[{"data":1,"prerenderedAt":-1},["ShallowReactive",2],{"_public_publisher_byId_f169ca04-9dc5-4fe2-9fc1-4e58acb6f63a":3,"_public_publication_all{\"sortAscending\":false,\"sortField\":\"updateTime\",\"page\":0,\"size\":10,\"facet\":true,\"searchKey\":\"publisherId:f169ca04-9dc5-4fe2-9fc1-4e58acb6f63a,\"}":88},{"code":4,"data":5,"meta":20},"SUCCESS",{"id":6,"createTime":7,"updateTime":8,"relativeEntities":9,"slug":10,"properties":11,"entityType":18,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":21,"subjectFields":22,"manageAffiliations":29,"indexDatabases":44,"url":79,"thumbnailPath":20,"statistic":80,"gsStatistic":20,"type":87,"analyzePriority":20},"f169ca04-9dc5-4fe2-9fc1-4e58acb6f63a","2024-04-11T03:43:26.841+00:00","2025-11-21T10:00:16.088+00:00",[],"Journal-of-Northeast-Forestry-University",{"issn":12,"title":14,"eissn":16},{"VOID":13},"1993-0607",{"EN":15},"Journal of Northeast Forestry University",{"VOID":17},"1002-5618","PUBLISHER","PENDING",null,0,[23],{"id":24,"createTime":20,"updateTime":20,"relativeEntities":25,"label":26,"description":28,"parentId":20,"standard":20,"scholarHubFieldId":20},"f116ed3e-c3a7-4ae5-9040-f4e1236ccdcf",[],{"EN":27},"Forestry",{},[30,37],{"id":31,"createTime":20,"updateTime":20,"relativeEntities":32,"slug":20,"properties":33,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":36,"statistic":20},"765cb03c-0076-4078-81a7-e6ce337b40c5",[],{"title":34},{"EN":35},"Northeast Forestry University",[],{"id":38,"createTime":20,"updateTime":20,"relativeEntities":39,"slug":20,"properties":40,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":43,"statistic":20},"2da43522-c1db-4fae-8cc1-6d5b7622ca05",[],{"title":41},{"EN":42},"NORTHEAST FORESTRY UNIV",[],[45,62],{"id":46,"indexDatabase":47,"url":57,"indexYears":58,"academicFieldIds":59,"indexDatabaseRanking":61},"da197b05-4467-408b-aed8-e7f70e1df0e9",{"id":48,"createTime":20,"updateTime":20,"relativeEntities":49,"label":50,"description":52,"key":54,"publicationTags":55,"standard":20},"3c7051d4-eb7d-4c57-a56b-36fc74c5d1e9",[],{"EN":51,"VI":51},"Scopus - Elsevier",{"EN":51,"VI":53},"Cơ sở dữ liệu Scopus thuộc Elsevier","scopus",[56],"SCOPUS","https:\u002F\u002Fwww.scopus.com\u002Fsourceid\u002F7000153262","1996-1998,2004,2006-2025",[60],"a3e7e4bc-fe46-43ff-bddf-b0b084c2c77d","SCOPUS__Q3",{"id":63,"indexDatabase":64,"url":76,"indexYears":20,"academicFieldIds":77,"indexDatabaseRanking":20},"8a00886e-1995-4201-8ba2-70ba0d63bdf2",{"id":65,"createTime":20,"updateTime":20,"relativeEntities":66,"label":67,"description":69,"key":72,"publicationTags":73,"standard":20},"a4921856-b128-4d9f-8f1f-e80813d3bbd4",[],{"EN":68,"VI":68},"ISI\u002FSCIE - Science Citation Index Expanded",{"EN":70,"VI":71},"SCIE database","Cơ sở dữ liệu SCIE","scie",[74,75],"SCIE","ISI","https:\u002F\u002Fmjl.clarivate.com\u002Fsearch-results?issn=1007-662X",[78],"dc4eea08-69d7-4bb5-958e-f00ed8a2f3c8","https:\u002F\u002Flink.springer.com\u002Fjournal\u002F11676",{"impactFactor":21,"impactFactorByYear":81,"i10Index":21,"i10IndexLast5Year":21,"totalPublication":82,"totalPublicationByYear":83,"totalCitation":21,"totalCitationByYear":85,"totalCitationPerPublication":21,"totalCitationPerPublicationByYear":86,"hindexLast5Year":21,"hindex":21},{},2,{"1995":84,"1996":84},1,{},{},"JOURNAL",{"meta":89,"data":91},{"total":90},"2311",[92,213,397,532,781,869,1018,1181,1381,1525],{"id":93,"createTime":94,"updateTime":95,"relativeEntities":96,"slug":97,"properties":98,"entityType":108,"verifyStatus":109,"verifyTime":110,"verifyNote":111,"languages":20,"translateLanguages":112,"viewCount":21,"primaryUrl":114,"fullTextUrl":20,"authors":115,"publicationType":160,"publisherRelationship":161,"citationCount":20,"citationInfo":20,"publishDate":209,"publishYear":210,"citationAnalyzeStatus":19,"lastCitationAnalyze":20,"indexDatabases":211,"openAccess":20,"references":20,"isForceReanalyzing":212},"43a398b8-9a99-4e52-95c8-33b052560c24","2024-01-21T02:02:41.492+00:00","2026-09-08T10:14:38.438+00:00",[],"Study-onSonneratia-apetala-productivity-in-restored-forests-in-Leizhou-Peninsula-China",{"abstract":99,"title":101,"references":104,"doi":106},{"EN":100},"The exoticSonneratia apetala in Leizhou Peninsula, has shown outstanding fast-growing ability in restored mangrove forests, at the middle and high tide intertidal zone, with year-round fresh water input from drainage. By setting plot and selecting standard tree, investigation and measurement on height growth, diameter growth, biomass, productivity, and so on, were made in aS. apetala plantation at age of six at Lanbel, Fucheng, Leizhou Peninsula in May 2001. The investigating results showed that the mean annual height growth of plantation was 2.03 m and mean annual growth of diameter at breast height (DBH) was 2.35 cm. There exists a significant correlation between the diameter at ground surface (DGS) and DBH. The average biomass of a single standard tree in dry weight was 95.647 kg\u002Fm2. A ratio of above-ground biomass to under-ground biomass was 1.60. The stand biomass of unit area was 22.955 kg\u002Fm2, singletree wood volume was 88.23 dm3, and the annual wood volume productivity (P\n                A) of the same year was 0.407. The forest energy accumulation was 424.851 MJ\u002Fm2, with annual solar energy fixing rate of 40.68×10−7%. It is concluded thatS. apetala species had characteristics of outstanding high biomass accumulation and could be used as coastal planting tree species in southern China.",{"EN":102,"VI":103},"Study onSonneratia apetala productivity in restored forests in Leizhou Peninsula, China","Nghiên cứu năng suất loài Sonneratia apetala trong các khu rừng phục hồi tại bán đảo Lôi Châu, Trung Quốc",{"VOID":105},"Chang Hungta, Chang Chaochang and Wang Bosun. 1957. The Mangrove association in Leizhou Peninsula [J]. Journal of Zhongshan University (Nature Science), (1): 122–145.\nChullasorn, S. and Martosubrota, P. 1986. Distribution and important biological features of coastal fish resources in Southeast Asia [M]. Rome: FAO reprint, p1–20.\nEllison, A.M. 2000. Mangrove restoration: Do we know enough? [J]. Restoration Ecology,8: 219–229.\nField, C.D. 1999. Mangrove rehabilitation: choice and necessity [J]. Hydrobiologia,413: 47–52.\nGCIG (Guangdóng Coastal Investigation Group). 1987. The Comprehensive report on coastal and mudflat resources in guangdong province [M]. Guangdong: Ocean Press, 9–138.\nHan Weidong, Gao Xiumei and Lu Changyi. 2000a. Mangrove ecosystems and their ecological values [J]. Journal of Fujian Forestry Science and Technology, (2): 7–12.\nHan Weidong, Gao Xiumei, Lu Changyi,et al. 2000b. Ecological evaluation on mangrove ecosystems in China [J]. Ecological Science, (1):23–29.\nHan Weidong and Gao Xiumei, 1998c. The conservation strategy of mangroves in Zhangjiang [J]. Forestry Science and Technology of Guangdong Province, (3): 17–23.\nLee Shengye (Lee S.Y.). 1999. Topical mangrove ecology: Physical and biotic factors influencing ecosystem structure and function [J]. Australian Journal of Ecology,24: 355–366.\nLieth, H. and Whittaker, R.H. 1985. The First productivity of biosphere [M]. Beijing: Science Press, p1–150.\nLi Mingshun and Lee Shengye. 1997. Mangroves of China: a brief review [J]. Forest Ecology and Management,96: 241–259.\nLin Peng. 1990. Mangrove research papers (1980–1989) [M]. Xiamen: Xiamen University Press, p1–229.\nLin Peng. 1993. Mangrove research papers (II) (1980–1992) [M]. Xiamen: Xiamen University Press, p1–186.\nLin Peng. 1999. Mangrove research papers (III) (1993–1996) [M]. Xiamen: Xiamen University Press, p1–246.\nLin Peng. 2000. Mangrove research papers (IV) (1997–1999) [M]. Xiamen: Xiamen University Press, p1–246.\nLin Peng and Fu Qin. 1995. Mangrove environment and economic utilization in China [M]. Beijing: High Education Press, p1–95.