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Metabolic diversity among main microorganisms inside an arsenic-rich ecosystem revealed by meta- and proteo-genomics

机译:代谢和蛋白质基因组学揭示了富含砷的生态系统内主要微生物之间的代谢多样性

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摘要

By their metabolic activities, microorganisms have a crucial role in the biogeochemical cycles of elements. The complete understanding of these processes requires, however, the deciphering of both the structure and the function, including synecologic interactions, of microbial communities. Using a metagenomic approach, we demonstrated here that an acid mine drainage highly contaminated with arsenic is dominated by seven bacterial strains whose genomes were reconstructed. Five of them represent yet uncultivated bacteria and include two strains belonging to a novel bacterial phylum present in some similar ecosystems, and which was named ‘Candidatus Fodinabacter communificans.' Metaproteomic data unravelled several microbial capabilities expressed in situ, such as iron, sulfur and arsenic oxidation that are key mechanisms in biomineralization, or organic nutrient, amino acid and vitamin metabolism involved in synthrophic associations. A statistical analysis of genomic and proteomic data and reverse transcriptase–PCR experiments allowed us to build an integrated model of the metabolic interactions that may be of prime importance in the natural attenuation of such anthropized ecosystems.
机译:通过其代谢活动,微生物在元素的生物地球化学循环中具有至关重要的作用。但是,对这些过程的完全理解需要对微生物群落的结构和功能(包括协同作用)进行解密。使用宏基因组学方法,我们在这里证明了被砷高度污染的酸性矿山排水系统由七种细菌菌株控制,这些细菌的基因组已被重建。其中有五个代表尚未耕种的细菌,包括两个菌株,它们属于一些相似的生态系统中存在的新型细菌门,并被称为“ Candidatus Fodinabacter communificans”。元蛋白质组学数据揭示了原位表达的几种微生物能力,例如铁,硫和砷的氧化,这是生物矿化的关键机制,或者是涉及同食性关联的有机营养,氨基酸和维生素代谢。对基因组和蛋白质组学数据的统计分析以及逆转录酶-PCR实验使我们能够建立新陈代谢相互作用的综合模型,这对于此类人工生态系统的自然衰减可能至关重要。

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