":385,"createTime":17,"updateTime":17,"relativeEntities":403,"slug":17,"properties":404,"entityType":17,"verifyStatus":17,"verifyTime":17,"verifyNote":17,"languages":17,"translateLanguages":17,"viewCount":17,"url":17,"parentIds":406,"statistic":17},[],{"title":405},{"VI":390},[],{"title":408,"gsAuthor":410},{"VI":409},"P. 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Revista Brasileira de Biologia, 60, 45–52.",{"doi":245},{"id":241,"text":513,"url":243,"identifiers":514},"Bhandari, G., Regmi, R., & Shrestha, J. (2014). Effect of different diets on biology of Corcyra cephalonica (Stainton) under laboratory condition in Chitwan, Nepal. International Journal of Applied Sciences and Biotechnology, 2, 585–588.",{"doi":245},{"id":17,"text":516,"url":17,"identifiers":517},"Bhavanam, S. P., Wang, Q., & He, X. Z. (2012). Effect of nutritional stress and larval crowding on survival, development and reproductive output of Mediterranean flour moth. Ephestia kuehniella Zeller New Zealand Plant Protection, 65, 138–141.",{},{"id":519,"text":520,"url":521,"identifiers":522},"a7f09c59-5ba5-4583-8424-fe12c0c5ad08","Boggs, C. L., & Freeman, K. D. (2005). Larval food limitation in butterflies: effects on adult resource allocation and fitness. Oecologia, 144, 353–361.","http:\u002F\u002Flink.springer.com\u002F10.1007\u002Fs00442-005-0076-6",{"doi":523},"10.1007\u002Fs00442-005-0076-6",{"id":525,"text":526,"url":527,"identifiers":528},"75d6f7f3-2010-4ee2-85d6-881754618a98","Chaudhuri, N., & Senapati, S. K. (2015). Development and reproductive performance of rice moth Corcyra cephalonica Stainton (Lepidoptera: Pyralidae) in different rearing media. Journal of the Saudi Society of Agricultural Sciences. doi:10.1016\u002Fj.jssas.2015.11.004.","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS1658077X15300370",{"doi":529},"10.1016\u002Fj.jssas.2015.11.004",{"id":241,"text":531,"url":243,"identifiers":532},"De Clercq P. (2003). Alternative foods for the production of arthropod natural enemies. In: 10th Workshop of the IOBC Global Working Group on Arthropod Mass Rearing and Quality Control. 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Intraspecific competition in the speckled wood butterfly: Pararge aegeria effect of rearing density and gender on larval life history. Journal of Insect Science, 4, 1–6.",{"doi":245},{"id":241,"text":546,"url":243,"identifiers":547},"Hooper, H. L., Sibly, R. M., Hutchinson, T. H., & Maud, S. J. (2003). The influence of larval density, food availability and habitat longevity on the life history and population growth rate of the midge Chironomus riparius. Oikos, 102, 515–524.",{"doi":245},{"id":17,"text":549,"url":17,"identifiers":550},"Jalali, S. K., & Singh, S. P. (1989). A new method of Corcyra cephalonica moth collection. Entomon, 14, 281–282.",{},{"id":17,"text":552,"url":17,"identifiers":553},"Kamel, A. H., Ali, M. A., & El-Bishlwy, H. M. (1977). Effect of flour constituents on certain biological aspects of the rice moth, Corcyra cephalonica Staint.(Galleridae, Lepidoptera) and parasitism by Trichogramma australicum Gir. (Trichogrammatidae, Hymenoptera). Ph.D. Thesis, Tamil Nadu Agricultural University, Coimbatore, India.",{},{"id":241,"text":555,"url":243,"identifiers":556},"Kong, H. L., Luo, L. Z., Jiang, X. F., Zhang, L., & Hu, Y. (2011). Effects of larval density on growth, development and reproduction of the beet webworm, Loxostege sticticalis (Lepidoptera: Pyralidae). Acta Entomologica Sinica, 54, 1384–1390.",{"doi":245},{"id":17,"text":558,"url":17,"identifiers":559},"Kumar, S., & Murthy, K. S. (2000). Mass production of Corcyra. In Training “Manual of the second training on mass production of biological control agents”. pp. 10–20. National Centre for Integrated Pest Management, New Delhi.",{},{"id":241,"text":561,"url":243,"identifiers":562},"Lalitha, Y., & Ballal, C. R. (2015). Influence of seasons and inoculum dosages on the production efficiency of Corcyra cephalonica Stainton. Journal of Biological Control, 29, 25–30.",{"doi":245},{"id":17,"text":564,"url":17,"identifiers":565},"Manjunath, T. M. (2014). A semi-automatic device for mass production of the rice moth, Corcyra cephalonica Stainton (Lep., Pyralidae), and evaluation of certain biological and economic parameters to validate a protocol for commercial production. Journal of Biological Control, 28, 93–108.",{},{"id":241,"text":567,"url":243,"identifiers":568},"Melanie, G., Lesely, A. L., Martin, J. J., & Allen, J. M. (2004). Intra-specific competition in the speckle wood butterfly Pararge aegeria: Effect of rearing density and gender on larval life history. Journal of Insect Science, 4, 1–6.",{"doi":245},{"id":241,"text":570,"url":243,"identifiers":571},"Paul, A. V. N., Parshad, B., & Kumar, P. (1980). Age and density effect of the laboratory host, Corcyra cephalonica Stainton (Lep., Pyral.), on the egg-larval parasitoid Chelonus blackburni Cameron (Hym., Braconidae). Zeitschrift für Angewandte Entomologie, 90, 391–395.",{"doi":245},{"id":241,"text":573,"url":243,"identifiers":574},"Rhainds, M., Gries, G., Ho, C. T., & Chew, P. S. (2002). Dispersal by bagworm larvae, Metisa plana: effects of population density, larval sex, and host plant attributes. Ecological Entomology, 27, 204–212.",{"doi":245},{"id":17,"text":576,"url":17,"identifiers":577},"Senthil, N. S., Kalaivani, K., Mankin, R. W., & Murugan, K. (2006). Effects of millet, wheat, rice adn sorghum diets on development of Corcyra cephalonica (Stainton) (Lepidoptera: Galleriidae) and its suitability as a host for Trichogramma chilonis Ishii (Hymenoptera: Trichogrammatidae). Environmental Entomology, 35, 784–788.",{},{"id":241,"text":579,"url":243,"identifiers":580},"Singh, P. (1982). The rearing of beneficial insects. New Zealand Entomologist, 1982(7), 304–310.",{"doi":245},{"id":241,"text":582,"url":243,"identifiers":583},"Sithanantham, S., Ballal, C. R., Jalali, S. K., & Bakthavatsalam, N. (2013). Biological control of insect pests using egg parasitoids. London: Springer.",{"doi":245},{"id":241,"text":585,"url":243,"identifiers":586},"Tammaru, T., Ruohomaki, K., & Montola, M. (2000). Crowding induced plasticity in Epirrita autumnata (Lepidoptera: Geometridae): weak evidence of specific modifications in reaction norms. Oikos, 90, 171–181.",{"doi":245},{"id":17,"text":588,"url":17,"identifiers":589},"van Lenteren, J. C. (2012). IOBC Internet Book of Biological Control. Version 6. IOBC-Global, pp. 1–182.",{},{"id":17,"text":591,"url":17,"identifiers":592},"Wang, J., Jiang, X. F., Wu, D. L., & Luo, L. Z. (2008). Effect of larval rearing density on development and fecundity of the beet armyworm, Spodoptera exempta (Lepidoptera: Noctuidae). Acta Entomologica Sinica, 51, 889–894.",{},{"id":17,"text":594,"url":17,"identifiers":595},"Xu, J., Wang, Q., & He, X. Z. (2007). Influence of larval density on biological fitness of Ephestia kuehniella Zeller (Lepidoptera: Pyralidae). New Zealand Plant Protection, 60, 199–202.",{},{"id":597,"createTime":598,"updateTime":599,"relativeEntities":600,"slug":601,"properties":602,"entityType":113,"verifyStatus":114,"verifyTime":613,"verifyNote":116,"languages":17,"translateLanguages":17,"viewCount":18,"primaryUrl":614,"fullTextUrl":17,"authors":615,"publicationType":179,"publisherRelationship":646,"citationCount":697,"citationInfo":698,"publishDate":700,"publishYear":699,"citationAnalyzeStatus":16,"lastCitationAnalyze":701,"indexDatabases":702,"openAccess":17,"references":17,"isForceReanalyzing":270},"2634ffa3-c26c-4c88-808c-55f3b3abdde4","2023-12-29T09:57:12.860+00:00","2026-07-22T01:02:29.556+00:00",[],"Bioactivity-of-pyrogallol-against-melon-fruit-fly-Bactrocera-cucurbitae",{"abstract":603,"title":605,"gsPaper":607,"references":609,"doi":611},{"EN":604},"The insecticidal effects of pyrogallol were studied by treating eggs and larvae of the melon fruit fly, Bactrocera cucurbitae (Coquillett) (Tephritidae: Diptera), with various concentrations (1, 5, 25, 125, 625 and 3125 ppm) of the phenolic compound. Although egg hatching decreased following treatment of 0–8-h old eggs with pyrogallol, the decrease was not significantly different from the control. Larval period and total development period declined significantly in 64–72-h-old and 88–96-h-old B. cucurbitae larvae fed on pyrogallol-treated diet. However, in the 44–48-h-old larvae, the larval period and total development period were not affected by pyrogallol treatment at any of the tested concentrations. None of them survived up to the pupal stage at the highest concentration. Number of pupae formed and adult emergence decreased significantly in all larval instars following feeding on pyrogallol-treated diet. The analysis of enzymes in 64–72-h-old larvae treated with LC40 concentration (16.21 ppm) of pyrogallol at three time intervals, i.e., 24 h, 48 h and 72 h, showed significant induction in the activities of ascorbate peroxidase (APOX) and glutathione S-transferases (GSTs) at 24 h but a decrease was observed following prolonged treatment. On the other hand, superoxide dismutase (SOD) and peroxidases (POX) activity remained suppressed during the initial treatment interval but increased with prolonged treatment in 136–144-h-old larvae. The catalase (CAT) activity was suppressed at all treatment durations whereas glutathione reductase (GR) activity was not affected by pyrogallol treatment. An increase in the activities of ascorbate peroxidase, superoxide dismutase, peroxidases and glutathione S-transferases indicates an induction of defensive response of the melon fruit fly to the toxic effects produced by ingestion of pyrogallol. Although the effects of the compound on enzyme activity were tested on second instar, it would be interesting to see the effects on other instars too.",{"EN":606},"Bioactivity of pyrogallol against melon fruit fly, Bactrocera cucurbitae",{"VOID":608},"[\"6759004904008858928\"]",{"VOID":610},"Akhtar, Y., & Isman, M. B. (2004). Comparative growth inhibitory and antifeedant effects of plant extracts and pure allelochemicals on four phytophagous insect species. Journal of Applied Entomology, 128, 32–38.