\nLin Peng, Hu Hongyou, Zheng, Wenjiaoet al. 1998. A study on the biomass and energy of mangrove communities in Shenzhen Bay [J].Scientia Silvae Sinicae,34(1): 18–24.\nLin Peng, Lu Changyi, Wang Gongli,et al. 1990. Biomass and productivity ofBruguiera sexangula mangrove forest in Hainan Island, China [J]. Journal of Xiamen University (Nature Science),29(2): 45–48.\nLin Peng, Yu Yi and Lu Changyi. 1992. Biomass and productivity ofRhizophora stylosa Community in Yingluo Bay of Guangxi, China [J] Journal of Xiamen University (Nature Science),31 (2): 199–202.\nLin Yiming, Zheng Maozhong, Lin Pong, et al. 2000. Ash content and caloric value in leaves of garden bamboo species [J] Journal of Xamen University (Nature Science),39 (1): 136–140.\nOdum, E.P. 1980. The status of three ecosystem-level hypotheses regarding salt-marsh estuaries: tidal subsidy, outwelling and detritus based food chains [C]. In: Estuarine Perspectives (ed. V. Kennedy). New York, Academic Press, p485–495.\nRen Hai, Peng Shaolin, Liu Hongxianet al. 1999. The caloric value of main plant species at dinghushan,Guangdong,China [J]. Acta Phytoecologica Sinica,23 (2): 148–154.\nRonnback. 1999. The ecological basis for economic value of Seafood production supported by mangrove ecosystems [J]. Ecological Economics29: 235–252.\nTomlinson, P.B. 1986. The Botany of Mangroves. C. Cambridge: Cambridge University Press, 1–250.\nWong Yukshan and Tam Nora F.Y. 1997. Mangrove research of Guangdong, China (Selected Research Papers) [M] Guangzhou: South China University of Technology Press, 45–235.\nWu Zhongheng, Cai Junxin and Ye Qinbai. 2000. Analysis on effencts of introduction and popularization ofSonneratia apetala [J]. Forestry Science and Technology of Guangdong Province,16(2): 6–10.\nYu Yi, Fan Hangqin and Su Xiangjie 1993. Biomass study of avicenna marina in Guangxi [J]. Journal of Guangxi Science Academy,9 (2): 19–24.\nZheng Dezhang, Liao Baowen, Zheng Songfa (Eds). 1999. Studies on the techniques of afforestation and management of main mangrove species [M]. Beijing: Beijing Science Press, p1–365.\nZhou Qinln and Yin Weiping. 1998. Studies and Management of Mangroves in China [C]. In: Proceeding of Symposium on Science and Management of Mangrove Ecosystem, 23–27, November 1998, National Taiwan Normal University, Taipei, Taiwan, ROC. 1998, p 72–78.",{"VOID":107},"10.1007\u002FBF02856712","PUBLICATION","VERIFIED","2025-01-05T11:47:49.552+00:00","Auto Verify",[113],"VI","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002FBF02856712",[116,132,145],{"id":117,"sortIndex":21,"researcher":20,"roles":118,"affiliations":120,"properties":129,"displayName":131,"givenName":20,"familyName":20},"e970e1d2-f938-4e12-9405-d5b3cdf34b45",[119],"AUTHOR",[121],{"id":122,"sortIndex":21,"affiliation":123,"properties":20},"c4334d3c-7327-475e-9d3d-8ab95ff1e308",{"id":122,"createTime":20,"updateTime":20,"relativeEntities":124,"slug":20,"properties":125,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":128,"statistic":20},[],{"title":126},{"VI":127},"Zhanjiang Ocean University, Zhanjiang, Guangdong, P.R. China",[],{"title":130},{"VI":131},"Han Wei-dong",{"id":133,"sortIndex":84,"researcher":20,"roles":134,"affiliations":135,"properties":142,"displayName":144,"givenName":20,"familyName":20},"4c04f4c2-cb1a-4b28-b184-44ab5615704d",[119],[136],{"id":122,"sortIndex":21,"affiliation":137,"properties":20},{"id":122,"createTime":20,"updateTime":20,"relativeEntities":138,"slug":20,"properties":139,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":141,"statistic":20},[],{"title":140},{"VI":127},[],{"title":143},{"VI":144},"Gao Xiu-mei",{"id":146,"sortIndex":82,"researcher":20,"roles":147,"affiliations":148,"properties":157,"displayName":159,"givenName":20,"familyName":20},"2909a9a0-3493-4b25-89d6-defd5228272c",[119],[149],{"id":150,"sortIndex":21,"affiliation":151,"properties":20},"f0be8869-3809-47f7-b3eb-8f8d267cac82",{"id":150,"createTime":20,"updateTime":20,"relativeEntities":152,"slug":20,"properties":153,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":156,"statistic":20},[],{"title":154},{"VI":155},"Leizhou Peninsula Integrated Mangrove Management and Coastal Protection Project Office, Zhanjiang, Guangdong, P.R. China",[],{"title":158},{"VI":159},"Edwin Teunissen","ARTICLE",{"url":114,"publisher":162,"properties":204},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":163,"slug":10,"properties":164,"entityType":18,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":21,"subjectFields":168,"manageAffiliations":173,"indexDatabases":184,"url":79,"thumbnailPath":20,"statistic":199,"gsStatistic":20,"type":87,"analyzePriority":20},[],{"issn":165,"title":166,"eissn":167},{"VOID":13},{"EN":15},{"VOID":17},[169],{"id":24,"createTime":20,"updateTime":20,"relativeEntities":170,"label":171,"description":172,"parentId":20,"standard":20,"scholarHubFieldId":20},[],{"EN":27},{},[174,179],{"id":31,"createTime":20,"updateTime":20,"relativeEntities":175,"slug":20,"properties":176,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":178,"statistic":20},[],{"title":177},{"EN":35},[],{"id":38,"createTime":20,"updateTime":20,"relativeEntities":180,"slug":20,"properties":181,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":183,"statistic":20},[],{"title":182},{"EN":42},[],[185,192],{"id":46,"indexDatabase":186,"url":57,"indexYears":58,"academicFieldIds":191,"indexDatabaseRanking":61},{"id":48,"createTime":20,"updateTime":20,"relativeEntities":187,"label":188,"description":189,"key":54,"publicationTags":190,"standard":20},[],{"EN":51,"VI":51},{"EN":51,"VI":53},[56],[60],{"id":63,"indexDatabase":193,"url":76,"indexYears":20,"academicFieldIds":198,"indexDatabaseRanking":20},{"id":65,"createTime":20,"updateTime":20,"relativeEntities":194,"label":195,"description":196,"key":72,"publicationTags":197,"standard":20},[],{"EN":68,"VI":68},{"EN":70,"VI":71},[74,75],[78],{"impactFactor":21,"impactFactorByYear":200,"i10Index":21,"i10IndexLast5Year":21,"totalPublication":82,"totalPublicationByYear":201,"totalCitation":21,"totalCitationByYear":202,"totalCitationPerPublication":21,"totalCitationPerPublicationByYear":203,"hindexLast5Year":21,"hindex":21},{},{"1995":84,"1996":84},{},{},{"pages":205,"volume":207},{"VOID":206},"229-234",{"VOID":208},"12","2001-12-01",2001,[74],false,{"id":214,"createTime":215,"updateTime":216,"relativeEntities":217,"slug":218,"properties":219,"entityType":108,"verifyStatus":109,"verifyTime":230,"verifyNote":111,"languages":20,"translateLanguages":20,"viewCount":21,"primaryUrl":231,"fullTextUrl":20,"authors":232,"publicationType":160,"publisherRelationship":336,"citationCount":384,"citationInfo":385,"publishDate":393,"publishYear":386,"citationAnalyzeStatus":394,"lastCitationAnalyze":395,"indexDatabases":396,"openAccess":20,"references":20,"isForceReanalyzing":212},"d351c547-7084-4d4d-8136-c744974345b4","2024-01-04T02:41:06.743+00:00","2026-08-17T05:02:38.567+00:00",[],"Decline-and-dieback-of-cork-oak-Quercus-suber-L-forests-in-the-Mediterranean-basin-a-case-study-of-Kroumirie-Northwest-Tunisia",{"abstract":220,"title":222,"gsPaper":224,"references":226,"doi":228},{"EN":221},"Assessing the vulnerability of forest ecosystems in the climate change context is a challenging task as the mechanisms that determine this vulnerability cannot be directly observed. Based on the ecological interrelationships between forests and climate, the present review focused on providing current information about vulnerability assessments of cork oak (Quercus suber L.) forests in the Mediterranean basin, especially, in the Kroumirie region (northwest Tunisia), currently under historic extreme drought conditions. From comparing recent findings in this region, we synthesized data on cork oak decline and mortality collected during the historic drought years 1988–1995 period. Climate change impacts cork forest decline, with special interest shown in elevated temperatures and drought; cork oak forest regeneration, and the adaptation of the Kroumirie forest to climate change, are reviewed herein. The studied region has been influenced largely by frequent prolonged drought periods, especially from 1988 to 1995. Droughts were found to consistently have a more detrimental impact on the growth and mortality rates of cork oak populations. Cork oak mortality was recorded for up to 63,622 trees. In the future, more research studies and observational data will be needed, which could represent an important key to understand ecosystem processes, and to facilitate the development of better models that project climate change impacts and vulnerability. The study is useful for researchers and forestry decision makers to develop the appropriate strategies to restore and protect ecosystems, and to help anticipate potential future droughts and climate change.