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Functional metagenomic profiling of nine biomes

机译:九个生物群落的功能宏基因组学分析

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Microbial activities shape the biogeochemistry of the planet and macroorganism health. Determining the metabolic processes performed by microbes is important both for understanding and for manipulating ecosystems (for example, disruption of key processes that lead to disease, conservation of environmental services, and so on). Describing microbial function is hampered by the inability to culture most microbes and by high levels of genomic plasticity. Metagenomic approaches analyse microbial communities to determine the metabolic processes that are important for growth and survival in any given environment. Here we conduct a metagenomic comparison of almost 15 million sequences from 45 distinct microbiomes and, for the first time, 42 distinct viromes and show that there are strongly discriminatory metabolic profiles across environments. Most of the functional diversity was maintained in all of the communities, but the relative occurrence of metabolisms varied, and the differences between metagenomes predicted the biogeochemical conditions of each environment. The magnitude of the microbial metabolic capabilities encoded by the viromes was extensive, suggesting that they serve as a repository for storing and sharing genes among their microbial hosts and influence global evolutionary and metabolic processes.
机译:微生物活动影响着行星的生物地球化学和大微生物的健康。确定微生物执行的代谢过程对于理解和操纵生态系统都非常重要(例如,破坏导致疾病的关键过程,保护环境服务等)。无法培养大多数微生物和高水平的基因组可塑性阻碍了微生物功能的描述。元基因组学方法分析微生物群落,以确定对于任何给定环境中的生长和存活都至关重要的代谢过程。在这里,我们对来自45个不同微生物组的近1500万个序列进行了宏基因组学比较,并首次对42个不同病毒体进行了比较,结果表明在整个环境中都存在强烈的歧视性代谢特征。所有社区都保留了大多数功能多样性,但是新陈代谢的相对发生率却有所不同,并且元基因组之间的差异预示了每种环境的生物地球化学条件。病毒编码的微生物代谢能力的范围很广,表明它们可作为在微生物宿主之间存储和共享基因的储存库,并影响全球进化和代谢过程。

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