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請用此 Handle URI 來引用此文件: http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/84110
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dc.contributor.advisor曾惠芸(Hui-Yun Tseng)
dc.contributor.authorChing-Ya Changen
dc.contributor.author張景雅zh_TW
dc.date.accessioned2023-03-19T22:04:53Z-
dc.date.copyright2022-07-22
dc.date.issued2022
dc.date.submitted2022-07-18
dc.identifier.citationAllee, W. C. (1926). Studies in animal aggregations: causes and effects of bunching in land isopods. Journal of Experimental Zoology, 45(1), 255-277. Alroy, J. (2017). Effects of habitat disturbance on tropical forest biodiversity. Proceedings of the National Academy of Sciences, 114(23), 6056-6061. Bates, D., Maechler, M., Bolker, B., & Walker, S. (2015). Fitting linear mixed-effects models using lme4. J. Stat. Softw., 67(1), 1-48. doi: 10.18637/jss.v067.i01 Bruelheide, H., & Scheidel, U. (1999). Slug herbivory as a limiting factor for the geographical range of Arnica montana. Journal of Ecology, 87(5), 839-848. Chan, S. F., Shih, W. K., Chang, A. Y., Shen, S. F., & Chen, I. C. (2019). Contrasting forms of competition set elevational range limits of species. Ecology Letters, 22(10), 1668-1679. De Frenne, P., Zellweger, F., Rodríguez-Sánchez, F., Scheffers, B. R., Hylander, K., Luoto, M., . . . Lenoir, J. (2019). Global buffering of temperatures under forest canopies. Nat. Ecol. Evol., 3(5), 744-749. doi: 10.1038/s41559-019-0842-1 Díaz, S., Fargione, J., Chapin, F. S., III, & Tilman, D. (2006). Biodiversity Loss Threatens Human Well-Being. PLOS Biology, 4(8), e277. doi: 10.1371/journal.pbio.0040277 Hansen, M. C., Potapov, P. V., Moore, R., Hancher, M., Turubanova, S. A., Tyukavina, A., . . . Loveland, T. R. (2013). High-resolution global maps of 21st-century forest cover change. Science, 342(6160), 850-853. Hwang, W., & Shiao, S. F. (2011). Dormancy and the influence of photoperiod and temperature on sexual maturity in Nicrophorus nepalensis (Coleoptera: Silphidae). Insect Science, 18(2), 225-233. Krishnadas, M., Bagchi, R., Sridhara, S., & Comita, L. S. (2018). Weaker plant-enemy interactions decrease tree seedling diversity with edge-effects in a fragmented tropical forest. Nature Communications, 9(1), 1-7. Larsen, T. H. (2012). Upslope range shifts of Andean dung beetles in response to deforestation: compounding and confounding effects of microclimatic change. Biotropica, 44(1), 82-89. doi: 10.1111/j.1744-7429.2011.00768.x Lembrechts, J. J., & Nijs, I. (2020). Microclimate shifts in a dynamic world. Science, 368(6492), 711. doi: 10.1126/science.abc1245 Manchego, C. E., Hildebrandt, P., Cueva, J., Espinosa, C. I., Stimm, B., & Günter, S. (2017). Climate change versus deforestation: Implications for tree species distribution in the dry forests of southern Ecuador. PLoS One, 12(12), e0190092. Pecl Gretta, T., Araújo Miguel, B., Bell Johann, D., Blanchard, J., Bonebrake Timothy, C., Chen, I. C., . . . Williams Stephen, E. (2017). Biodiversity redistribution under climate change: Impacts on ecosystems and human well-being. Science, 