\n",{"EN":223},"Decline and dieback of cork oak (Quercus suber L.) forests in the Mediterranean basin: a case study of Kroumirie, Northwest Tunisia",{"VOID":225},"[\"3765468152764303252\"]",{"VOID":227},"Adams HD, Collins AD, Briggs SP, Vennetier M, Dickman LT, Sevanto SA, Garcia-Forner N, Powers HH, Mcdowell NG (2015) Experimental drought and heat can delay phenological development and reduce foliar and shoot growth in semiarid trees. Glob Chang Biol 21:4210–4220\nAinsworth EA, Long SP (2005) What have we learned from 15 years of free-air CO2 enrichment (FACE)? A meta-analytic review of the responses of photosynthesis, canopy properties and plant production to rising CO2. New Phytol 165:351–371\nAllen CD, Macalady AK, Chenchouni H, Bachelet D, McDowell N, Vennetier M, Kitzberger T, Rigling A, Breshears DD, Hogg (Ted) EH, Gonzalez P, Fensham R, Zhang Z, Castro J, Demidova N, Lim JH, Allard G, Running SW, Semerci A, Cobb N (2010) A global overview of drought and heat-induced tree mortality reveals emerging climate change risks for forests. For Ecol Manage 259:660–684\nAllen CD, Breshears DD, McDowell NG (2015) On underestimation of global vulnerability to tree mortality and forest dieoff from hotter drought in the Anthropocene. Ecosphere 6:1–55\nAloui A (2007) Analyse et diagnostic de l‘état actuel de la subéraie tunisienne et proposition d‘une stratégie de développement durable (étude stratégique pour le développement durable de la subéraie tunisienne), p 60\nAmthor JS (2000) Direct effect of elevated CO2 on nocturnal in situ leaf respiration in nine temperate deciduous tree species is small. Tree Physiol 20(2):139–144\nApple ME, Lucash MS, Olszyk DM, Tingey DT (1998) Morphogenesis of Douglas-fir buds is altered at elevated temperature but not at elevated CO2. Environ Exp Bot 40(2):159–172\nBakri M, Abourouh M (1995) Dépérissement du chêne-liège au Maroc: état des connaissances et perspectives. Bull OILB Srop 18:50–55\nBarbero M, Loisel R, Quézel P (1992) Biogeography, ecology and history of Mediterranean Quercus ilex ecosystems. Vegetatio 99–100:19–34. https:\u002F\u002Fdoi.org\u002F10.1007\u002F978-94-017-2836-2_2\nBattaglia M (1996) Effects of seed dormancy and emergence time on the survival and early growth of Eucalyptus delegatensis and E. amygdalina. Aust J Bot 44:123–137\nBen Jamâa M (2014) La mauvaise exploitation du liège: un facteur redoutable pouvant affecter la surface génératrice du liège et le dépérissement du chêne-liège. Integrated protection in oak forests. IOBC-WPRS Bull. 101:75–79\nBen Jamâa M, Hasnaoui B (1996) Le dépérissement du chêne-liège (Quercus suber L.) en Tunisie. Ann. Rech. For. Maroc Numéro spé, pp 1–10\nBen Jamâa M, Sghaier T, Mnara S, Nouri M, Sellemi H (2005) Le dépérissement du chêne-liège dans la subéraie de Béllif (Tunisie): caractérisation et évaluation de son impact sur l’accroissement du liège. Integr Prot Oak For IOBC\u002Fwprs Bull. 28:17–24\nBen Jamâa M, Chaar H, Brinsi M, Nouri M (2006) Impact des variations climatiques sur le dépérissement du chêne-liège (Quercus suber L.) dans la région de Aïn Draham. Les Ann. l’INRGREF Numéro spé, pp 138–153\nBen Zyane M (1998) La subéraie marocaine, produit économique et social à développer. Les Ann. l’INRGREF Numéro Spé, pp 12–21\nBentouati A (2008) La situation du cèdre de l’Atlas dans les Aurès (Algérie). Forêt méditerranéenne 29:203–208\nBigler C, Bräker OU, Bugmann H, Dobbertin M, Rigling A (2006) Drought as an inciting mortality factor in scots pine stands of the Valais, Switzerland. Ecosystems 9:330–343\nBouchaour Djabeur S (2001) Diagnostic sanitaire de quelques subéraies de l’ouest Algérien. Faculté des Sciences, Université de Tlemcen, Algeria, pp 85–92\nBouhraoua RT, Villemant C, Khelil MA, Bouchaour S (2002) Situation sanitaire de quelques subéraies de l’Ouest algérien: impact des xylophages. IOBC-wprs Bull 25:85–92\nBoussaidi N (2005) Parcours en forêt et risque de dégradation des potentialités pastorales dans la IVème série forestière de Mekna (Tabarka-Tunisie). INAT, Tunisia, pp 14–15\nBoussaidi N (2012) Impacts de l‘action anthropique sur la subéraie tunisienne: essai de projection dans le futur d‘un écosystème (cas de la subéraie de Kroumirie- nord-ouest de la Tunisie). Ph.D Thesis. Institut National Agronomique de Tunisie (INAT), p 220\nBreshears DD, Myers OB, Meyer CW, Barnes FJ, Zou CB, Allen CD, McDowell NG, Pockman WT (2009) Tree die-off in response to global change-type drought: mortality insights from a decade of plant water potential measurements. Front Ecol Environ 7:185–189\nBrinsi M (2004) Contribution à l’étude du dépérissement du chêne-liège dans la subéraie de Aïn Draham: impact des conditions climatiques. INAT, Tunisia, p 45\nCamarero JJ, Sangüesa-Barreda G, Vergarechea M (2016) Prior height, growth, and wood anatomy differently predispose to drought-induced dieback in two Mediterranean oak species. Ann For Sci 73:341–351\nCampos P, Daly-Hassen H, Oviedo JL, Ovando P, Chebil A (2008) Accounting for single and aggregated forest incomes: application to public cork oak forests in Jerez (Spain) and Iteimia (Tunisia). Ecol Econ 65:76–86\nCatry FX, Moreira F, Cardillo E, Pausas JG (2012) Post-fire management and restoration of southern European forests. Springer, Dordrecht, pp 195–222\nCeia RS, Ramos JA (2016) Birds as predators of cork and holm oak pests. Agrofor Syst 90:159–176\nChenchouni H, Abdelkrim SB, Athmane B (2008) The deterioration of the Atlas Cedar (Cedrus atlantica) in Algeria. In: International conference “adaptation of forests and forest management to changing climate with emphasis on forest health: a review of science, policies, and practices”. FAO\u002FIUFRO, Sweden, pp 25–28\nChmura DJ, Anderson PD, Howe GT, Harrington CA, Halofsky JE, Peterson DL, Shaw DC, St Brad, Clair J (2011) Forest responses to climate change in the northwestern United States: ecophysiological foundations for adaptive management. For Ecol Manage 261(7):1121–1142\nColangelo M, Camarero JJ, Battipaglia G, Borghetti M, De Micco V, Gentilesca T, Ripullone F (2017) A multi-proxy assessment of dieback causes in a Mediterranean oak species. Tree Physiol 37:617–631\nCosta A, Pereira H, Oliveira A (2001) A dendroclimatological approach to diameter growth in adult cork-oak trees under production. Trees Struct Funct 15:438–443\nCosta A, Pereira H, Oliveira A (2002) Influence of climate on the seasonality of radial growth of cork oak during a cork production cycle. Ann For Sci 59:429–437\nCosta A, Pereira H, Madeira M (2010) Analysis of spatial patterns of oak decline in cork oak woodlands in Mediterranean conditions. 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The forest was characterized by a relatively low canopy and a large number of small-diameter trees. Mean canopy height for this forest was 10 m and stands contained an average of 5400 stems·ha−1 (≧3.0 cm DBH); 64% of those stems were smaller than 10 cm DBH. The total basal area was 54.4 m 2·ha−1, of which Castanopsis sieboldii contributed 48%. The forest showed high species diversity of trees. 