\nAppel, H. M. (1993). Phenolics in ecological interactions: The importance of oxidation. Journal of Chemical Ecology, 19, 1521–1552.\nArora, G. K., Rup, P. J., & Sohal, S. K. (2008). Influence of coumarin on the enzymatic activity in nymphs of Lipaphis erysimi (Kalt.). Allelopathy Journal, 22, 221–230.\nAsada, K. (1984). Chloroplast: Formation of active oxygen and its scavenging. Methods in Enzymology, 105, 422–429.\nBarbehenn, R. V., Cheek, S., Gasperut, A., Lister, E., & Maben, R. 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The Journal of Biological Chemistry, 275, 5751–5754.\nKrishnan, N., & Sehnal, F. (2006). Compartmentalization of oxidative stress and antioxidant defense in the larval gut of Spodoptera littoralis. Archives of Insect Biochemistry and Physiology, 63, 1–10.\nLee, K., & Berenbaum, M. R. (1989). Action of antioxidant enzymes and cytochrome p-450 monooxygenases in the cabbage looper in response to plant phototoxins. Archives of Insect Biochemistry and Physiology, 10, 151–162.\nLee, K., & Berenbaum, M. R. (1993). Food utilization and antioxidant enzyme activities of black swallowtail in response to plant phototoxins. Archives of Insect Biochemistry and Physiology, 23, 79–89.\nLindroth, R. L. (1989). Differential esterase activity in Papilio glaucus subspecies: Absence of cross-resistance between allelochemicals and insecticides. Pesticide Biochemistry and Physiology, 35, 185–191.\nLukasik, I. (2007). Changes in activity of superoxide dismutase and catalase within cereal aphids in response to plant o-dihydroxyphenols. Journal of Applied Entomology, 131, 209–214.\nMalik, R. S., Anand, I. J., & Srinivasachar, D. (1983). Effects of glucosinolates in relation to aphid (Lipahis erysimi Kalt.) fecundity in crucifers. International Journal of Tropical Agriculture, 4, 273–278.\nManoukas, A. G. (1996). The influence of four phenolics on the olive fruit fly. In B. A. McPheron & G. J. Steck (Eds.), Fruit fly pests, a world assessment of their biology and management (pp. 433–436). Delray Beach, FL, USA: St. Lucie Press.\nMathews, M. C., Summers, C. B., & Felton, G. W. (1997). Ascorbate peroxidase: A novel antioxidant enzyme in insects. Archives of Insect Biochemistry and Physiology, 34, 57–68.\nMcManus, J., Lilley, T. H., & Haslam, E. (1983). Plant polyphenols and their associations with proteins. In P. A. Hedin (Ed.), Plant resistance to insects (pp. 123–137). Washington, DC: American Chemical Society.\nParr, A. J., & Bolwell, G. P. (2000). Phenols in plant and in man. The potential for possible nutritional enhancement of the diet by modifying the phenols content or profile. Journal of the Science of Food and Agriculture, 80, 985–1012.\nPeng, Z., & Miles, P. W. (1991). Oxidases in the gut of an aphid, Macrosiphum rosae (L.) and their relation to dietary phenolics. Journal of Insect Physiology, 37, 779–787.\nPierpoint, W. S. (1983). Reactions of phenolic compounds with proteins. In L. Telek & H. D. Graham (Eds.), Leaf protein concentrates (pp. 235–267). Westport, CT, USA: Avi Publishing Comp. Inc.\nPrapanthadara, L. A., Hemingway, J., & Ketterman, A. J. (1993). Partial purification and characterization of glutathione S-transferases involved in DDT resistance from the mosquito Anopheles gambiae. Pesticide Biochemistry and Physiology, 47, 119–133.\nPritsos, C. A., Ahmad, S., Bowen, S. M., Elliott, A. J., Blomquist, G. J., & Pardini, R. S. (1988). Antioxidant enzymes of the black swallowtail butterfly, Papilio polyxenes, and their response to the prooxidant allelochemical, quercetin. Archives of Biochemistry and Biophysics, 8, 101–112.\nPritsos, C. A., Ahmad, S., Elliott, A. J., & Pardini, R. S. (1990). Antioxidant enzyme level response to prooxidant allelochemicals in larvae of the southern armyworm moth, Spodoptera eridania. Free Radical Research Communications, 9, 127–133.\nPuttick, G. M., & Bowers, M. D. (1988). Effect of qualitative and quantitative variation in allelochemicals on a generalist insect: Iridoid glycosides and the southern armyworm. Journal of Chemical Ecology, 14, 335–351.\nShen, S., Chein, Y., & Chein, C. (2003). Induction of glutathione S-transferases activities in Drosophila melanogaster exposed to phenol. Archives of Insect Biochemistry and Physiology, 53, 80–91.\nSrivastava, B. G. (1975). A chemically defined diet for Dacus cucurbitae (Coq.) larvae under aseptic conditions. Entomology Newsletter, 5, 24.\nVontas, J. G., Small, G. J., & Hemingway, J. (2001). Glutathione S-transferases as antioxidant defence agents confer pyrethroid resistance in Nilaparvata lugens. The Biochemical Journal, 357, 65–72.\nWeissenberg, M., Meisner, J., Klein, M., Schaeffler, I., Eliyahu, M., Schmutterer, H., & Ascher, K. R. S. (1997). Effect of substituent and ring changes in naturally occurring naphthoquinones on the feeding response of larvae of the Mexican bean beetle, Epilachna varivestis. Journal of Chemical Ecology, 23, 3–18.\nWheeler, G. S., Slansky, F., Jr., & Yu, S. J. (1993). Fall armyworm sensitivity to flavone: Limited role of constitutive and induced detoxifying enzyme activity. Journal of Chemical Ecology, 19, 645–667.\nYu, S. J. (1983). Induction of detoxifying enzymes by allelochemicals and host plants in the fall armyworm. Pesticide Biochemistry and Physiology, 19, 330–336.\nYu, S. J. (1996). Insect glutathione S-transferases. Zoological Studies, 35, 9–19.",{"VOID":612},"10.1007\u002Fs12600-011-0169-1","2024-05-10T16:05:03.690+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs12600-011-0169-1",[616,631],{"id":617,"sortIndex":18,"researcher":17,"roles":618,"affiliations":619,"properties":628,"displayName":630,"givenName":17,"familyName":17},"2af0d9ae-5436-40de-8715-0579a9e6965f",[122],[620],{"id":621,"sortIndex":18,"affiliation":622,"properties":17},"018e1010-705a-4351-913a-7d2e124ef0f5",{"id":621,"createTime":17,"updateTime":17,"relativeEntities":623,"slug":17,"properties":624,"entityType":17,"verifyStatus":17,"verifyTime":17,"verifyNote":17,"languages":17,"translateLanguages":17,"viewCount":17,"url":17,"parentIds":627,"statistic":17},[],{"title":625},{"VI":626},"Department of Zoology, Guru Nanak Dev University, Amritsar, India",[],{"title":629},{"VI":630},"Satwinder Kaur Sohal",{"id":632,"sortIndex":90,"researcher":17,"roles":633,"affiliations":634,"properties":641,"displayName":643,"givenName":17,"familyName":17},"ccd70a6c-7427-4f6d-a473-635c9899f060",[122],[635],{"id":621,"sortIndex":18,"affiliation":636,"properties":17},{"id":621,"createTime":17,"updateTime":17,"relativeEntities":637,"slug":17,"properties":638,"entityType":17,"verifyStatus":17,"verifyTime":17,"verifyNote":17,"languages":17,"translateLanguages":17,"viewCount":17,"url":17,"parentIds":640,"statistic":17},[],{"title":639},{"VI":626},[],{"title":642,"gsAuthor":644},{"VI":643},"Ruchi Sharma",{"VOID":645},"[\"DrUEwSqJCtoC\"]",{"url":614,"publisher":647,"properties":692},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":648,"slug":10,"properties":649,"entityType":15,"verifyStatus":16,"verifyTime":17,"verifyNote":17,"languages":17,"translateLanguages":17,"viewCount":18,"subjectFields":652,"manageAffiliations":661,"indexDatabases":672,"url":17,"thumbnailPath":17,"statistic":687,"gsStatistic":17,"type":93,"analyzePriority":17},[],{"issn":650,"title":651},{"VOID":13},{"VOID":10},[653,657],{"id":21,"createTime":17,"updateTime":17,"relativeEntities":654,"label":655,"description":656,"parentId":17,"standard":17,"scholarHubFieldId":17},[],{"EN":24},{},{"id":27,"createTime":17,"updateTime":17,"relativeEntities":658,"label":659,"description":660,"parentId":17,"standard":17,"scholarHubFieldId":17},[],{"EN":30},{},[662,667],{"id":34,"createTime":17,"updateTime":17,"relativeEntities":663,"slug":17,"properties":664,"entityType":17,"verifyStatus":17,"verifyTime":17,"verifyNote":17,"languages":17,"translateLanguages":17,"viewCount":17,"url":17,"parentIds":666,"statistic":17},[],{"title":665},{"EN":38},[40],{"id":42,"createTime":17,"updateTime":17,"relativeEntities":668,"slug":17,"properties":669,"entityType":17,"verifyStatus":17,"verifyTime":17,"verifyNote":17,"languages":17,"translateLanguages":17,"viewCount":17,"url":17,"parentIds":671,"statistic":17},[],{"title":670},{"EN":46},[],[673,680],{"id":50,"indexDatabase":674,"url":63,"indexYears":17,"academicFieldIds":679,"indexDatabaseRanking":17},{"id":52,"createTime":17,"updateTime":17,"relativeEntities":675,"label":676,"description":677,"key":59,"publicationTags":678,"standard":17},[],{"EN":55,"VI":55},{"EN":57,"VI":58},[61,62],[65,66,67],{"id":69,"indexDatabase":681,"url":80,"indexYears":81,"academicFieldIds":686,"indexDatabaseRanking":85},{"id":71,"createTime":17,"updateTime":17,"relativeEntities":682,"label":683,"description":684,"key":77,"publicationTags":685,"standard":17},[],{"EN":74,"VI":74},{"EN":74,"VI":76},[79],[83,84],{"impactFactor":18,"impactFactorByYear":688,"i10Index":18,"i10IndexLast5Year":18,"totalPublication":88,"totalPublicationByYear":689,"totalCitation":18,"totalCitationByYear":690,"totalCitationPerPublication":18,"totalCitationPerPublicationByYear":691,"hindexLast5Year":18,"hindex":18},{},{"1988":90,"1998":90},{},{},{"pages":693,"volume":695},{"VOID":694},"361-367",{"VOID":696},"39",8,{"total":697,"publishYear":699,"statisticByYear":17},2011,"2011-05-13","2026-07-22T01:02:29.555+00:00",[85,61],{"id":704,"createTime":705,"updateTime":706,"relativeEntities":707,"slug":708,"properties":709,"entityType":113,"verifyStatus":114,"verifyTime":720,"verifyNote":116,"languages":17,"translateLanguages":17,"viewCount":18,"primaryUrl":721,"fullTextUrl":17,"authors":722,"publicationType":179,"publisherRelationship":804,"citationCount":18,"citationInfo":855,"publishDate":858,"publishYear":856,"citationAnalyzeStatus":236,"lastCitationAnalyze":859,"indexDatabases":860,"openAccess":17,"references":17,"isForceReanalyzing":270},"4b8a30a9-0a99-4a5b-8145-0c5079e2372b","2024-02-09T11:56:05.181+00:00","2026-07-18T08:14:00.076+00:00",[],"New-source-of-resistance-to-Aphis-gossypii-in-Tunisian-melon-accessions-using-phenotypic-and-molecular-marker-approaches",{"abstract":710,"title":712,"gsPaper":714,"references":716,"doi":718},{"EN":711},"Aphis gossypii (Glover) is one of the major pests of melon crops as well as an efficient vector of non-persistent virus such as Cucumber Mosaic Virus and Zucchini Yellow Mosaic Virus among others. Host-plant resistance is one of the best strategies that can be used to control this pest. In this study 14 Tunisian melon accessions were screened to identify new sources of resistance\u002Ftolerance to Aphis gossypii using phenotypic and molecular approaches. Antixenosis, antibiosis and tolerance tests were carried out to phenotype those accessions which were also analyzed by molecular markers linked to the Vat gene which confers resistance to both A. gossypii colonization and virus transmission. Results evidenced that only the accession TUN-7 showed antixenosis, antibiosis and tolerance (no leaf curling), at a similar level to that of the resistant control PI414723. Although plants of the accession TUN-13 did not show leaf curling either, the presence of the Vat gene was only detected in TUN-7; its fruit characteristics, of Ananas type, makes this accession as a valuable source of resistance to this aphid that can be used in breeding programs to develop new aphid resistant melon cultivars.",{"EN":713},"New source of resistance to Aphis gossypii in Tunisian melon accessions using phenotypic and molecular marker approaches",{"VOID":715},"[\"5242755532630966230\"]",{"VOID":717},"Boissot, N., Thomas, S., Sauvion, N., Marchal, C., Pavis, C., & Dogimont, C. (2010). Mapping and validation of QTLs for resistance to aphids and whiteflies in melon. Theoretical and Applied Genetics, 121, 117–125.\nBoissot, N., Schoeny, A., & Vanlerberghe-Masutti, F. (2016). Vat, an amazing gene conferring resistance to aphids and viruses they carry: From molecular structure field effects. Frontiers in Plant Science, 7, 1420.\nBrotman, Y., Silberstein, L., Kovalski, I., Périn, C., Dogimont, C., Pitrat, M., Klingler, J., Thompson, G. A., & Perl-Treves, R. (2002). Resistance gene homologues in melon are linked to genetic loci conferring disease and pest resistance. Theoretical and Applied Genetics, 104, 1055–1063.\nChen, J. Q., Martin, B., Rahl, M. Y., & Fereres, A. (1997). Early intracellular punctures by two aphid species on near-isogenic melon lines with and without the virus aphid transmission (Vat) resistance gene. European Journal of Plant Pathology, 103, 521–536.\nDogimont, C., & Boissot, N. (2014). Insect resistance in melon and its modification by molecular breeding techniques. In H. Ezura, T. Ariizumi, J. Garcia-Mas, & J. Rose (Eds.), Functional genomics and biotechnology in Solanaceae and Cucurbitaceae crops (pp. 199–299). Berlin: Springer.\nDogimont, C., Bendahmane, A., Pitrat, M., Burget-Bigeard, E., Hagen, L., LeMenn, A., Pauquet, J., Rousselle, P., Caboche, M. & Chovelon, V. (2004). New polynucleotide implicated in plant resistance, useful for producing transgenic plants resistant to Aphis gossypii and associated viral transmission, also encoded protein. World patent WO2004072109-A1.\nDogimont, C., Bendahmane, A., Pitrat, M., Burget-Bigeard, E., Hagen, L., LeMenn, A., Pauquet, J., Rouselle, P., Caboche, M. & Chovelon, V. (2007). Gene resistant to Aphis gossypii. US Patent Application US 2007\u002F0016977 A1.\nDogimont, C., Chovelon, V., Tual, S., Boissot, N., Rittener, V., Giovinazzo, N. & Bendahmane, A. (2008). Molecular diversity at the Vat\u002FPm-W resistance locus in melon. In: Pitrat M (ed) Cucurbitaceae 2008, Proceedings of the IX th EUCARPIA Meeting on Cucurbit Genetics and Breeding. Avignon, 219–227.\nDogimont, C., Bendahmane, A., Pitrat, M., Burget-Bigeard, E., Hagen, L., LeMenn, A., Pauquet, J., Rouselle, P., Caboche, M. & Chovelon, V. (2009). Gene resistant to Aphis gossypii. US Patent Application US 7,576,264 B2.\nDogimont, C., Chovelon, V., Pauquet, J., Boualem, A., & Bendahmane, A. (2014). The vat locus encodes for a CC-NBS-LRR protein that confers resistance to Aphis gossypiiinfestation and A. gossypii-mediated virus resistance. Plant Journal, 80(6), 993–1004.\nDoyle, J. J., & Doyle, J. L. (1987). A rapid isolation procedure for small quantities of fresh leaf tissue. Phytochemical Bulletin, 19, 1–11.\nFergany, M., Kaur, B., Monforte, A. J., Pitrat, M., Rys, C., & Lecoq, H. (2011). Variation in melon (Cucumis melo L.) landraces adapted to the humid tropics of southern India. Genetic Resources and Crop Evolution, 58, 225–243.\nGarcía-Mas, J., Benjak, A., Sanseverino, W., Bourgeois, M., Mir, G., & Gonzalez, V. M. (2012). The genome of melon (Cucumis melo L.). Proceedings of the Natural Academy of Sciences, 109, 11872–11877.\nGarzo, E., Soria, C., Gomez-Guillamon, M. L., & Fereres, A. (2002). Feeding behavior of Aphis gossypii on resistant genotypes of different melon genotypes (Cucumis melo). Phytoparasitica, 30, 129–140.\nGoggin, F. L., Shah, G., Williamson, V. M., & Ullman, D. E. (2004). Developmental regulation of Mi-mediated aphid resistance is independent of Mi-1.2 transcript levels. Molecular Plant Microbe, 17, 532–536.\nGurr, G. M., & McGrath, D. (2001). Effect of plant variety, plant age and photoperiod on glandular pubescence and host-plant resistance to potato moth (Phthorimaea operculella) in Lycopersicon spp. Annals of Applied Biology, 138, 221–230.\nIvanoff, S. S. (1945). A seedling method for testing aphid resistance and its application to breeding and inheritance studies in cucurbits and other plants. Journal of Heredity, 36, 357–361.\nKassem, M. A., Gosalvez, B., Garzo, E., Fereres, A., Gómez-Guillamón, M. L., & Aranda, M. A. (2015). Resistance to Cucurbit aphid-borne yellows virus in melon accession TGR-1551. Phytopathology, 105(10), 1389–1396.\nKishaba, A. N., Bohn, G. W., & Toba, H. H. (1971). Resistance to Aphis gossypii in muskmelon. Journal of Economic Entomology, 64, 935–937.\nKishaba, A. N., Bohn, G. W., & Toba, H. H. (1976). Genetic aspects of antibiosis to Aphis gossypii in Cucumis melo from India. Horticultural Science, 101, 557–561.\nLecoq, H., & Desbiez, C. (2012). Viruses of cucurbit crops in the mediterranean region: An ever-changing picture. In G. Lebenstein & H. Lecoq (Eds.), Viruses and Virus Diseases of Vegetables in the Mediterranean Basin (pp. 68–114). Charleston: US Vegetable Laboratory.\nLeite, G. L. D., Picanc, M., Guedes, R. N. C., & Zanuncio, J. C. (2001). Role of plant age in the resistance of Lycopersicon hirsutum f. glabratum to the tomato leaf miner Tuta absoluta (Lepidoptera: Gelechiidae). Scientia Horticulturae, 89, 103–113.\nLombaert, E., Carletto, J., Piotte, C., Fauvergue, X., Lecoq, H., Vanlerberghe-Masuttil, F., & Lapchin, L. (2009). Response of the melon aphid, Aphis gossypii, to host plant resistance: Evidence for high adaptive potential despite low genetic variability. Entomologia Experimentalis et Applicata, 133, 46–56.\nMartín, B., & Fereres, A. (2003). Evaluation of a choice-test method to assess resistance melon to Aphis gossypii Glover (Homoptera: Aphididae) by comparison with conventional antibiosis and antixenosis trials. Applied Entomology and Zoology, 38(3), 405–411.\nNair, R. M., Craig, A. D., Auricht, G. C., Edwards, O. R., Robinson, S. S., Otterspoor, M. J., & Jones, J. A. (2003). Evaluating pasture legumes for resistance to aphids. Australian Journal of Experimental Agriculture, 43, 1345–1349.\nOumouloud, A., Mokhtari, M., Chikh-Rouhou, H., Arnedo-Andrés, M. S., Gonzalez-Torres, R., & Álvarez, J. M. (2012). Characterization of the Fusarium wilt resistance Fom-2 gene in melon. Molecular Breeding, 30, 325–334.\nPalomares-Rius, F. J., Garcés-Claver, A., Picó, M. B., Esteras, C., Yuste-Lisbona, F. J., & Gómez-Guillamón, M. L. (2018). ‘Carmen’, a yellow-canary melon breeding line resistant to Podosphaera xanthii, Aphis gossypii and Cucurbit Yellow Stunting Disorder Virus. HortScience, 53(7), 1072–1075.\nPanda, N., & Khush, G. S. (1995). Host plant resistance to insects. Wallingford: CAB International.