355(6332), eaai9214. doi: 10.1126/science.aai9214 R Core Team. (2021). R: A language and environment for statistical computing: R Foundation for Statistical Computing. Vienna, Austria. https://www.R-project.org/. Robinson, E. J. (2014). Polydomy: the organisation and adaptive function of complex nest systems in ants. Current Opinion in Insect Science, 5, 37-43. Schwitzer, C., Glatt, L., Nekaris, K. A. I., & Ganzhorn, J. U. (2011). Responses of animals to habitat alteration: an overview focussing on primates. Endangered Species Research, 14(1), 31-38. Scott, M. P. (1998). The ecology and behavior of burying beetles. Annual Review of Entomology, 43(1), 595-618. Sexton, J. P., McIntyre, P. J., Angert, A. L., & Rice, K. J. (2009). Evolution and ecology of species range limits. Annu. Rev. Ecol. Evol. Syst., 40, 415-436. Shen, S.-F., Vehrencamp, S. L., Johnstone, R. A., Chen, H.-C., Chan, S.-F., Liao, W.-Y., . . . Yuan, H.-W. (2012). Unfavourable environment limits social conflict in Yuhina brunneiceps. Nature Communications, 3(1), 1-7. Sikes, D. S., Madge, R. B., & Trumbo, S. T. (2006). Revision of Nicrophorus in part: new species and inferred phylogeny of the nepalensis-group based on evidence from morphology and mitochondrial DNA (Coleoptera:Silphidae:Nicrophorinae). Invertebrate Systematics, 20, 305-365. Sánchez-Bayoa, F., & Wyckhuys, K. A. G. (2019). Worldwide decline of the entomofauna: A review of its drivers. Biological Conservation, 232, 8-27. Sun, S.-J., Rubenstein, D. R., Chen, B.-F., Chan, S.-F., Liu, J.-N., Liu, M., . . . Shen, S.-F. (2014). Climate-mediated cooperation promotes niche expansion in burying beetles. Elife, 3, e02440. Tanaka, H., Yamane, S., Nakashizuka, T., Momose, K., & Itioka, T. (2008). Effects of deforestation on mutualistic interactions of ants with plants and hemipterans in tropical rainforest of Borneo. Asian Myrmecology, 1, 31-50. Wethey, D. S. (2002). Biogeography, competition, and microclimate: the barnacle Chthamalus fragilis in New England. Integrative and Comparative Biology, 42(4), 872-880. 汪琮瑋(2016)。棲地改變與艾里效應對尼泊爾埋葬蟲海拔分布範圍之影響。國立臺灣大學生態學與演化生物學研究所,臺北市。 計雲(2012)。 中華葬甲。北京:中國林業出版社。 張崇凡(2020)。社會行為如何影響兩相鄰同屬物種的競爭與分布。國立臺灣大學生態學與演化生物學研究所,臺北市。 黃文伯,葛兆年(2011)。哈盆自然保留區屍食性甲蟲物種生物多樣性監測與氣候變遷之關係。環境與生態學報, 4(1),頁 17-34。
dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/84110-
dc.description.abstract森林破碎化是導致生物多樣性喪失的重要因素,森林破碎化除了直接改變棲地的物理條件,導致生物賴以為生的棲地喪失,也有可能改變物種的族群結構,並影響個體間的互動,抑或是種間關係,導致物種族群下降。然而森林破碎化如何透過這些機制影響物種的分布,是近年來愈來愈受重視的問題。我們透過研究森林破碎化如何影響中國四川夾金山區的尼泊爾埋葬蟲與衿覆葬甲的海拔分布界線,來探討這個重要的問題。我們沿著海拔及森林覆蓋度兩個環境梯度進行的族群密度調查與繁殖實驗,結果發現在兩種埋葬蟲海拔分布的交界帶上,隨著森林覆蓋度的降低,尼泊爾埋葬蟲的族群密度並不受影響,但衿覆葬甲的族群密度卻減少;尼泊爾埋葬蟲的繁殖成功率上升,但衿覆葬甲卻下降。在交界帶兩種埋葬蟲的族群密度透過影響在屍體上的相對群體大小而影響繁殖成功率,屍體上群體數量相對較大的物種,則其繁殖成功率愈高。我們的研究結果顯示,森林破碎化透過這個密度依存的機制,導致衿覆葬甲無法與尼泊爾埋葬蟲競爭,因此導致海拔分布界線上移。因此,在預測人為環境變動造成的物種分布改變時,不但需要考慮種間關係,也需要考慮族群密度變化所導致的種間競爭結果的改變。zh_TW
