Ecological roles of dominant and rare prokaryotes in acid mine drainage revealed by metagenomics and metatranscriptomics

High-throughput sequencing is expanding our knowledge of microbial diversity in the environment. Still, understanding the metabolic potentials and ecological roles of rare and uncultured microbes in natural communities remains a major challenge. To this end, we applied a ‘divide and conquer’ strateg...

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Published inThe ISME Journal Vol. 9; no. 6; pp. 1280 - 1294
Main Authors Hua, Zheng-Shuang, Han, Yu-Jiao, Chen, Lin-Xing, Liu, Jun, Hu, Min, Li, Sheng-Jin, Kuang, Jia-Liang, Chain, Patrick SG, Huang, Li-Nan, Shu, Wen-Sheng
Format Journal Article
LanguageEnglish
Published London Nature Publishing Group UK 01.06.2015
Oxford University Press
Nature Publishing Group
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Summary:High-throughput sequencing is expanding our knowledge of microbial diversity in the environment. Still, understanding the metabolic potentials and ecological roles of rare and uncultured microbes in natural communities remains a major challenge. To this end, we applied a ‘divide and conquer’ strategy that partitioned a massive metagenomic data set (>100 Gbp) into subsets based on K-mer frequency in sequence assembly to a low-diversity acid mine drainage (AMD) microbial community and, by integrating with an additional metatranscriptomic assembly, successfully obtained 11 draft genomes most of which represent yet uncultured and/or rare taxa (relative abundance <1%). We report the first genome of a naturally occurring Ferrovum population (relative abundance >90%) and its metabolic potentials and gene expression profile, providing initial molecular insights into the ecological role of these lesser known, but potentially important, microorganisms in the AMD environment. Gene transcriptional analysis of the active taxa revealed major metabolic capabilities executed in situ , including carbon- and nitrogen-related metabolisms associated with syntrophic interactions, iron and sulfur oxidation, which are key in energy conservation and AMD generation, and the mechanisms of adaptation and response to the environmental stresses (heavy metals, low pH and oxidative stress). Remarkably, nitrogen fixation and sulfur oxidation were performed by the rare taxa, indicating their critical roles in the overall functioning and assembly of the AMD community. Our study demonstrates the potential of the ‘divide and conquer’ strategy in high-throughput sequencing data assembly for genome reconstruction and functional partitioning analysis of both dominant and rare species in natural microbial assemblages.
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USDOE
National Natural Science Foundation of China (NSFC)
4093212; U1201233; 31370154
These authors contributed equally to this work.
ISSN:1751-7362
1751-7370
1751-7370
DOI:10.1038/ismej.2014.212