Correlates of ecological-niche diversity and extinction risk of amphibians in China under climate change
Youhua Chen A C and Tania Escalante BA Chengdu Institute of Biology, Chinese Academy of Sciences, Chengdu, 610000, P.R. China.
B Grupo de Biogeografía de la Conservación, Departamento de Biología Evolutiva, Facultad de Ciencias, Universidad Nacional Autónoma de México, Circuito Exterior s/n, Ciudad Universitaria, Coyoacán, CP 04510, México.
C Corresponding author. Email: haydi@126.com
Australian Systematic Botany 30(6) 414-421 https://doi.org/10.1071/SB17001
Submitted: 2 January 2017 Accepted: 15 November 2017 Published: 31 January 2018
Abstract
In the present study, we measured spatiotemporal properties of ecological niches of amphibians in China and tested the relative importance of various niche-diversity metrics for explaining the evolutionary distinctiveness-weighted extinction risk (EDGE) of amphibian species. We applied the hierarchical partitioning technique on the phylogenetically independent contrasts of the niche covariates and EDGE of amphibians, for the purpose of removing the influence of evolutionary inertia among species. As a comparison, phylogenetic least-square general regression (PLGS) was also conducted. The results showed that EDGE was high for those amphibian species of China identified as Critically Endangered or Endangered on the IUCN Red List. Niche fragmentation dimension (NFD) and niche position (NP) were the top two predictors across partial correlation analyses, hierarchical variation partitioning, PLGS and multiple regression analyses. Most temporal niche properties were not significantly associated with the EDGE index of amphibians. Variation partitioning analysis showed that the spatial component of niche measures explained the largest proportion of total variation in EDGE (~31%), whereas the temporal component of niche properties explained ~8% of the variation. The significantly negative role of NFD and extinction risk of amphibians in China may be attributed to a reduced rescue effect, habitat geometry, and local extinction in species with large and continuous distributional ranges.
Additional keywords: amphibian extinction, conservation biogeography, niche conservatism, phylogenetic relatedness.
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