80 tree species (≧ 3.0 cm DBH) from 31 families was identified in the thirty sampling plots. C. sieboldii and Schima wallichii were the dominant and subdominant species in terms of importance value. The mean tree species diversity indices for the plots were, 3.36 for Diversity index (H′), 0.71 for Equitability index (J′) and 4.72 for Species richness index (S′), all of which strongly declined with the increase of importance value of the dominant, C. sieboldii. Measures of soil nutrients indicated low fertility, extreme heterogeneity and possible Al toxicity. Regression analysis showed that stem density and the dominant tree height were significantly correlated with soil pH. There was a significant positive relationship between species diversity index and soil exchangeable K+, Ca2+, and Ca2+\u002FAl3+ ratio (all p values \u003C0.001) and a negative relationship with N, C and P. The results suggest that soil property is a major factor influencing forest composition and structure within the subtropical forest in Okinawa.",{"EN":407},"Forest structure, productivity and soil properties in a subtropical evergreen broad-leaved forest in Okinawa, Japan",{"VOID":409},"[\"15222442216444376626\"]",{"VOID":411},"Basnet K. 1992. Effect of topography on the pattern of trees in Tabonuco (Dacryodes excelsa) dominated rain forest of Puerto Rico. Biotropica, 24: 1–42.\nBrasell HM, Unwin GL, Stocker GC. 1980. The quantity, temporal distribution and mineral-element content of litterfall in two forest types at two sites in tropical Australia. J Ecol, 68: 123–139.\nCrawley MJ. 1986. The structure of plant communities. pp. 1–50. In: M.J. Crawley (ed.), Plant Ecology. London: Blackwell Science,.\nCultivated Soil Classification Committee. 1995. Classification of cultivated soils in Japan, 3rd Approximation. Repot of the National Institue for Agro-Environmental Sciences, No. 17, 72pp.\nGrubb RJ. 1977. Control of forest growth and distribution on wet tropical mountains: with species reference to mineral nutrition Ann Rev Ecol Syst, 8: 83–107.\nHara M, Hirata K, Fujihara M, Oono K, Hsieh CF. 1997. Floristic composition and stand structure of three evergreen broad-leaved forests in Taiwan, with special reference to the relationship between micro-landform and vegetation pattern. Nat Hist Res. (Special Issue) No.4: 81–112.\nHatusima S, Amano T. 1994. Flora of the Ryukyus, South of Amami Island [M] (2nd edition). The biological society of Okinawa.\nHirata E, Asato I, Terazono R, Ikuzawa H. 1991. Studies on improvement of stand structure of evergreen broad-leaved forest in Okinawa (4): forest structure of experimental plots for under-planting of Distylium racemosum. Sci Bul Facul Agric, Univ of the Ryukyus, 38: 277–288. (in Japanese with English abstract)\nHuston M. 1980. Soil nutrients and species richness in Costa Rica forests. J Biogeogr, 7: 147–157.\nIehara T, Miyata I, Sugimura Y. 1983. Vegetation structure of natural forest dominated by Castanopsis cuspidate in Izumo area, San-In region. I Stand and species ordination by means of principal component analysis. Jap J Ecol, 33: 109–119.\nItô Y. 1997. Diversity of forest tree species in Yanbaru, the northern part of Okinawa Island. Plant Ecol, 133: 125–133.\nItow S. 1988. Species diversity of mainland-and island forests in the Pacific area. Vegetatio, 77: 193–200.\nKira T. 1991. Forest ecosystems of East and Southeast Asia in a global perspective. Ecol Res, 6: 185–200.\nKojima T. 1980. Forest soil in Okinawa—soil classification, property, distribution and vegetation. Res Bul Gov For Exp Station, 309: 117–157. (in Japanese with English abstract)\nLan Changchun, Yu Yanfeng, Liu Bo, Xu Xixoniu. 2008. Stand structure and successional dynamics of a subtropical evergreen broad-leaved forest in Xiaokeng, Anhui. J. Northeast Forestry Univ., (in press).\nLu Qi, Luo Tianxiang, Zhang Jia, Li Xiangdong. 1995. Study on spatial pattern of chemical elements for Castanopsis fargosii forest in north-eastern Guangxi, China. Acta Ecologica Sinica, 15: 155–162. (in Chinese with English abstract)\nMeyer WL, Arp PA. 1994. Exchangeable cations and cation exchange capacity of forest soil samples: effects of drying, storage, and horizon. Can J Soil Sci, 74: 421–429.\nMiyagi Y. 1990. Feature and conservation of the vegetation of Yanbaru, the northern part of Okinawa Island. Biol Magazine (Okinawa), 27: 19–31 (in Japanese)\nMilliken W. 1998. Structure and composition of one hectare of central Amazonian Terra Firme forest. Biotropica, 30: 530–537.\nMori, SA., Boom, BM., De Carvalho, AM. and Dos Santos, TS. 1983. Southern Bahian moist forests. Bot Rev, 49: 155–232.\nOmura M, Miyato I, Hosokawa T. 1969. Forest vegetation of Minamata Special Research Area of IBP. Memorial of the Faculty of Science, Kyushu University, Series E, Biology 5: 77–94.\nPielou EC. 1975. Ecological diversity. New York: John Wiley & Sons,.\nProctor J, Anderson JM, Chai P, Vallack HW. 1983. Ecological studies in four contrasting lowland rain forests in Gunung Mulu National Park, Sarawak. I Forest environment, structure and floristics. J Ecol, 71: 237–260.\nSanta Regina I, Leonardi S, Rapp M. 2001. Foliar nutrient dynamics and nutrient-use efficiency in Casranea sativa coppice stands of southern Europe. Forestry, 74: 1–10.\nSong Yongchang, Chen Xiaoyong, Wang Xihua. 2005. Studies on evergreen broad-leaved forests of China: A retrospect and prospect. J East China Normal Univ (Natural Sci), (1): 1–8. (in Chinese)\nStark N. 1971. Nutrient cycling. I. Nutrient distribution in some Amazonian soils. Tropical Ecol, 12: 24–50.\nStatsoft, Japan Inc. 1999. Statistica user’s guide. Tokyo. (in Japanese)\nSuzuki K. 1979. Vegetation of Ryukyu Islands, Japan. Bull Institute of Environ Sci, Yokohama National Univ, 5: 87–160. (in Japanese with German abstract)\nTakyu M, Ohsawa M. 1997. Distribution and regeneration strategies of major canopy dominants in species-rich subtropical \u002F warm temperate rainforests in south-western Japan. Ecol Res, 12: 139–151.\nTelewski FW. 1995. Wind-induced physiological and developmental responses in trees. In: Coutts, MP. and Grace, J. (eds.), Wind and Trees. Cambridge: Cambridge Univ. Press,. pp. 237–263.\nter Braak CJF. 1995. Ordination.. In: Jongman, RHG., ter Braak, CJF. and van Tongeren, OFR. (eds.), Data analysis in community and landscape ecology. Cambridge: Cambridge Univ. Press, pp. 91–173\nWhitmore TC. 1984. Tropical rainforests of the Far East (2nd edition). Cambridge: Cambridge Univ. Press.\nWhittaker RH. 1975. Communities and Ecosystems (2nd edition). New York: Macmillan Publishing Co..\nXu XN, Hirata E, Tokashiki Y, Shinohara T. 2001. Structure and species diversity of subtropical evergreen broad-leaved forest in northern Okinawa Island, Japan. J For Res, 6: 203–210.\nXu XN. 2002. Nutrient dynamics in a subtropical evergreen broad-leaved forest in Okinawa. Ph. D. dissertation, Kagoshima University. 133 pp.\nYamamori N. 1979. Studies on the characteristics of water and silvicultural techniques for avoiding drought damages of Pinus luchuensis stands. Sci Bull Faculty of Agric, Univ of the Ryukyus, 26: 573–716. (in Japanese with English abstract)\nYasuda Y, Asato I, Hirata E, Terazono R. 1999. Stand structure of subtropical evergreen broad-leaved forest. Trans Ann Meeting Kyushu Branch Jap For Soc, 52: 29–30. (in Japanese)\nZhang Zhuping, Peng Shaolin, Sun Guohui. 