\nPauquet, J., Burget, E., Hagen, L., Chovelon, V., Valot, N., Desloire, S., Caboche, M., Rousselle, P., Pitrat, M., Bendahmane, A. & Dogimont, C. (2004). Map-based cloning of the Vat gene from melon conferring resistance to both aphid colonization and aphid transmission of several viruses. In A. Lebeda, H. Paris (eds), Cucurbitaceae 2004, Proceedings of the VIII th Eucarpia Meeting on Cucurbit Genetics and Breeding. Olomouc, Czech Republic, 325–329.\nPitrat, M., & Lecoq, H. (1980). Inheritance of resistance to cucumber mosaic virus transmission by Aphis gossypii in Cucumis melo. Phytopathology, 70, 958–961.\nPitrat, M., & Lecoq, H. (1986). Relations génétiques entre les résistances par non-acceptation et par antibiose du melon Aphis gossypii. Recherche de liaisons avec d'autres gènes. Agronomie, 2, 503–508.\nPitrat, M., Risser, G., Blancard, D. & Lecoq, H. (1996). Evaluation of a melon collection for disease resistances. In M.L. Gómez-Guillamón et al. (eds), Cucurbits towards 2000, Proceedings of the VI th Eucarpia Meeting on Cucurbit Genetics and Breeding. Malaga, 49–58.\nPitrat, M., Hanelt, P., & Hammer, K. (2000). Some comments on infraspecific classification of cultivars of melon. Acta Horticulturae, 510, 29–36.\nSarria, E., Yuste-Lisbona, F.J., Palomares, F.J., López-Sesé, A.I. & Gómez-Guillamón, M.L. (2008). Inheritance of tolerance to Aphis gossypii in C. melo TGR-1551 and its relation with resistance to virus transmission. In: Pitrat M (ed) Cucurbitaceae 2008. Proceedings of the IX th EUCARPIA-Meeting on Cucurbit Genetics and Breeding, Avignon, 465–470.\nSarria, E., Palomares, F. J., López-Sesé, A. I., & Heredia, A. (2010). Role of leaf glandular trichomes of melon plants in deterrence of Aphis gossypii Glover. Plant Biology, 12(3), 503–511.\nSarria-Villada, E., Garzo, E., López-Sesé, A. I., Fereres, A., & Gómez-Guillamón, M. L. (2009). Hypersensitive response to Aphis gossypii Glover in melon genotypes carrying the Vat gene. Journal of Experimental Botany, 60(11), 3269–3277.\nShinoda, T. (1993). Callose reaction induced in melon leaves by feeding of melon aphid, Aphis gossypii GLOVER, as possible aphid-resistant factor. Japanese Journal of Applied Entomology and Zoology, 37(3), 145–152.\nSoria, C., Diaz, J. A., Moriones, E., & Gomez-Guillamon, M. L. (2000). Resistance to Aphis gossypii and to virus transmission by this aphid in melon. 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Journal of Heredity, 90, 220–227.",{"VOID":719},"10.1007\u002Fs12600-019-00730-5","2024-06-26T14:34:52.669+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs12600-019-00730-5",[723,740,762,775,788],{"id":724,"sortIndex":18,"researcher":17,"roles":725,"affiliations":726,"properties":735,"displayName":737,"givenName":17,"familyName":17},"95f5ba26-65d4-4e5d-a2d1-16efd3ab614c",[122],[727],{"id":728,"sortIndex":18,"affiliation":729,"properties":17},"afc21f6d-69f7-468b-8856-e8c7ccb3d1a6",{"id":728,"createTime":17,"updateTime":17,"relativeEntities":730,"slug":17,"properties":731,"entityType":17,"verifyStatus":17,"verifyTime":17,"verifyNote":17,"languages":17,"translateLanguages":17,"viewCount":17,"url":17,"parentIds":734,"statistic":17},[],{"title":732},{"VI":733},"Centre Régional des Recherches en Horticulture et Agriculture Biologique (CRRHAB\u002FIRESA), Sousse, Tunisia",[],{"title":736,"gsAuthor":738},{"VI":737},"H. Chikh-Rouhou",{"VOID":739},"[\"ZJIq9cEAAAAJ\"]",{"id":741,"sortIndex":90,"researcher":17,"roles":742,"affiliations":743,"properties":759,"displayName":761,"givenName":17,"familyName":17},"47b37e5f-22af-4e44-b00e-1a678946b389",[122],[744,750],{"id":728,"sortIndex":18,"affiliation":745,"properties":17},{"id":728,"createTime":17,"updateTime":17,"relativeEntities":746,"slug":17,"properties":747,"entityType":17,"verifyStatus":17,"verifyTime":17,"verifyNote":17,"languages":17,"translateLanguages":17,"viewCount":17,"url":17,"parentIds":749,"statistic":17},[],{"title":748},{"VI":733},[],{"id":751,"sortIndex":90,"affiliation":752,"properties":758},"465ef4eb-bde7-42d2-a4c8-b5bf13511773",{"id":751,"createTime":17,"updateTime":17,"relativeEntities":753,"slug":17,"properties":754,"entityType":17,"verifyStatus":17,"verifyTime":17,"verifyNote":17,"languages":17,"translateLanguages":17,"viewCount":17,"url":17,"parentIds":757,"statistic":17},[],{"title":755},{"VI":756},"Institut Supérieur Agronomique de Chott-Mariem, Université de Sousse, Sousse, Tunisia",[],{},{"title":760},{"VI":761},"A. M. Ben Belgacem",{"id":763,"sortIndex":88,"researcher":17,"roles":764,"affiliations":765,"properties":772,"displayName":774,"givenName":17,"familyName":17},"ed81b8ae-00fe-4cc5-9fda-bd23ea1e8f40",[122],[766],{"id":728,"sortIndex":18,"affiliation":767,"properties":17},{"id":728,"createTime":17,"updateTime":17,"relativeEntities":768,"slug":17,"properties":769,"entityType":17,"verifyStatus":17,"verifyTime":17,"verifyNote":17,"languages":17,"translateLanguages":17,"viewCount":17,"url":17,"parentIds":771,"statistic":17},[],{"title":770},{"VI":733},[],{"title":773},{"VI":774},"R. 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Tarchoun",{"id":789,"sortIndex":790,"researcher":17,"roles":791,"affiliations":792,"properties":801,"displayName":803,"givenName":17,"familyName":17},"f6a86645-4a9c-483a-9d0a-d5382fe9d2a2",4,[122],[793],{"id":794,"sortIndex":18,"affiliation":795,"properties":17},"293063fe-b7b4-40c5-9e56-cae3066e24b3",{"id":794,"createTime":17,"updateTime":17,"relativeEntities":796,"slug":17,"properties":797,"entityType":17,"verifyStatus":17,"verifyTime":17,"verifyNote":17,"languages":17,"translateLanguages":17,"viewCount":17,"url":17,"parentIds":800,"statistic":17},[],{"title":798},{"VI":799},"UMA-CSIC, Instituto de Hortofruticultura Subtropical y Mediterránea-La Mayora, Algarrobo, Spain",[],{"title":802},{"VI":803},"M. L. Gómez-Guillamón",{"url":721,"publisher":805,"properties":850},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":806,"slug":10,"properties":807,"entityType":15,"verifyStatus":16,"verifyTime":17,"verifyNote":17,"languages":17,"translateLanguages":17,"viewCount":18,"subjectFields":810,"manageAffiliations":819,"indexDatabases":830,"url":17,"thumbnailPath":17,"statistic":845,"gsStatistic":17,"type":93,"analyzePriority":17},[],{"issn":808,"title":809},{"VOID":13},{"VOID":10},[811,815],{"id":21,"createTime":17,"updateTime":17,"relativeEntities":812,"label":813,"description":814,"parentId":17,"standard":17,"scholarHubFieldId":17},[],{"EN":24},{},{"id":27,"createTime":17,"updateTime":17,"relativeEntities":816,"label":817,"description":818,"parentId":17,"standard":17,"scholarHubFieldId":17},[],{"EN":30},{},[820,825],{"id":34,"createTime":17,"updateTime":17,"relativeEntities":821,"slug":17,"properties":822,"entityType":17,"verifyStatus":17,"verifyTime":17,"verifyNote":17,"languages":17,"translateLanguages":17,"viewCount":17,"url":17,"parentIds":824,"statistic":17},[],{"title":823},{"EN":38},[40],{"id":42,"createTime":17,"updateTime":17,"relativeEntities":826,"slug":17,"properties":827,"entityType":17,"verifyStatus":17,"verifyTime":17,"verifyNote":17,"languages":17,"translateLanguages":17,"viewCount":17,"url":17,"parentIds":829,"statistic":17},[],{"title":828},{"EN":46},[],[831,838],{"id":50,"indexDatabase":832,"url":63,"indexYears":17,"academicFieldIds":837,"indexDatabaseRanking":17},{"id":52,"createTime":17,"updateTime":17,"relativeEntities":833,"label":834,"description":835,"key":59,"publicationTags":836,"standard":17},[],{"EN":55,"VI":55},{"EN":57,"VI":58},[61,62],[65,66,67],{"id":69,"indexDatabase":839,"url":80,"indexYears":81,"academicFieldIds":844,"indexDatabaseRanking":85},{"id":71,"createTime":17,"updateTime":17,"relativeEntities":840,"label":841,"description":842,"key":77,"publicationTags":843,"standard":17},[],{"EN":74,"VI":74},{"EN":74,"VI":76},[79],[83,84],{"impactFactor":18,"impactFactorByYear":846,"i10Index":18,"i10IndexLast5Year":18,"totalPublication":88,"totalPublicationByYear":847,"totalCitation":18,"totalCitationByYear":848,"totalCitationPerPublication":18,"totalCitationPerPublicationByYear":849,"hindexLast5Year":18,"hindex":18},{},{"1988":90,"1998":90},{},{},{"pages":851,"volume":853},{"VOID":852},"405-413",{"VOID":854},"47",{"total":18,"publishYear":856,"statisticByYear":857},2019,{},"2019-05-09","2026-07-18T08:14:00.075+00:00",[85,61],{"id":862,"createTime":863,"updateTime":864,"relativeEntities":865,"slug":866,"properties":867,"entityType":113,"verifyStatus":114,"verifyTime":876,"verifyNote":116,"languages":17,"translateLanguages":17,"viewCount":18,"primaryUrl":877,"fullTextUrl":17,"authors":878,"publicationType":179,"publisherRelationship":935,"citationCount":985,"citationInfo":986,"publishDate":988,"publishYear":495,"citationAnalyzeStatus":16,"lastCitationAnalyze":864,"indexDatabases":989,"openAccess":17,"references":990,"isForceReanalyzing":270},"cef4f79b-a2e3-40f0-801c-53bddad71099","2024-01-13T07:15:45.100+00:00","2026-07-11T17:33:53.173+00:00",[],"Effects-of-soil-amendments-combined-with-solarization-on-the-soil-microbial-community-in-strawberry-cultivation-using-quantitative-real-time-PCR",{"abstract":868,"title":870,"gsPaper":872,"doi":874},{"EN":869},"Experiments were conducted in commercial fields of strawberry-growing areas of the Aydin Province of Turkey during two cropping seasons: 2010–2011 and 2011–2012. Each year, eight separate treatments were used: (1) untreated control (C), (2) solarization alone (S), (3) solarization + broccoli (SBr), (4) solarization + fava bean (SFB), (5) solarization + dry olive-mill wastewater (SDOMW), (6) solarization + rice hulls (SRH), (7) solarization + sulfur powder (SSu), and (8) solarization + vermicast (SVe). DNA was extracted from bulk soil samples before and after solarization. The populations of the major taxonomic groups of bacteria and soil-borne fungal pathogens of strawberry were quantitatively calculated by quantitative real-time PCR (qPCR) with specific primer pairs using standard curves. The marketable fruit yield was recorded in the experimental plots. After the 6-week solarization period, there were significant reductions for total bacteria and for α-Proteobacteria in all of the experimental plots, except for SDOMW. However, the abundance of β-Proteobacteria significantly increased in all of the experimental plots (except for C and SFB in 2011). Significant increases in Firmicutes and Actinobacteria were also recorded in all of the treated plots. The highest significant increase was noticed with SDOMW treatments for total bacteria, α-Proteobacteria, β-Proteobacteria, Firmicutes and Actinobacteria in both years. The target level of Verticillium spp. Rhizoctonia solani and Fusarium oxysporum decreased significantly in all of the treated plots after solarization in both years. The reductions of M. phaseolina were significant in S, SVe, and SSu and were the highest in SDOMW in 2011; these reductions were significant in S, SSu and SDOMW in 2012. The abundance of Trichoderma spp. decreased insignificantly in all of the experimental plots. The highest significant yields were obtained from the combination of SDOMW, SRH and SSu compared to solarization alone in both seasons.",{"EN":871},"Effects of soil amendments combined with solarization on the soil microbial community in strawberry cultivation using quantitative real-time PCR",{"VOID":873},"10496303222321487739",{"VOID":875},"10.1007\u002Fs12600-016-0552-z","2024-04-25T00:47:19.632+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs12600-016-0552-z",[879,894,909,922],{"id":880,"sortIndex":18,"researcher":17,"roles":881,"affiliations":882,"properties":891,"displayName":893,"givenName":17,"familyName":17},"f39be5ee-d94f-4597-bb16-933379a92da6",[122],[883],{"id":884,"sortIndex":18,"affiliation":885,"properties":17},"6f3550cc-385c-4aba-9314-a24c7d505e5f",{"id":884,"createTime":17,"updateTime":17,"relativeEntities":886,"slug":17,"properties":887,"entityType":17,"verifyStatus":17,"verifyTime":17,"verifyNote":17,"languages":17,"translateLanguages":17,"viewCount":17,"url":17,"parentIds":890,"statistic":17},[],{"title":888},{"VI":889},"Department of Plant Protection, Faculty of Agriculture, Adnan Menderes University, Aydin, Turkey",[],{"title":892},{"VI":893},"Umit Ozyilmaz",{"id":895,"sortIndex":90,"researcher":17,"roles":896,"affiliations":897,"properties":904,"displayName":906,"givenName":17,"familyName":17},"1392ee38-4905-467e-a201-31abd628a9a1",[122],[898],{"id":884,"sortIndex":18,"affiliation":899,"properties":17},{"id":884,"createTime":17,"updateTime":17,"relativeEntities":900,"slug":17,"properties":901,"entityType":17,"verifyStatus":17,"verifyTime":17,"verifyNote":17,"languages":17,"translateLanguages":17,"viewCount":17,"url":17,"parentIds":903,"statistic":17},[],{"title":902},{"VI":889},[],{"title":905,"gsAuthor":907},{"VI":906},"Kemal Benlioglu",{"VOID":908},"MzVsv60AAAAJ",{"id":910,"sortIndex":88,"researcher":17,"roles":911,"affiliations":912,"properties":919,"displayName":921,"givenName":17,"familyName":17},"1f6010f7-1de6-49e3-b8f5-82e717e50dd6",[122],[913],{"id":884,"sortIndex":18,"affiliation":914,"properties":17},{"id":884,"createTime":17,"updateTime":17,"relativeEntities":915,"slug":17,"properties":916,"entityType":17,"verifyStatus":17,"verifyTime":17,"verifyNote":17,"languages":17,"translateLanguages":17,"viewCount":17,"url":17,"parentIds":918,"statistic":17},[],{"title":917},{"VI":889},[],{"title":920},{"VI":921},"Ayhan Yildiz",{"id":923,"sortIndex":165,"researcher":17,"roles":924,"affiliations":925,"properties":932,"displayName":934,"givenName":17,"familyName":17},"a5daa1d3-9748-4fde-a281-23b882727471",[122],[926],{"id":884,"sortIndex":18,"affiliation":927,"properties":17},{"id":884,"createTime":17,"updateTime":17,"relativeEntities":928,"slug":17,"properties":929,"entityType":17,"verifyStatus":17,"verifyTime":17,"verifyNote":17,"languages":17,"translateLanguages":17,"viewCount":17,"url":17,"parentIds":931,"statistic":17},[],{"title":930},{"VI":889},[],{"title":933},{"VI":934},"H. 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K., Saxena, A. K., Srivastava, A. K., & Arora, D. K. (2007). Identification and detection of Macrophomina phaseolina by using species-specific oligonucleotide primers and probe. Mycologia, 99, 797–803.",{"doi":245},{"id":241,"text":995,"url":243,"identifiers":996},"Barbera, A. C., Maucieri, C., Cavallaro, V., Ioppolo, A., & Spagna, G. (2013). Effects of spreading olive mill wastewater on soil properties and crops, a review. Agricultural Water Management, 119, 43–53.",{"doi":245},{"id":241,"text":998,"url":243,"identifiers":999},"Bega, R. V., & Smith, R. S. (1962). Time-temperature relationships in thermal activation of sclerotia of Macrophomina phaseolina. Phytopathology, 52, 632–635.",{"doi":245},{"id":17,"text":1001,"url":17,"identifiers":1002},"Benlioglu, S., Benlioglu, K., Yildiz, A., Boz, O., & Kaskavalci, G. (2001). Studies on methyl bromide alternatives of strawberries in Aydin Province. In Annual International Research Conference on Methyl Bromide Alternatives and Emissions Reductions, San Diego, California, USA, 5-9 November 2001.",{},{"id":17,"text":1004,"url":17,"identifiers":1005},"Benlioglu, S., Boz, O., Yildiz, A., Kaskavalci, G., & Benlioglu, K. (2002). Soil solarization options in Aydin strawberry without methyl bromide. In Annual International Research Conference on Methyl Bromide Alternatives and Emissions Reductions, Orlando, Florida, USA, 6-8 November 2002.",{},{"id":241,"text":1007,"url":243,"identifiers":1008},"Benlioglu, S., Yildiz, A., & Doken, T. (2004). Studies to determine the causal agents of soil-borne fungal diseases of strawberries in Aydin and to control them by soil disinfestation. Journal of Phytopathology, 152, 509–513.",{"doi":245},{"id":241,"text":1010,"url":243,"identifiers":1011},"Benlioglu, S., Boz, O., Yildiz, A., Kaskavalci, G., & Benlioglu, K. (2005). Alternative soil solarization treatments for the control of soil-borne diseases and weeds of strawberry in the Western Anatolia of Turkey. Journal of Phytopathology, 153, 423–430.",{"doi":245},{"id":241,"text":1013,"url":243,"identifiers":1014},"Benlioglu, S., Yildiz, A., Boz, O., & Benlioglu, K. (2014). Soil disinfestation options in Aydın province, Turkey, strawberry cultivation. Phytoparasitica, 42, 397–403.",{"doi":245},{"id":241,"text":1016,"url":243,"identifiers":1017},"Ben-Yephet, Y., Stapleton, J. J., Wakeman, R. J., & DeVay, J. E. (1987). Comparative effects of soil solarization with single and double layers of polyethylene film on survival of Fusarium oxysporum f. sp. vasinfectum. Phytoparasitica, 15, 181–185.",{"doi":245},{"id":241,"text":1019,"url":243,"identifiers":1020},"Bhat, R. G., & Browne, G. T. (2010). Specific detection of Phytophthora cactorum in diseased strawberry plants using nested polymerase chain reaction. Plant Pathology, 59, 121–129.",{"doi":245},{"id":241,"text":1022,"url":243,"identifiers":1023},"Bhat, R. G., & Subbarao, K. V. (1999). Host range specificity in Verticillium dahliae. Phytopathology, 89, 1218–1225.",{"doi":245},{"id":241,"text":1025,"url":243,"identifiers":1026},"Buyer, J. S., Teasdale, J. R., Roberts, D. P., Zasada, I. A., & Maul, J. E. (2010). Factors affecting soil microbial community structure in tomato cropping systems. Soil Biology and Biochemistry, 42, 831–841.",{"doi":245},{"id":241,"text":1028,"url":243,"identifiers":1029},"Cenis, J. L. (1992). Rapid extraction of fungal DNA for PCR amplification. Nucleic Acids Research, 20, 2380.",{"doi":245},{"id":241,"text":1031,"url":243,"identifiers":1032},"Chamorro, M., Miranda, L., Domínguez, P., Medina, J. J., Soria, C., Romero, F., et al. (2015). Evaluation of biosolarization for the control of Charcoal Rot Disease (Macrophomina phaseolina) in strawberry. Crop Protection, 67, 279–286.",{"doi":245},{"id":241,"text":1034,"url":243,"identifiers":1035},"Chellemi, D. O., Olson, S. M., & Mitchell, D. J. (1994). Effects of soil solarization and fumigation on survival of soilborne pathogens of tomato in Northern Florida. Plant Disease, 78, 1167–1172.",{"doi":245},{"id":17,"text":1037,"url":17,"identifiers":1038},"Conway, K. E., Martin, M. J., & Melouk, H. A. (1983). The potential of soil solarization to control Verticillium dahliae in Oklahoma. Proceedings of the Oklahoma Academy of Science, 63, 25–27.",{},{"id":1040,"text":1041,"url":1042,"identifiers":1043},"43913f12-6349-47d7-be73-afd6257fce4d","Culman, S., Duxbury, J., Lauren, J., & Thies, J. (2006). Microbial community response to soil solarization in Nepal’s rice–wheat cropping system. Soil Biology and Biochemistry, 38, 3359–3371.","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS0038071706002276",{"doi":1044},"10.1016\u002Fj.soilbio.2006.04.053",{"id":17,"text":1046,"url":17,"identifiers":1047},"DeBoer, S. H., & Ward, L. J. (1995). PCR detection of Erwinia carotovora subsp. atroseptica associated with potato