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Thousands of microbial genomes shed light on interconnected biogeochemical processes in an aquifer system

机译:数千个微生物基因组揭示了含水层系统中相互联系的生物地球化学过程

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摘要

The subterranean world hosts up to one-fifth of all biomass, including microbial communities that drive transformations central to Earth's biogeochemical cycles. However, little is known about how complex microbial communities in such environments are structured, and how inter-organism interactions shape ecosystem function. Here we apply terabase-scale cultivation-independent metagenomics to aquifer sediments and groundwater, and reconstruct 2,540 draft-quality, near-complete and complete strain-resolved genomes that represent the majority of known bacterial phyla as well as 47 newly discovered phylum-level lineages. Metabolic analyses spanning this vast phylogenetic diversity and representing up to 36% of organisms detected in the system are used to document the distribution of pathways in coexisting organisms. Consistent with prior findings indicating metabolic handoffs in simple consortia, we find that few organisms within the community can conduct multiple sequential redox transformations. As environmental conditions change, different assemblages of organisms are selected for, altering linkages among the major biogeochemical cycles.
机译:地下世界拥有多达所有生物量的五分之一,包括微生物群落,这些微生物群落驱动着地球生物地球化学循环中心的转变。然而,关于这种环境中复杂的微生物群落的结构以及生物间相互作用如何影响生态系统功能的知识鲜为人知。在这里,我们将不依赖于Terabase规模的栽培的宏基因组学应用于含水层沉积物和地下水,并重建代表大多数已知细菌菌群以及47个新发现的菌落谱系的2,540个草稿质量,接近完全和完整的菌株解析基因组。涵盖了广泛的系统发育多样性并代表系统中检测到的多达36%的生物的代谢物分析可用于记录共存生物中途径的分布。与先前的结果表明简单的财团中的新陈代谢转移一致,我们发现该社区中几乎没有有机体可以进行多个顺序的氧化还原转化。随着环境条件的变化,选择了不同的有机体组合,从而改变了主要生物地球化学循环之间的联系。

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