1989. Study on the biomass and primary productivity of Dinhushan forest community. Tropical and Subtropical Forest Ecosystem, 5: 63–73. Science Press, Guangzhou, China. (in Chinese with English abstract)",{"VOID":413},"10.1007\u002Fs11676-008-0048-x","2024-06-24T02:18:51.295+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs11676-008-0048-x",[417,450,463],{"id":418,"sortIndex":21,"researcher":20,"roles":419,"affiliations":420,"properties":447,"displayName":449,"givenName":20,"familyName":20},"42fb2227-c197-42b1-a046-750994ebbc0e",[119],[421,429,438],{"id":422,"sortIndex":21,"affiliation":423,"properties":20},"1721a876-f319-44be-8b73-7d8ffa7be915",{"id":422,"createTime":20,"updateTime":20,"relativeEntities":424,"slug":20,"properties":425,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":428,"statistic":20},[],{"title":426},{"VI":427},"Department of Forestry, Anhui Agricultural University, Hefei, 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previous studies have revealed that the ThCAP gene plays a vital role in transgenic Populus (P. davidiana × P. bolleana) in response to cold stress. However, the regulatory mechanism of ThCAP gene expression has been unclear. In this study, the 5′ flanking region of the ThCAP promoter (PThCAP) was cloned using a genome-walking method. By analyzing cis-acting regulatory elements of PThCAP, a DRE motif and MYC and MYB elements were found to be located in the promoter. To identify the regulatory elements that control the expression of the ThCAP gene promoter, a series of deletion derivatives of PThCAP, P1–P5, from the translation start code (−1538, −1190, −900, −718 and −375 bp), were fused to the GUS reporter gene, and then each deletion was stably introduced into Arabidopsis thaliana plants. Deletion analysis of the promoter suggested that only the P2 fragment had strong GUS expression in leaves and roots of A. thaliana exposed to low temperature stress. These results suggest that this 290-bp region (−1190 to −900 bp), as an important part in PThCAP, was associated with cold tolerance of A. thaliana. Our results provide evidence for the regulatory mechanism of ThCAP gene involved in the response to cold stress, and that the gene is promising candidate gene for genetic improvement of crops.",{"EN":542},"A novel cold-inducible promoter, PThCAP from Tamarix hispida, confers cold tolerance in transgenic Arabidopsis 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Cell 116:699–709","https:\u002F\u002Flink.springer.com\u002F10.1007\u002Fs10440-022-00541-7",{"doi":717},"10.1007\u002Fs10440-022-00541-7",{"id":713,"text":719,"url":715,"identifiers":720},"Company N, Nadal A, Ruiz C, Pla M (2014) Production of phytotoxic cationic α-helical antimicrobial peptides in plant cells using inducible promoters. PLoS One 9:e109990",{"doi":717},{"id":713,"text":722,"url":715,"identifiers":723},"Doyle JJ, Doyle JL (1990) Isolation of plant DNA from fresh tissue. Focus 12:13–15",{"doi":717},{"id":713,"text":725,"url":715,"identifiers":726},"Fang ZW, Xu XY, Gao JF, Wang PK, Liu ZX, Feng BL (2015) Characterization of FeDREB1 promoter involved in cold- and drought-inducible expression from common buckwheat (Fagopyrum esculentum). Genet Mol Res 14:7990–8000",{"doi":717},{"id":728,"text":729,"url":730,"identifiers":731},"e365ad3d-37b5-4202-8b0f-f97f11f46347","Fei J, Wang YS, Jiang ZY, Cheng H, Zhang JD (2015) Identification of cold tolerance genes from leaves of mangrove plant Kandelia obovata by suppression subtractive hybridization. Ecotoxicology 24:1686–1696","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs10646-015-1486-9",{"doi":732},"10.1007\u002Fs10646-015-1486-9",{"id":20,"text":734,"url":20,"identifiers":735},"Guo XH, Jiang J, Lin SJ, Wang BC, Wang YC, Liu GF, Yang CP (2009) A ThCAP gene from Tamarix hispida confers cold tolerance in transgenic Populus (P. davidiana × P. bolleana). Biotechnol Lett 31:1079–1087",{},{"id":713,"text":737,"url":715,"identifiers":738},"Jefferson RA (1989) The GUS reporter gene system. Nature 342:837–838",{"doi":717},{"id":20,"text":740,"url":20,"identifiers":741},"Kovalchuk N, Jia W, Eini O, Morran S, Pyvovarenko T, Fletcher S, Bazanova N, Harris J, Beck-Oldach K, Shavrukov Y, Langridge P, Lopato S (2013) Optimization of TaDREB3 gene expression in transgenic barley using cold-inducible promoters. Plant Biotechnol J 11:659–670",{},{"id":713,"text":743,"url":715,"identifiers":744},"Li H, Wang Y, Jiang J, Liu G, Gao C, Yang C (2009) Identification of genes responsive to salt stress on Tamarix hispida roots. Gene 433:65–71",{"doi":717},{"id":713,"text":746,"url":715,"identifiers":747},"Mayer BF, Ali-Benali MA, Demone J, Bertrand A, Charron JB (2015) Cold acclimation induces distinctive changes in the chromatin state and transcript levels of COR genes in Cannabis sativa varieties with contrasting cold acclimation capacities. Physiol Plant 155:281–295",{"doi":717},{"id":20,"text":749,"url":20,"identifiers":750},"Nataliya KC, Wei J, Omid E, Sarah M, Tatiana P, Stephen F, Natalia B, John H, Kontanze BO, Yuri S, Peter L, Sergiy L (2013) Optimization of TaDREB3 gene expression in transgenic barley using cold-inducible promoters. Plant Biotechnol J 11:659–670",{},{"id":713,"text":752,"url":715,"identifiers":753},"Shinozaki K, Yamaguchi-Shinozaki K (1997) Gene expression and signal transduction in water-stress response. Plant Physiol 115:327–334",{"doi":717},{"id":20,"text":755,"url":756,"identifiers":757},"Trivedi DK, Gill SS, Tuteja N (2016) Abscisic acid (ABA): biosynthesis, regulation, and role in abiotic stress tolerance. In: Tuteja N, Gill SS (eds) Abiotic stress response in plants, Wiley-VCH Verlag GmbH & Co. KGaA, Weinheim. doi:10.1002\u002F9783527694570.ch15","https:\u002F\u002Fdoi.org\u002F10.1002\u002F9783527694570.ch15",{"mag":758,"openalex":759,"doi":760},"2346920871","W2346920871","10.1002\u002F9783527694570.ch15",{"id":762,"text":763,"url":764,"identifiers":765},"31630efd-123e-4889-b216-2e9911ae78b4","Yamaguchi-Shinozaki K, Shinozaki K (2005) Organization of cis-acting regulatory elements in osmotic-and cold-stress-responsive promoters. Trends Plant Sci 10:88–94","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS1360138504002985",{"doi":766},"10.1016\u002Fj.tplants.2004.12.012",{"id":768,"text":769,"url":770,"identifiers":771},"074c1c0f-be5d-4ec7-80bc-01d4a0ab7796","Yu X, Liu Y, Wang S, Tao Y, Wang Z, Shu Y, Ma H (2016) CarNAC4, a NAC-type chickpea transcription factor conferring enhanced drought and salt stress tolerances in Arabidopsis. Plant Cell Rep 35:613–627","http:\u002F\u002Flink.springer.com\u002F10.1007\u002Fs00299-015-1907-5",{"doi":772},"10.1007\u002Fs00299-015-1907-5",{"id":713,"text":774,"url":715,"identifiers":775},"Zhang JY, Huang SN, Wang G, Xuan JP, Guo ZR (2016) Overexpression of Actinidia deliciosa pyruvate decarboxylase1 gene enhances waterlogging stress in transgenic Arabidopsis thaliana. Plant Physiol Biochem 106:244–252",{"doi":717},{"id":20,"text":777,"url":778,"identifiers":779},"Zong JM, Li XW, Zhou YH, Wang FW, Wang N, Dong YY, Yuan YX, Chen H, Liu XM, Yao N, Li HY (2016) The AaDREB1 transcription factor from the cold-tolerant plant adonis amurensisenhances abiotic stress tolerance in transgenic plant. Int J Mol Sci. doi:10.3390\u002Fijms17040611","http:\u002F\u002Fdx.doi.org\u002F10.3390\u002Fijms17040611",{"doi":780},"10.3390\u002Fijms17040611",{"id":782,"createTime":783,"updateTime":784,"relativeEntities":785,"slug":786,"properties":787,"entityType":108,"verifyStatus":109,"verifyTime":798,"verifyNote":111,"languages":20,"translateLanguages":20,"viewCount":21,"primaryUrl":799,"fullTextUrl":20,"authors":800,"publicationType":160,"publisherRelationship":816,"citationCount":21,"citationInfo":864,"publishDate":867,"publishYear":865,"citationAnalyzeStatus":708,"lastCitationAnalyze":784,"indexDatabases":868,"openAccess":20,"references":20,"isForceReanalyzing":212},"98c29e22-889d-442c-8121-7fd38b11fee5","2023-11-30T05:16:11.717+00:00","2026-07-26T08:27:57.077+00:00",[],"Management-of-pests-and-diseases-of-tropical-sericultural-plants-by-using-plant-derived-products-a-review",{"abstract":788,"title":790,"gsPaper":792,"references":794,"doi":796},{"EN":789},"Host plants of domesticated silkworms in tropical countries are attacked by an array of insect pests, disease pathogens and nematodes. In order to reduce resulting plant damage, chemicals have been extensively used. In recent years, products extracted\u002Fisolated from 47 plant species have been tested as replacements for or to minimize the use of hazardous chemicals. Bioefficacy of the extract in water or chemical solvent, crude seed\u002Fleaf oil, and cake is discussed, and integrated management of major and occasional pests and plant diseases is proposed in sericultural plants in order to produce chemical-free foliage.",{"EN":791},"Management of pests and diseases of tropical sericultural plants by using plant-derived products: a review",{"VOID":793},"[\"12883960781903012223\"]",{"VOID":795},"Babu RS, Dorcus D, Vivekanandhan M (1994) Possible control of tukra disease in mulberry using aqueous plant extracts of natural pesticide origin. 