tissue. Phytopathology, 85, 854–858.",{},{"id":17,"text":1049,"url":17,"identifiers":1050},"DeVay, J. E., Stapleton, J. J. & Elmore, C. L. (Eds.) (1991). Soil solarization: Proceedings of the first international conference on soil solarization. Amman: FAO Plant Protection Paper 109.",{},{"id":17,"text":1052,"url":17,"identifiers":1053},"Dinler, H. (2014). Studies on the determination of soil-borne fungal pathogens in strawberry seedlings. PhD Thesis, Adnan Menderes Univ., Aydin, Turkey.",{},{"id":17,"text":1055,"url":1056,"identifiers":1057},"Domínguez, P., Miranda, L., Medina, J. J., De los Santos, B., Talavera, M., Daugovish, O., Soria, C., Chamorro, M., & López-Aranda, J. M. (2016). Evaluation of non-fumigant alternative soil treatments for strawberry production in Huelva (Spain). International Journal of Fruit Science. doi:10.1080\u002F15538362.2016.1195315.","https:\u002F\u002Fdoi.org\u002F10.1080\u002F15538362.2016.1195315",{"mag":1058,"openalex":1059,"doi":1060},"2503516475","W2503516475","10.1080\u002F15538362.2016.1195315",{"id":1062,"text":1063,"url":1064,"identifiers":1065},"71e95735-4ece-4073-acd4-abef0056a5d5","Eischeid, A. C. (2011). SYTO dyes and EvaGreen outperform SYBR Green in real-time PCR. BMC Research Notes, 4, 263.","https:\u002F\u002Fbmcresnotes.biomedcentral.com\u002Farticles\u002F10.1186\u002F1756-0500-4-263",{"doi":1066},"10.1186\u002F1756-0500-4-263",{"id":241,"text":1068,"url":243,"identifiers":1069},"Fang, X., Phillips, D., Li, H., Sivasithamparam, K., & Barbetti, M. J. (2011). Comparisons of virulence of pathogens associated with crown and root diseases of strawberry in Western Australia with special reference to the effect of temperature. Scientia Horticulturae, 131, 39–48.",{"doi":245},{"id":17,"text":1071,"url":1072,"identifiers":1073},"FAOSTAT. (2015). Statistical databases (FAOSTAT). http:\u002F\u002Ffaostat.fao.org. Accessed 11 Nov 2015.","http:\u002F\u002Ffaostat.fao.org",{},{"id":241,"text":1075,"url":243,"identifiers":1076},"Fierer, N., Jackson, J. A., Vilgalys, R., & Jackson, R. B. (2005). Assessment of soil microbial community structure by use of taxon-specific quantitative PCR assays. Applied and Environmental Microbiology, 71, 4117–4120.",{"doi":245},{"id":17,"text":1078,"url":17,"identifiers":1079},"Fravel, D., Olivain, C., & Alabouvette, C. (2003). Fusarium oxysporum and its biocontrol. New Phytologist, 157, 493–502.",{},{"id":241,"text":1081,"url":243,"identifiers":1082},"Gamliel, A., & Stapleton, J. J. (1993). Characterization of antifungal volatile compounds evolved from solarized soil amended with cabbage residues. Phytopathology, 83, 899–905.",{"doi":245},{"id":17,"text":1084,"url":17,"identifiers":1085},"Garbeva, P., van Veen, J. A., & van Elsas, J. D. (2004). Microbial diversity in soil: selection of microbial populations by plant and soil type and implications for disease suppressiveness. Annual Review of Phytopathology, 42, 243–270.",{},{"id":1087,"text":1088,"url":1089,"identifiers":1090},"1b101387-cf05-45a8-b8a7-04e673d8f9cd","Gelsomino, A., & Cacco, G. (2006). Compositional shifts of bacterial groups in a solarized and amended soil as determined by denaturing gradient gel electrophoresis. Soil Biology and Biochemistry, 38, 91–102.","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS003807170500177X",{"doi":1091},"10.1016\u002Fj.soilbio.2005.04.021",{"id":241,"text":1093,"url":243,"identifiers":1094},"Giglio, S., Monis, P. T., & Saint, C. P. (2003). Demonstration of preferential binding of SYBR Green I to specific DNA fragments in real-time multiplex PCR. Nucleic Acids Research, 31, e136.",{"doi":245},{"id":17,"text":1096,"url":17,"identifiers":1097},"Gordon, T. R., & Martin, R. D. (1997). The evolutionary biology of Fusarium oxysporum. Annual Review of Phytopathology, 35, 111–128.",{},{"id":241,"text":1099,"url":243,"identifiers":1100},"Jiménez, S., & Lao, M. T. (2004). Use of dry olive-mill wastewater like organic amendment in soil for horticultural greenhouse crop. Journal of Food, Agriculture and Environment, 2, 348–352.",{"doi":245},{"id":241,"text":1102,"url":243,"identifiers":1103},"Karpouzas, D. G., Ntougias, S., Iskidou, E., Rousidou, C., Papadopoulou, K. K., Zervakis, G. I., et al. (2010). Olive mill wastewater affects the structure of soil bacterial communities. Applied Soil Ecology, 45, 101–111.",{"doi":245},{"id":241,"text":1105,"url":243,"identifiers":1106},"Katan, J. (1981). 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C., et al. (2014). Discordant phylogenies suggest repeated host shifts in the Fusarium – Euwallacea ambrosia beetle mutualism. Fungal Genetics and Biology. doi:10.1016\u002Fj.fgb.2014.10.014.\nO’Donnell, K., Sutton, D. A., Fothergill, A., McCarthy, D., Rinaldi, M. G., Brandt, M. E., et al. (2008). Molecular phylogenetic diversity, multilocus haplotype nomenclature, and in vitro antifungal resistance within the Fusarium solani species complex. Journal of Clinical Microbiology, 46, 2477–2490.\nO’Donnell, K., Sutton, D. A., Rinaldi, M. G., Gueidan, C., Crous, P. W., & Geiser, D. M. (2009b). Novel multilocus sequence typing scheme reveals high genetic diversity of human pathogenic members of the Fusarium incarnatum-F. equiseti and F. chlamydosporum species complexes within the United States. Journal of Clinical Microbiology, 47, 3851–3861.\nO’Donnell, K., Sutton, D. A., Rinaldi, M. G., Sarver, B. A. J., Balajee, S. A., et al. (2010). Internet-accessible DNA sequence database for identifying fusaria from human and animal infections. Journal of Clinical Microbiology, 48, 3708–3718.\nPalm, M. E., Gams, W., & Nirenberg, H. I. (1995). Plectosporium, a new genus for Fusarium tabacinum, the anamorph of Plectosphaerella cucumerina. Mycologia, 87, 397–406.\nPark, B., Park, J., Cheong, K.-C., Choi, J., Jung, K., et al. (2010). Cyber infrastructure for Fusarium: three integrated platforms supporting strain identification, phylogenetics, comparative genomics, and knowledge sharing. Nucleic Acids Research, 39, D640–D646.\nSamuels, G. J., & Hallet, I. C. (1983). Microdochium stoveri and Monographella stoveri, new combinations for Fusarium stoveri and Micronectriella stoveri. Transactions of the British Mycological Society, 81, 473–483.\nSarver, B. A. J., Ward, T. J., Gale, L. R., Broz, K., Kistler, H. C., Aoki, T., et al. (2011). Novel Fusarium head blight pathogens from Nepal and Louisiana revealed by multilocus genealogical concordance. Fungal Genetics and Biology, 48, 1096–1107.\nSchoch, C. L., Seifert, K. A., Huhndorf, S., Robert, V., Spouge, J. L., Levesque, C. A., et al. (2012). Nuclear ribosomal internal transcribed spacer (ITS) region as a universal DNA barcode marker for Fungi. Proceedings of the National Academy of Sciences USA, 109, 6241–6246.\nSchroers, H.-J., O’Donnell, K., Lamprecht, S. C., Kammeyer, P. L., Johnson, S., Sutton, D. A., et al. (2009). Taxonomy and phylogeny of the Fusarium dimerum species group. Mycologia, 101, 44–70.\nShort, D. P. G., O’Donnell, K., Zhang, N., Juba, J. H., & Geiser, D. M. (2011). Widespread occurrence of diverse human pathogenic types of the fungus Fusarium detected in plumbing drains. Journal of Clinical Microbiology, 49, 4264–4272.\nSimpson, B. B., & Ogorzaly, M. C. (1995). Economic Botany: Plants in Our World. New York, New York, USA: McGraw-Hill, Inc.\nSuthar, R. S., & Bhatt, P. N. (2011). In silico identification of Fusarium strain NFCCI 2157 isolated from cumin wilt. International Journal of Plant, Animal and Environmental Sciences, 1, 51–54.\nTaylor, J. W., Jacobson, D. J., Kroken, S., Kasuga, T., Geiser, D. M., Hibbett, D. S., et al. (2000). Phylogenetic species recognition and species concepts in fungi. Fungal Genetics and Biology, 31, 21–32.\nTsai, H.-F., Liu, J.-S., Staben, C., Christensen, M. J., Latch, G. C. M., Siegel, M. R., et al. (1994). Evolutionary diversification of fungal endophytes of tall fescue grass by hybridization with Epichloë species. Proceedings of the National Academy of Sciences USA, 91, 2542–2546.\nWalsh, J. L., Laurence, M. H., Liew, E. C. Y., Sangalang, A. E., Burgess, L. W., Summerell, B. A., et al. (2010). Fusarium: two endophytic novel species from tropical grasses of northern Australia. Fungal Diversity, 44, 149–159.\nWingfield, M. J., de Beer, Z. W., Slippers, B., Wingfield, B. D., Groenewald, J. Z., Lombard, L., et al. (2012). One fungus, one name promotes progressive plant pathology. Molecular Plant Pathology, 13, 604–613.",{"VOID":1281},"10.1007\u002Fs12600-015-0484-z","2024-05-17T11:18:59.833+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs12600-015-0484-z",[1285,1300,1313,1328,1341,1356],{"id":1286,"sortIndex":18,"researcher":17,"roles":1287,"affiliations":1288,"properties":1297,"displayName":1299,"givenName":17,"familyName":17},"539f4455-ba09-4042-9fdf-011427975fe3",[122],[1289],{"id":1290,"sortIndex":18,"affiliation":1291,"properties":17},"feca5361-6cdf-4e6d-b046-c2342a9c06fc",{"id":1290,"createTime":17,"updateTime":17,"relativeEntities":1292,"slug":17,"properties":1293,"entityType":17,"verifyStatus":17,"verifyTime":17,"verifyNote":17,"languages":17,"translateLanguages":17,"viewCount":17,"url":17,"parentIds":1296,"statistic":17},[],{"title":1294},{"VI":1295},"United States Department of Agriculture, Bacterial Foodborne Pathogens and Mycology Research Unit, National Center for Agricultural Utilization Research, Peoria, USA",[],{"title":1298},{"VI":1299},"Kerry O’Donnell",{"id":1301,"sortIndex":90,"researcher":17,"roles":1302,"affiliations":1303,"properties":1310,"displayName":1312,"givenName":17,"familyName":17},"45acb50a-03a5-4acb-8fa9-f60271ca1e38",[122],[1304],{"id":1290,"sortIndex":18,"affiliation":1305,"properties":17},{"id":1290,"createTime":17,"updateTime":17,"relativeEntities":1306,"slug":17,"properties":1307,"entityType":17,"verifyStatus":17,"verifyTime":17,"verifyNote":17,"languages":17,"translateLanguages":17,"viewCount":17,"url":17,"parentIds":1309,"statistic":17},[],{"title":1308},{"VI":1295},[],{"title":1311},{"VI":1312},"Todd J. 