dc.description.abstractForest fragmentation is an important driver of current biodiversity loss. Forest fragmentation not only alters the physical conditions experienced by organisms, but also changes the population structure of species, as well as intra- and interspecific interactions, and ventually leads to population declines. However, how forest fragmentation affects species distribution through above mechanisms is an issue that has received increasing attention in recent years. Here, we address this question by examining how forest fragmentation affects the elevational range boundary between two burying beetle species, Nicrophorus nepalensis and N. schawalleri, in Mt. Jiajin, Sichuan, China. We conducted population density surveys and field breeding experiments along two environmental gradients: elevation and forest cover. We found, in the contact zone of the two species, decreases in forest cover reduced the population density of N. schawalleri, but not that of N. nepalensis. Decreases in forest cover also reduced breeding success of N. schawalleri, but increased that of N. nepalensis. Population densities of the two species in the contact zone jointly influenced their reproductive success by affecting their relative group sizes on the carcasses, with the species with larger group size on the carcasses having higher reproductive success. Forest fragmentation weakened the competitive ability of N. schawalleri against N. nepalensis through such a density-regulated mechanism, and in turn caused an upward shift in elevational range boundary between the two species. Therefore, we suggest the importance in considering density-regulated competitive advantages that alter the outcomes of interspecific competition when predicting changes in species distribution due to anthropogenic environmental changes.en
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Previous issue date: 2022
en
dc.description.tableofcontents致謝 ii 中文摘要 iii Abstract iv 目錄 vi 圖目錄 viii 表目錄 ix 前言 1 材料與方法 4 研究物種 4 研究地點 5 研究方法 5 族群密度調查 5 自然情況的繁殖表現 6 森林覆蓋度 7 環境溫度監測 7 資料處理與統計分析 7 研究結果 9 討論 14 參考文獻 16
dc.language.isozh-TW
dc.subject競爭zh_TW
dc.subject海拔zh_TW
dc.subject衿覆葬甲zh_TW
dc.subject森林破碎化zh_TW
dc.subject種間關係zh_TW
dc.subject尼泊爾埋葬蟲zh_TW
dc.subject分布界線zh_TW
dc.subjectDeforestationen
dc.subjectDistribution limiten
dc.subjectElevationen
dc.subjectNicrophorus schawallerien
dc.subjectNicrophorus nepalensisen
dc.subjectBurying beetlesen
dc.subjectInterspecific relationshipsen
dc.title森林破碎化如何影響尼泊爾埋葬蟲(Nicrophorus nepalensis)與衿覆葬甲(N. schawalleri)的海拔分布界線zh_TW
dc.titleHow deforestation affect the elevational distribution limit of two species of burying beetles, Nicrophorus nepalensis and N. schawallerien
dc.typeThesis
dc.date.schoolyear110-2
dc.description.degree碩士
dc.contributor.coadvisor沈聖峰(Sheng-Feng Shen)
dc.contributor.oralexamcommittee王慧瑜(Hui-Yu Wang),洪志銘(Chih-Ming Hung),林思民(Si-Min Lin)
dc.subject.keyword森林破碎化,種間關係,尼泊爾埋葬蟲,衿覆葬甲,競爭,海拔,分布界線,zh_TW
dc.subject.keywordDeforestation,Interspecific relationships,Burying beetles,Nicrophorus nepalensis,Nicrophorus schawalleri,Elevation,Distribution limit,en
dc.relation.page34
dc.identifier.doi10.6342/NTU202201449
dc.rights.note同意授權(限校園內公開)
dc.date.accepted2022-07-18
dc.contributor.author-college生物資源暨農學院zh_TW
dc.contributor.author-dept昆蟲學研究所zh_TW
dc.date.embargo-lift2022-07-22-
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