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Pestology 21(5):19–22\nRamarethinam S, Loganathan S, Marimuthu S, Murugesan NV (2002) Studies on the evaluation of neem oil based EC formulation (0.03 % azadirachtin) on the semilooper, Achaea janata (L.) (Lepidoptera: Noctuidae) infesting castor plant, Ricinus communis L. Pestology 21(1):9–14\nRavikumar J, Samuthiravelu P, Qadri SMH, Hemanthkumar L, Jayaraj S (2010) Integrated pest management (IPM) module for tukra mealybug, Maconellicoccus hirsutus (Green) and leaf webber, Diaphenia pulverulentalis (Hamp.) in mulberry. J Biopestic 3(1):354–357 (Special issue)\nReddy DNR, Narayanaswamy KC (1999) Present status of thrips infesting mulberry. Indian J Seric 38:1–7\nRode NS, Haseeb M, Sharma DK (2012) Life table studies on Ariadne merione merione C. (Lepidoptera: Nymphalidae) on castor. Pestology 36(7):37–41\nSahu AK, Sahu M, Bindroo BB (2008) Control of stem borer infestation in muga. 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(Homoptera: Cicadellidae) on mulberry and their biosafety to natural enemies. J Biopestic 5:246–249\nSarmah ML, Ahmed SA, Sarkar N (2013) New pests of kessuru, Heteropanax fragrans (Roxb.) Seem: a perennial host plant of eri silkworm, Samia ricini (Donovan). Munis Entomol Zool 8:900–902\nSathyaseelam V, Bhaskaran V (2010) Efficacy of some native botanical extracts on the repellency property against the pink mealy bug, Maconellicoccus hirsutum (Green) in mulberry crop. Recent Res Sci Technol 2(10):35–38\nSharma DD, Kumar PPM, Naik VN, Thippeswamy T, Bindroo BB (2013) Suppression of soil borne pathogens in contaminated soils for raising disease free mulberry plantation. Indian J Seric 52:104–107\nShivakumar G, Shamitha G (2013) Studies on larval mortality: diseases, pest and predator menace in outdoor and indoor reared tasar silkworm, Antheraea mylitta Drury. Res J Anim Vet Fish Sci 1(4):1–7\nShree MP, Kumar KR (2002) Effect of giant African snail Achatina fulica Bowdich infestation on the nutritional quality of mulberry (Morus sp.) leaves. Bull Indian Acad Seric 6:50–56\nShree MP, Kumar KR, Nagaveni V (2006) Infestation of giant African snail on mulberry. Indian Silk 45(6):14–16\nSingh T (2009) Root knot nematode in mulberry: additional information. Indian Silk 48(3):4\nSingh AN, Kanaujia KR (2003) Residual toxicity of some biopesticides against Spilarctia obliqua (Walker) on castor. Indian J Entomol 65:297–298\nSrinivasa Rao M, Venkateswarlu B, Sankaran AVB (1996) Evaluation of neem and custard apple formulations against castor semilooper, Achaea janata Linn. Pestology 20(8):16–19\nSukul NC, Sinhababu SP, Datta SC, Nandi B, Sukul A (2001) Nematotoxic effect of Acacia auriculiformis and Artemisia nilagirica against root knot nematodes. Allelopath J 8:65–72\nTang K, Abul Samed MA, Akand HA, Azhar SB, Absar N (2006) Nutritional changes in four varieties of mulberry leaves infected with fungus (Phyllactinia corylea). Pak J Biol Sci 9:355–359\nVijaya Kumari N, Lakshmi Devi M (2013) Effect of some indigenous plant extracts on the inhibition of egg hatching of nematode, Meloidogyne incognita Chitwood infesting mulberry. Hortflora Res Spectr 2(1):35–39\nWang GF, Xie GL, Zhu B, Huang JS, Liu B, Kanicha P, Benyon L, Duan YP (2010a) Identification and characterization of the Enterobacter complex causing mulberry (Morus alba) wilt disease in China. Eur J Plant Pathol 126:465–478\nWang WB, Fei JM, Wu Y, Bai XC, Shi GE, Li YF, Kuai YZ (2010b) A new report of a mosaic dwarf viroid-like disease on mulberry trees in China. Polish J Microbiol 59:33–36",{"VOID":797},"10.1007\u002Fs11676-015-0126-9","2024-06-22T23:39:36.798+00:00","http:\u002F\u002Flink.springer.com\u002F10.1007\u002Fs11676-015-0126-9",[801],{"id":802,"sortIndex":21,"researcher":20,"roles":803,"affiliations":804,"properties":813,"displayName":815,"givenName":20,"familyName":20},"c93e2d43-47df-49bc-a8e2-82fd49ebecc0",[119],[805],{"id":806,"sortIndex":21,"affiliation":807,"properties":20},"53f39c8d-2f80-4300-8af7-e76b77bdecc9",{"id":806,"createTime":20,"updateTime":20,"relativeEntities":808,"slug":20,"properties":809,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":812,"statistic":20},[],{"title":810},{"VI":811},"Arag Biotech Pvt. Ltd., Nagpur, India",[],{"title":814},{"VI":815},"R. T. Gahukar",{"url":799,"publisher":817,"properties":859},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":818,"slug":10,"properties":819,"entityType":18,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":21,"subjectFields":823,"manageAffiliations":828,"indexDatabases":839,"url":79,"thumbnailPath":20,"statistic":854,"gsStatistic":20,"type":87,"analyzePriority":20},[],{"issn":820,"title":821,"eissn":822},{"VOID":13},{"EN":15},{"VOID":17},[824],{"id":24,"createTime":20,"updateTime":20,"relativeEntities":825,"label":826,"description":827,"parentId":20,"standard":20,"scholarHubFieldId":20},[],{"EN":27},{},[829,834],{"id":31,"createTime":20,"updateTime":20,"relativeEntities":830,"slug":20,"properties":831,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":833,"statistic":20},[],{"title":832},{"EN":35},[],{"id":38,"createTime":20,"updateTime":20,"relativeEntities":835,"slug":20,"properties":836,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":838,"statistic":20},[],{"title":837},{"EN":42},[],[840,847],{"id":46,"indexDatabase":841,"url":57,"indexYears":58,"academicFieldIds":846,"indexDatabaseRanking":61},{"id":48,"createTime":20,"updateTime":20,"relativeEntities":842,"label":843,"description":844,"key":54,"publicationTags":845,"standard":20},[],{"EN":51,"VI":51},{"EN":51,"VI":53},[56],[60],{"id":63,"indexDatabase":848,"url":76,"indexYears":20,"academicFieldIds":853,"indexDatabaseRanking":20},{"id":65,"createTime":20,"updateTime":20,"relativeEntities":849,"label":850,"description":851,"key":72,"publicationTags":852,"standard":20},[],{"EN":68,"VI":68},{"EN":70,"VI":71},[74,75],[78],{"impactFactor":21,"impactFactorByYear":855,"i10Index":21,"i10IndexLast5Year":21,"totalPublication":82,"totalPublicationByYear":856,"totalCitation":21,"totalCitationByYear":857,"totalCitationPerPublication":21,"totalCitationPerPublicationByYear":858,"hindexLast5Year":21,"hindex":21},{},{"1995":84,"1996":84},{},{},{"pages":860,"volume":862},{"VOID":861},"533-544",{"VOID":863},"26",{"total":21,"publishYear":865,"statisticByYear":866},2015,{},"2015-07-21",[61,74],{"id":870,"createTime":871,"updateTime":872,"relativeEntities":873,"slug":874,"properties":875,"entityType":108,"verifyStatus":109,"verifyTime":886,"verifyNote":111,"languages":20,"translateLanguages":20,"viewCount":21,"primaryUrl":887,"fullTextUrl":20,"authors":888,"publicationType":160,"publisherRelationship":965,"citationCount":21,"citationInfo":1013,"publishDate":1016,"publishYear":1014,"citationAnalyzeStatus":708,"lastCitationAnalyze":872,"indexDatabases":1017,"openAccess":20,"references":20,"isForceReanalyzing":212},"49ba4bd2-59ff-4b28-8113-1da503890310","2024-02-08T09:27:17.402+00:00","2026-07-24T22:10:16.415+00:00",[],"Graphene-oxide-influences-bacterial-community-and-soil-environments-of-Cd-polluted-Haplic-Cambisols-in-Northeast-China",{"abstract":876,"title":878,"gsPaper":880,"references":882,"doi":884},{"EN":877},"Graphene