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Mitochondrial DNA cytochrome oxidase gene was used for phylogenetic and population genetic analyses comparing specimens from Mediterranean (MED-TR) and South East Anatolia (SEA-TR) Regions of Turkey with reference sequences from the Middle East and Europe deposited in GenBank. The Turkish specimens were allocated to seven haplotypes. Binary genetic distance between MED-TR and SEA-TR was above 0.6, whereas, between the Middle East and MED-TR was only 0.034. Gene flow was infinite between MED-TR and the Middle East, but was 0.23 between SEA-TR and the Middle East as the lowest. The two common haplotypes from Turkey were placed in two clades on the phylogenetic tree, separated with a bootstrap value of 100. The common haplotype from MED-TR clustered on the same branch at the tree with the sequences from Israel and Greece, whereas, the common haplotype from SEA-TR was close to European haplotypes, with this separation supported by haplotype network analysis. Overall, the results showed that L. botrana populations in these two adjacent geographic regions of Turkey consist mostly of two genetically different haplotypes. This could be a consequence of the cultivars grown, the production methods and\u002For the climatic conditions in SEA-TR. However, the most prevalent haplotype in MED-TR, with a predominantly Mediterranean climate, is likely to be prevalent in other Mediterranean Basin countries with a similar climate.",{"EN":1435},"Two haplotypes of Lobesia botrana (Denis & Schiffermüller, 1775) predominate in two adjacent regions of southern Turkey",{"VOID":1437},"[\"10340871289610967628\"]",{"VOID":1439},"10.1007\u002Fs12600-020-00784-w","2024-05-01T07:16:05.593+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs12600-020-00784-w",[1443,1460,1477],{"id":1444,"sortIndex":18,"researcher":17,"roles":1445,"affiliations":1446,"properties":1455,"displayName":1457,"givenName":17,"familyName":17},"0f8c8195-6bfb-4d6c-a506-9315a441d5d0",[122],[1447],{"id":1448,"sortIndex":18,"affiliation":1449,"properties":17},"5171a4bc-3a19-4d11-bbd9-be04ef86392d",{"id":1448,"createTime":17,"updateTime":17,"relativeEntities":1450,"slug":17,"properties":1451,"entityType":17,"verifyStatus":17,"verifyTime":17,"verifyNote":17,"languages":17,"translateLanguages":17,"viewCount":17,"url":17,"parentIds":1454,"statistic":17},[],{"title":1452},{"VI":1453},"Biotechnology Research and Application Center, Cukurova University, Adana, Turkey",[],{"title":1456,"gsAuthor":1458},{"VI":1457},"Gül Satar",{"VOID":1459},"[\"4WyKZ8YAAAAJ\"]",{"id":1461,"sortIndex":90,"researcher":17,"roles":1462,"affiliations":1463,"properties":1472,"displayName":1474,"givenName":17,"familyName":17},"dcdbfcf0-d4e0-4780-96d1-15f7dc4a241c",[122],[1464],{"id":1465,"sortIndex":18,"affiliation":1466,"properties":17},"7f6c5b35-6f54-49b1-96a7-83c86d058163",{"id":1465,"createTime":17,"updateTime":17,"relativeEntities":1467,"slug":17,"properties":1468,"entityType":17,"verifyStatus":17,"verifyTime":17,"verifyNote":17,"languages":17,"translateLanguages":17,"viewCount":17,"url":17,"parentIds":1471,"statistic":17},[],{"title":1469},{"VI":1470},"Department of Plant Protection, Kahramanmaraş Sutcu Imam University, Kahramanmaraş, Turkey",[],{"title":1473,"gsAuthor":1475},{"VI":1474},"M. 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M. (2015). A comparison of the parasitoids of grapevine moths Lobesia botrana (Denis et Schiffermuller) in the vineyards where conventional and mating disruption techniques are applied. Agricultural Journal, 10, 1–6.",{"doi":245},{"id":17,"text":1552,"url":17,"identifiers":1553},"Aslan, M. M., & Candan, G. (2018). Determining the damage level of the European grapevine moth Lobesia botrana (Denis et Schiffermüller) in different grape varieties. Kahramanmaraş Sütçü İmam University Journal of Agriculture and Nature, 21, 482–488.",{},{"id":241,"text":1555,"url":243,"identifiers":1556},"Bandelt, H.-J., Forster, P., & Röhl, A. (1999). Median-joining networks for inferring intraspecific phylogenies. Molecular Biology and Evolution, 16, 37–48.",{"doi":245},{"id":17,"text":1558,"url":17,"identifiers":1559},"Birgücü, A. K., Turanlı, F., Gümüş, E., Güzel, B., & Karsavuran, Y. (2015). The effect of grape cultivars on oviposition preference and larval survival of Lobesia botrana Den. & Schiff. The effect of grape cultivars on oviposition. Fresenius Environmental Bulletin, 24, 33–38.",{},{"id":17,"text":1561,"url":1562,"identifiers":1563},"CABI. (2019). Lobesia botrana (European grapevine moth). https:\u002F\u002Fwww.cabi.org\u002Fisc\u002Fdatasheet\u002F42794 (31.01.2019).","https:\u002F\u002Fwww.cabi.org\u002Fisc\u002Fdatasheet\u002F42794(31.01",{},{"id":17,"text":1565,"url":17,"identifiers":1566},"Denis, J. N. C. M & Schiffermüller, I. (1775). Ankündung [sic] eines systematischen Werkes von den Schmetterlingen der Wienergegend, herausgegeben von einigen Lehrern am k.k. Theresianum. A. Bernardi, Vienna, 322 pp.",{},{"id":17,"text":1568,"url":17,"identifiers":1569},"Döös, S. (2013). Genetic differences in Lobesia botrana populations – Related to host plant or geographic origin? Undergraduate thesis, Swedish University of Agricultural Science, Uppsala, Sweden. 43 pp.",{},{"id":241,"text":1571,"url":243,"identifiers":1572},"Excoffier, L., Laval, G., & Schneider, S. (2005). 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Host specificity of the Bacillus thuringiensis δ-endotoxin toward lepidopteran species: Spodoptera littoralis Bdv., Pieris brassicae L. Journal of Invertebrate Pathology, 49, 37–48.",{"doi":1876},"10.1016\u002F0022-2011(87)90123-6",{"id":17,"text":1878,"url":17,"identifiers":1879},"Liu, X. X., Sun, C. G., & Zhang, Q. W. (2005). Effects of transgenic Cry1A+CPTI cotton and CrylAc toxin on the parasitoid, Campoletis chlorideae (Hymenoptera: Ichneumonidae). Insect Science, 12, 101–108.",{"doi":1880},"10.1111\u002Fj.1744-7917.2005.00012.x",{"id":17,"text":1882,"url":17,"identifiers":1883},"Mohan, M., & Gujar, G. T. (2000). Susceptibility pattern and development of resistance in the diamondback moth, Plutella xylostella L., to Bacillus thuringiensis Berl. var. kurstaki in India. Pest Management Science, 56, 189–194.",{"doi":1884},"10.1002\u002F1526-4998(200002)56:2\u003C189::AID-PS95>3.0.CO;2-T",{"id":17,"text":1886,"url":17,"identifiers":1887},"Mohan, M., & Gujar, G. T. (2002). Geographical variation in larval susceptibility of the diamondback moth, Plutella xylostella (Lepidoptera: Plutellidae) to Bacillus thuringiensis spore-crystal mixtures and purified crystal proteins, and associated resistance development in India. Bulletin of Entomological Research, 92, 489–498.",{"doi":1888},"10.1079\u002FBER2002195",{"id":17,"text":1890,"url":17,"identifiers":1891},"Mohan, M., Sushil, S. N., Bhatt, J. C., Gujar, G. T., & Gupta, H. S. (2008). Synergistic interaction between sublethal doses of Bacillus thuringiensis and Campoletis chlorideae in managing Helicoverpa armigera. BioControl, 53, 375–386.",{"doi":1892},"10.1007\u002Fs10526-007-9079-z",{"id":17,"text":1894,"url":17,"identifiers":1895},"Monnerat, R. G., & Bordat, D. (1998). Influence of HD1 (Bacillus thuringiensis ssp. kurstaki) on the developmental stages of Diadegma sp. (Hym., Ichneumonidae) parasitoid of Plutella xylostella (Lep., Yponomeutidae). Journal of Applied Entomology, 122, 49–51.",{"doi":1896},"10.1111\u002Fj.1439-0418.1998.tb01460.x",{"id":17,"text":1898,"url":17,"identifiers":1899},"Nealis, V., & Van Frankenhuyzen, K. (1990). Interactions between Bacillus thuringiensis Berliner and Apanteles fumiferanae Vier. (Hymenoptera: Braconidae), a parasitoid of the spruce budworm, Choristoneura fumiferana (Clem.) (Lepidoptera: Tortricidae). Canadian Entomologist, 122, 585–594.",{"doi":1900},"10.4039\u002FEnt122585-7",{"id":17,"text":1902,"url":17,"identifiers":1903},"Nguyen, D. H., Nakai, M., Takatsuka, J., Okuno, S., Ishi, T., & Kunimi, Y. (2005). Interaction between a nucleopolyhedrovirus and the braconid parasitoid Meteorus pulchricornis (Lepidoptera: Braconidae) in the larvae of Spodoptera litura (Lepidoptera: Noctuidae). Applied Entomology and Zoology, 40, 325–334.",{"doi":1904},"10.1303\u002Faez.2005.325",{"id":17,"text":1906,"url":17,"identifiers":1907},"Oluwafemi, A. R., Rao, Q., Wang, X. Q., & Zhang, H. Y. (2009). Effect of Bacillus thuringiensis on Habrobracon hebetor during combined biological control of Plodia interpunctella. Insect Science, 16, 409–416.",{"doi":1908},"10.1111\u002Fj.1744-7917.2009.01262.x",{"id":17,"text":1910,"url":17,"identifiers":1911},"SAS. (2003). SAS\u002FSTAT user’s guide, version 9.1. Cary, NC, USA: SAS Institute.",{},{"id":17,"text":1913,"url":17,"identifiers":1914},"Tabashnik, B. E., Cushing, N. L., Finson, N., & Johnson, M. W. (1990). Field development of resistance