4.8 Article

Contemporary environmental variation determines microbial diversity patterns in acid mine drainage

期刊

ISME JOURNAL
卷 7, 期 5, 页码 1038-1050

出版社

SPRINGERNATURE
DOI: 10.1038/ismej.2012.139

关键词

acid mine drainage; biogeography; contemporary environmental variation; geographical distance; microbial diversity; pyrosequencing

资金

  1. National Natural Science Foundation of China [40930212, 30970548]
  2. Major Science and Technology Project of Ministry of Agriculture of the People's Republic of China [2009ZX08009-002B]
  3. Guangdong Province Key Laboratory of Computational Science
  4. Guangdong Province Computational Science Innovative Research Team

向作者/读者索取更多资源

A wide array of microorganisms survive and thrive in extreme environments. However, we know little about the patterns of, and controls over, their large-scale ecological distribution. To this end, we have applied a bar-coded 16S rRNA pyrosequencing technology to explore the phylogenetic differentiation among 59 microbial communities from physically and geochemically diverse acid mine drainage (AMD) sites across Southeast China, revealing for the first time environmental variation as the major factor explaining community differences in these harsh environments. Our data showed that overall microbial diversity estimates, including phylogenetic diversity, phylotype richness and pairwise UniFrac distance, were largely correlated with pH conditions. Furthermore, multivariate regression tree analysis also identified solution pH as a strong predictor of relative lineage abundance. Betaproteobacteria, mostly affiliated with the 'Ferrovum' genus, were explicitly predominant in assemblages under moderate pH conditions, whereas Alphaproteobacteria, Euryarchaeota, Gammaproteobacteria and Nitrospira exhibited a strong adaptation to more acidic environments. Strikingly, such pH-dependent patterns could also be observed in a subsequent comprehensive analysis of the environmental distribution of acidophilic microorganisms based on 16S rRNA gene sequences previously retrieved from globally distributed AMD and associated environments, regardless of the long-distance isolation and the distinct substrate types. Collectively, our results suggest that microbial diversity patterns are better predicted by contemporary environmental variation rather than geographical distance in extreme AMD systems. The ISME Journal (2013) 7, 1038-1050; doi:10.1038/ismej.2012.139; published online 22 November 2012

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