oxide (GO), a carbon nanomaterial that is widely used in the environment and other industries, may pose potential risks to ecosystems, especially the soil ecosystem. Some soils in Northeast China are frequently polluted with cadmium (Cd) metal. However, there is no study on the influence of GO on the Cd-contaminated soil microbial community and soil chemical properties. In this study, Cd (100 mg kg−1)-polluted soils were treated with different concentrations of GO (0, 25, 50, 150, 250, and 500 mg L−1, expressed as T1, T2, T3, T4, T5, and T6, respectively) for 40 days. The treatment without Cd pollution and GO served as the control (CK). Then, we investigated the influence of the GO concentrations on the bacterial community and chemical properties of Cd-polluted Haplic Cambisols, the zonal soil in Northeast China. After GO addition, the richness and diversity indexes of the bacterial community in Cd-contaminated Haplic Cambisols initially increased by 0.05–33.92% at 25 mg L−1, then decreased by 0.07–2.37% at 50 mg L−1, and then increased by 0.01–24.37% within 500 mg L−1 again. The species and abundance of bacteria varied with GO concentration, and GO significantly increased bacterial growth at 25 and 250 mg L−1. GO treatments influenced the bacterial community structure, and the order of similarity of the bacterial community structure was as follows: T4 = T5 > T1 = T6 > T2 > T3 > CK. Proteobacteria and Acidobacteria were the dominant bacteria, accounting for 36.0% and 26.2%, respectively, of soil bacteria. Different GO treatments also significantly affected the metabolic function of bacteria and further influenced the diversity of the bacterial community structure by affecting several key soil chemical properties: soil pH, organic matter and available potassium, phosphorus, and cadmium. Our results provide a theoretical basis for scientific and comprehensive evaluation of the environmental impacts of GO on the zonal forest soils of Northeast China.",{"EN":879},"Graphene oxide influences bacterial community and soil environments of Cd-polluted Haplic Cambisols in Northeast China",{"VOID":881},"[\"2744853381974233405\"]",{"VOID":883},"Acik M, Darling B (2016) Graphene in perovskite solar cells: device design, characterization and implementation. J Mater Chem A 4:6185–6235\nBian Y, Bian ZY, Zhang JX, Ding AZ, Liu SL, Wang H (2015) Effect of the oxygen-containing functional group of graphene oxide on the aqueous cadmium ions removal. Appl Surf Sci 329:269–275\nBuckley DH, Schmidt TM (2003) Diversity and dynamics of microbial communities in soils from agro-ecosystems. Environ Microbiol 5:441–452\nChen LX (2005) Soil experiment and practice course. 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Soil Biol Biochem 40:2407–2415\nLi YH, Yang LS, Ji YF, Sun HF, Li HR, Wang WY (2008) Lead uptake by plant in soil-plant system at lead-zinc deposit area of western Hunan province. Environ Sci 29:196–201 (in Chinese with English abstract)\nLi LN, Teng Y, Ren WJ, Li ZG, Luo YM (2016) Effects of graphene on soil enzyme activities and microbial communities. Soils 48:102–108 (in Chinese with English abstract)\nLion GN, Olowoyo JO (2013) Population health risk due to dietary intake of toxic heavy metals from Spinacia oleracea harvested from soils collected in and around Tshwane, South Africa. S Afr J Bot 88:178–182\nMachida M, Mochimaru T, Tatsumoto H (2006) Lead (II) adsorption onto the graphene layer of carbonaceous materials in aqueous solution. Carbon 44:2681–2688\nMkhoyan KA, Contryman AW, Silcox J, Stewart DA, Eda G, Mattevi C, Miller S, Chhowalla M (2010) Atomic and electronic structure of graphene-oxide. 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J Food Sci 73:R21–R29",{"VOID":885},"10.1007\u002Fs11676-020-01217-4","2024-06-24T06:05:50.570+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs11676-020-01217-4",[889,907,922,937,950],{"id":890,"sortIndex":21,"researcher":20,"roles":891,"affiliations":892,"properties":904,"displayName":906,"givenName":20,"familyName":20},"2877be90-71fe-4028-9b4a-9e565d72c0b9",[119],[893],{"id":894,"sortIndex":21,"affiliation":895,"properties":901},"8598fd15-ffbe-49bd-9a14-ed03a1701440",{"id":894,"createTime":20,"updateTime":20,"relativeEntities":896,"slug":20,"properties":897,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":900,"statistic":20},[],{"title":898},{"VI":899},"Key Laboratory of Sustainable Forest Ecosystem Management - Ministry of Education, School of Forestry, Northeast Forestry University, Harbin, People’s Republic of China",[],{"title":902},{"VI":903},"Key Laboratory of Sustainable Forest Ecosystem Management-Ministry of Education, School of Forestry, Northeast Forestry University, Harbin, People’s Republic of China",{"title":905},{"VI":906},"Jiaxin Ru",{"id":908,"sortIndex":84,"researcher":20,"roles":909,"affiliations":910,"properties":919,"displayName":921,"givenName":20,"familyName":20},"7e7fd960-43f4-4f5b-9f90-f85bf130ca35",[119],[911],{"id":912,"sortIndex":21,"affiliation":913,"properties":20},"27c1d52b-dc27-428d-b677-f1d602947b55",{"id":912,"createTime":20,"updateTime":20,"relativeEntities":914,"slug":20,"properties":915,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":918,"statistic":20},[],{"title":916},{"VI":917},"Inspection and Testing Center for Quality of Cereals and their Products-Ministry of Agriculture and Rural Affairs, Quality and Safety Institute of Agricultural Products, Heilongjiang Academy of Agricultural Sciences, Harbin, People’s Republic of China",[],{"title":920},{"VI":921},"Guoyou Chen",{"id":923,"sortIndex":82,"researcher":20,"roles":924,"affiliations":925,"properties":934,"displayName":936,"givenName":20,"familyName":20},"65b6b75d-9908-40db-82a5-9761192a6a36",[119],[926],{"id":927,"sortIndex":21,"affiliation":928,"properties":20},"4775542d-c6b8-4c3d-8462-2dab131bd236",{"id":927,"createTime":20,"updateTime":20,"relativeEntities":929,"slug":20,"properties":930,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":933,"statistic":20},[],{"title":931},{"VI":932},"Xinghua Products Quality Inspection and Testing Center, Taizhou, People’s Republic of China",[],{"title":935},{"VI":936},"Yong 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Qingmanet al. 1998. Applying of Penzhangjing to upland rice. Liaoning Agricultural Science, (2): 50–52",{},{"id":20,"text":1179,"url":20,"identifiers":1180},"Wang Qingmanet al. Studies on the effect, of Penzhangjing on growing of fruit trees, Journal of Liaoning Forestry Science and Technology, (1): 52–53",{},{"id":1182,"createTime":1183,"updateTime":1184,"relativeEntities":1185,"slug":1186,"properties":1187,"entityType":108,"verifyStatus":109,"verifyTime":1198,"verifyNote":111,"languages":20,"translateLanguages":20,"viewCount":21,"primaryUrl":1199,"fullTextUrl":20,"authors":1200,"publicationType":160,"publisherRelationship":1329,"citationCount":21,"citationInfo":1376,"publishDate":1378,"publishYear":386,"citationAnalyzeStatus":19,"lastCitationAnalyze":1379,"indexDatabases":1380,"openAccess":20,"references":20,"isForceReanalyzing":212},"239c0537-f446-4cb2-8120-60d8ea5d9b94","2024-01-11T02:52:57.153+00:00","2026-07-23T15:40:21.766+00:00",[],"Growth-and-wood-properties-of-a-38-year-old-Populus-simonii-P-nigra-plantation-established-with-different-densities-in-semi-arid-areas-of-northeastern-China",{"abstract":1188,"title":1190,"gsPaper":1192,"references":1194,"doi":1196},{"EN":1189},"To