to Bacillus thuringiensis in diamondback moth (Lepidoptera: Plutellidae). Journal of Economic Entomology, 83, 1671–1676.",{"doi":1915},"10.1093\u002Fjee\u002F83.5.1671",{"id":17,"text":1917,"url":17,"identifiers":1918},"Talekar, N. S., Lin, M. Y., & Liang, Y. (1997). Rearing of diamondback moth parasites. Asian Vegetable Research and Development Center (AVRDC) publication no. 97-470. http:\u002F\u002Fwww.avrdc.org.tw",{},{"id":17,"text":1920,"url":17,"identifiers":1921},"Talekar, N. S., & Shelton, A. M. (1993). Biology, ecology and management of the diamondback moth. Annual Review of Entomology, 38, 275–301.",{"doi":1922},"10.1146\u002Fannurev.en.38.010193.001423",{"id":17,"text":1924,"url":17,"identifiers":1925},"Thomas, E. M., & Watson, T. F. (1986). Effect of Dipel (Bacillus thuringiensis) on the survival of immature and adult Hyposoter exiguae (Hymenoptera: Ichneumonidae). Journal of Invertebrate Pathology, 47, 178–183.",{"doi":1926},"10.1016\u002F0022-2011(86)90044-3",{"id":17,"text":1928,"url":17,"identifiers":1929},"Ulpah, S., & Kok, L. T. (1996). Interrelationship of Bacillus thuringiensis Berliner to the diamondback moth (Lepidoptera: Noctuidae) and its primary parasitoid, Diadegma insulare (Hymenoptera: Ichneumonidae). Journal of Entomological Science, 31, 371–377.",{"doi":1930},"10.18474\u002F0749-8004-31.4.371",{"id":17,"text":1932,"url":17,"identifiers":1933},"Wallner, W. E., Dubois, N. R., & Grinberg, P. S. (1983). Alteration of parasitism by Rogas lymantriae (Hymenoptera: Braconidae) in Bacillus thuringiensis-stressed gypsy moth (Lepidoptera: Lymantriidae) hosts. Journal of Economic Entomology, 76, 275–277.",{"doi":1934},"10.1093\u002Fjee\u002F76.2.275",{"id":17,"text":1936,"url":17,"identifiers":1937},"Xu, Y. U., Liu, T. X., Leibee, G. L., & Jones, W. A. (2004). Effects of selected insecticides on Diadegma insulare (Hymenoptera: Ichneumonidae), a parasitoid of Plutella xylostella (Lepidoptera: Plutellidae). Biocontrol Science and Technology, 14, 713–723.",{"doi":1938},"10.1080\u002F09583150410001682395",{"id":17,"text":1940,"url":17,"identifiers":1941},"Zhao, J., Collins, H., Li, Y., Mau, R., Thompson, G., Hertlein, M., et al. (2006). Monitoring of diamondback moth resistance to spinosad, indoxacarb, and emamectin benzoate. Journal of Economic Entomology, 99, 176–181.",{"doi":1942},"10.1603\u002F0022-0493(2006)099[0176:MODMLP]2.0.CO;2",{"id":1944,"createTime":1945,"updateTime":1946,"relativeEntities":1947,"slug":1948,"properties":1949,"entityType":113,"verifyStatus":114,"verifyTime":1960,"verifyNote":116,"languages":17,"translateLanguages":17,"viewCount":18,"primaryUrl":1961,"fullTextUrl":17,"authors":1962,"publicationType":179,"publisherRelationship":2021,"citationCount":2072,"citationInfo":2073,"publishDate":2076,"publishYear":2074,"citationAnalyzeStatus":16,"lastCitationAnalyze":1946,"indexDatabases":2077,"openAccess":17,"references":17,"isForceReanalyzing":270},"5900797b-7e3d-41a6-8097-791d24aa505f","2023-11-29T04:12:29.343+00:00","2026-05-02T06:31:44.816+00:00",[],"Gall-production-on-hawthorns-caused-by-Gymnosporangium-spp-in-Hatay-province-Turkey",{"abstract":1950,"title":1952,"gsPaper":1954,"references":1956,"doi":1958},{"EN":1951},"Three hawthorn and related rust diseases caused by Gymnosporangium confusum on Crataegus monogyna, Gymnosporangium clavariiforme on Crataegus orientalis and Gymnosporangium sabinae on Pyrus communis were detected in Hatay province, Turkey. G. confusum was also found causing telial galls on Juniperus communis. G. confusum and G. clavariiforme produced aecial horns on overwintered galls on hawthorn twigs from May to June. The production of galls caused by Gymnosporangium on the secondary host is unusual. Portions of the nuclear ITS and LSU rDNA were sequenced for all three species of Gymnosporangium for use as a species barcode; sequences were deposited in GenBank. Sequence data from G. clavariiforme and G. sabinae matched those in GenBank; however, this is the first study to deposit sequence data from G. confusum to GenBank. The life cycles of G. confusum and G. clavariiforme are discussed along with implications for disease control.",{"EN":1953},"Gall production on hawthorns caused by Gymnosporangium spp. in Hatay province, Turkey",{"VOID":1955},"[\"5099382740982067758\"]",{"VOID":1957},"Aime, M. C. (2006). Toward resolving family-level relationships in rust fungi (Uredinales). Mycoscience, 47, 112–122.\nBahçecioğlu, Z. (2001). New records of Pucciniaceae from Turkey. Plant Disease Research, 16, 17–22.\nBahçelioğlu, Z., & Yildiz, B. (2005). A study on the microfungi of Sivas Province. Turkish Journal of Botany, 29, 23–44.\nBernaux, P. (1956). Contribution à l'étude de la biologie des Gymnosporangium. Annales de l’institut national de la recherché agronomique. Serie C. (Annales des Epiphyties), 7(1), 1–210.\nChang, Q., & Zuo, Z. (2002). Hawthorn. Journal of Clinical Pharmacology, 42, 605–612.\nDinç, N., & Yilmaz, M. A. (1978). Investigation on Gymnosporangium spp. in eastern and southern areas of Turkey. Journal of Turkish Phytopathology, 7, 99–104.\nDoğanlar, M. (2010). A new species of Westralianus Boucek 1988 (Hymenoptera: Torymidae: Megastigminae) from Turkey. Turkish Journal of Zoology, 4 312–314.\nErcisli, S. (2004). A short review of the fruit germplasm resources of Turkey. Genetic Resources and Crop Evolution, 51, 419–435.\nErdoğdu, M., Hüseyin, E., & Suludere, Z. (2010). Description of the rusts from Kemaliye (Erzincan, Turkey). Phytoparasitica, 38, 81–93.\nFarr, D. F., & Rossman, A. Y. (2010). Fungal databases, systematic mycology & microbiology laboratory. U.S. Department of Agriculture Agricultural Research Service. http:\u002F\u002Fnt.arsgrin.gov\u002Ffungaldatabases\u002F Retrieved Feb. 28, 2010.\nHüseyinov, E. (2000). New records of microfungi for Turkey. Israel Journal of Plant Science, 48, 75–78.\nHüseyinov, E., & Selçuk, F. (2001). Contribution to study of mycoflora of Turkey. II. Ascomycetous and basidiomycetous microfungi of forest trees and shrubs in the Black Sea coast (Rize Province). Mikologiya i Fitopatologiya, 35, 13–15.\nKabaktepe, S., & Bahçelioğlu, Z. (2006). Microfungi identified from the flora of Ordu Province in Turkey. Turkish Journal of Botany, 30, 251–265.\nKaraca, İ. (1965). Sistematik bitki hastalıkları. (Phycomycetes, Basidiomycetes) II. Ege Üniversitesi Ziraat Fakültesi Yayınları (107). Izmir: Ege Üniversitesi Press.\nKern, F. D. (1973). A revised taxonomic account of Gymnosporangium. University Park, PA, USA: Pennsylvania State University Press.\nKim, S. C., & Kim, C. H. (1980). Studies on the disease of pear rust caused by Gymnosporangium haraeanum Sydow I. Some ecological investigation of inoculum source. Korean Journal of Plant Protection, 19, 39–44.\nLjubuncic, P., Portnaya, I., Cogan, U., Azaizeh, H., & Bomzon, A. (2005). Antioxidant activity of Crataegus aronia aqueous extract used in traditional Arab medicine in Israel. Journal of Ethnopharmacology, 101, 153–161.\nMoncalvo, J. M., Wang, H. H., & Hseu, R. S. (1995). Phylogenetic relationships in Ganoderma inferred from the internal transcribed spacers and 25S ribosomal DNA sequences. Mycologia, 87, 223–238.\nParmelee, J. A. (1965). The genus Gymnosporangium in eastern Canada. Canadian Journal of Botany, 43, 239–267.\nParmelee, J. A. (1971). The genus Gymnosporangium in western Canada. Canadian Journal of Botany, 49, 903–926.\nPeterson, R. S. (1982). Rust fungi (Uredinales) on Cupressaceae. Mycologia, 74, 903–910.\nSchussler, M., & Holzl, J. (1995). Myocardial effects of flavonoids from Crataegus species. Arzneimittel-Forschung, 45, 842–845.\nSinclair, W. A., & Lyon, H. H. (2005). Diseases of trees and shrubs (2nd ed.). Ithaca, NY, USA: Cornell University Press.\nVilgalys, R., & Hester, M. (1990). Rapid genetic identification and mapping of enzymatically amplified ribosomal DNA from several Cryptococcus species. Journal of Bacteriology, 172, 4238–4246.\nWilson, M., & Henderson, D. M. (1966). British rust fungi. Cambridge, UK: Cambridge University Press.\nYun, H. Y., Hong, S. G., Rossman, A. Y., Lee, S. K., Lee, K. J., & Bae, K. S. (2009). The rust fungus Gymnosporangium in Korea including two species G. monticola and G. unicorne. Mycologia, 101, 790–809.\nZiller, W. G. (1974). The tree rusts of western Canada. Victoria, B.C., Canada: Canadian Forestry Service Publication No. 1329. Canadian Forestry Service. Victoria, British Columbia. 272 pp.",{"VOID":1959},"10.1007\u002Fs12600-010-0102-z","2024-05-09T08:43:05.764+00:00","http:\u002F\u002Flink.springer.com\u002F10.1007\u002Fs12600-010-0102-z",[1963,1980,1995,2008],{"id":1964,"sortIndex":18,"researcher":17,"roles":1965,"affiliations":1966,"properties":1975,"displayName":1977,"givenName":17,"familyName":17},"3734cf88-eb3c-44b8-9294-301e5c32503c",[122],[1967],{"id":1968,"sortIndex":18,"affiliation":1969,"properties":17},"a25bd4c1-9bcc-405f-a734-acaec6b826f5",{"id":1968,"createTime":17,"updateTime":17,"relativeEntities":1970,"slug":17,"properties":1971,"entityType":17,"verifyStatus":17,"verifyTime":17,"verifyNote":17,"languages":17,"translateLanguages":17,"viewCount":17,"url":17,"parentIds":1974,"statistic":17},[],{"title":1972},{"VI":1973},"Department of Plant Protection, Faculty of Agriculture, University of Mustafa Kemal, Antakya, Turkey",[],{"title":1976,"gsAuthor":1978},{"VI":1977},"Sibel 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