characterize the effects of plantation densities on the growth characteristics (diameter at breast level, tree height and volume) and the common wood properties, 38-year-old Populus simonii × P. nigra clones planted with four levels of spacing (2 m × 2 m, 3 m × 3 m, 4 m × 4 m, and 5 m × 5 m) in a semi-arid area in northeastern China were examined. The results of ANOVA showed significant differences (P \u003C 0.01) for all the investigated growth traits and wood properties under different plantation densities, except for the chemical composition of wood. The repeatability and phenotypic variations of all the traits varied from 0.34 to 0.99 and from 13.45 to 59.65%, respectively. Except for wood density, which was significantly negatively correlated with the growth traits, a positive correlation was observed between the growth traits and all the other wood mechanical properties. However, most of the correlations between the growth traits and the chemical composition of the wood were not significant. The path analysis for the wood mechanical characteristics and the growth in the prediction of volume were significant and ranged from 0.18 to 0.72 for wood density and diameter at breast height, respectively, while those for the chemical composition of wood ranged from 0.001 to 0.336, which showed a low impact on the volume. The highest stand volume (610 m3) per hectare was observed with the 2 m × 2 m spacing, which consequently provided a high total price and income, while a high individual volume growth per tree was observed with the 5 m × 5 m spacing. The results suggested that for the poplar trees younger than 40 years in a semi-arid area in China, 2 m × 2 m spacing is suitable for obtaining a high volume per hectare, while 5 m × 5 m spacing is best for obtaining a high individual volume per tree.",{"EN":1191},"Growth and wood properties of a 38-year-old Populus simonii × P. nigra plantation established with different densities in semi-arid areas of northeastern China",{"VOID":1193},"[\"16347675204918422989\"]",{"VOID":1195},"Akers MK, Kane M, Zhao D, Teskey RO, Daniels RF (2013) Effects of planting density and cultural intensity on stand and crown attribute of mid-rotation loblolly pine plantations. 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J Veg Sci 14:99–110\nWang FJ, Huang F, Yang GH, Chen JC (2010) The effect of hemicellulose on the pulp and paper quality. Pap Sci Technol 29(1):27–32\nWang QB, Zhang YB, Zou W, Tao SY, Wei B (2011) Correlation and path analysis on new poplar variety growth traits. For Sci Technol 36(1):5–7\nWatt MS, Kimberley MO, Dash JP, Harrison D, Monge JJ, Dowling L (2017) The economic impact of optimising final stand density for structural saw log production on the value of the New Zealand plantation estate. For Ecol Manag 406:361–369\nWeber JC, Montes CS (2008) Geographic variation in tree growth and wood density of Guazuma crinite Mart. in the Peruvian Amazon. N For 36:29–52\nWei ZZ, Du QZ, Zhang JF, Li BL, Zhang DQ (2012) Genetic diversity and population structure in Chinese indigenous poplar (Populus simonii) populations using microsatellite markers. Plant Mol Biol Rep 31:620–632\nWill R, Hennessey T, Lynch T, Holeman R, Heinemann R (2010) Effects of planting density and seed source on loblolly pine stands in southeastern Oklahoma. For Sci 56:437–443\nYasin AB, Singh S (2010) Correlation and path coefficient analyses in sunflower. J Plant Breed Crop Sci 2(5):129–133\nYin SP, Xiao ZH, Zhao GH, Zhao X, Sun XY, Zhang Y, Wang F, Li SC, Zhao XY, Qu GZ (2017) Variation analyses of growth and wood properties of Larix olgensis clones in China. J For Res 28:687–697\nYu DY, Mei F, Wang JH, Zhu JL, Wang JS (2014) Joint selection for growth and wood properties in poplar hybrid clones. J Northeast For Univ 42(10–13):16\nYu JJ, Jin X, Sun XM, Gao TX, Chen XM, She YM, Jiang TB, Chen SX, Dai SJ (2017) Hydrogen peroxide response in leaves of poplar (Populus simonii × Populus nigra) revealed from physiological and proteomic analyses. Int J Mol Sci 18(10):2085\nZanuncio AJV, Colodette JL, Gomes FJB, AdeCO Carneiro, Vital BR (2013) Chemical composition of eucalipt wood with different levels of thinning. Ciência Florestal 23:755–760\nZhang SY, Chauret G, Ren HQ (2002) Impact of initial spacing on plantation black spruce lumber grade yield, bending properties, and MSR yield. Wood Fiber Sci 34:460–475\nZhang SY, Simpson D, Morgenstern EK (2007) Variation in the relationship of wood density with growth in 40 black spruce (Picea mariana) families grown in New Brunswick. Wood Fiber Sci 28:91–99\nZhang PD, Wu F, Kang XY (2013) Genetic control of fiber properties and growth in triploid hybrid clones of Populus tomentosa. Scand J For Res 28:621–630\nZhang CX, Meng S, Li YM, Su L, Zhao Z (2016) Nitrogen uptake and allocation in Populus simonii in different seasons supplied with isotopically labeled ammonium or nitrate. 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computer image processing technology was used to accomplish the feature extraction of defect images on wood surface. By calculation of gray values of defects. three feature data which are useful to identify the defects have been achieved. The experiment indicates that this way is effective to the automation recognition of the defects on wood surface.",{"EN":1391},"Feature Extraction of defects on wood surface",{"VOID":1393},"[\"8853365934261207748\"]",{"VOID":1395},"Jing Renjie. 1988. The Computer Image Processing. Zhe Jiang University Publishing House (China)\nLi Jian, 1991. The New Article of Wood Science, Northeast Forestry University Publishing House (China)\nPratt W. K., 1978. Digital Image Processing, John Wiley and Sons. 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The analytical results showed that the study of landscape ecology had made a great advance during the past decade in China. By incomplete survey, Chinese researchers at home and abroad published 619 scientific articles and 13 monographs on landscape ecology in the 1990s, and most of them (more than 90%) were published in Chinese with English abstracts. The published articles on basic theory accounted for 39.6% (245 articles), and those concerning application and methods accounted for 36.8% (228) and 23.6% (146), respectively. According to the objects of research, the published articles on landscape ecology were classified into nine catalogues. The urban landscape ranks first in terms of number of published articles, accounting for 13.4% of the total, followed by regional and river basin landscape, cold and arid landscape, forest landscape, habitat and bio-diversity landscape, agricultural landscape, wetlands, suburban landscape, and vegetation landscape. Based on the analysis, some discussions were made on the existing problems and development trend of landscape ecology study in China.",{"EN":1535},"Literature analysis and research progress of the landscape ecology in China in the 1990s",{"VOID":1537},"[\"2268164552709104970\"]",{"VOID":1539},"Bu Rencang, Wang Xianli and Xiao Duning. 1999. Analysis on landscape elements and fragmentation of Yellow River delta [J]. Chinese Journal of Applied Ecology,10(3) 321–324 (in Chinese).\nChang Xueli and Wu Jianguo. 1998. Analysis on the characteristics of landscape pattern on Kerqin Sandy Land [J]. Acta Ecologica Sinica,18(3): 225–232 (in Chinese)\nChang Yu, Su Wengui and Gao Ruiping. 1997. Changes of land use pattern in eastern Shenyang [J]. Chinese Journal of Applied Ecology,8(4): 421–425 (in Chinese).\nChen Changdu. 1985. Brief review on Landscape Ecology written by Naveh and Lieberman [J]. Acta Phytoecologica et Geobotanica Sinica,9(3): 23–24 (in Chinese).\nChen Changdu. 1986. 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