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Structure and function of the global topsoil microbiome

机译:全球表土微生物组的结构和功能

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摘要

Soils harbour some of the most diverse microbiomes on Earth and are essential for both nutrient cycling and carbon storage. To understand soil functioning, it is necessary to model the global distribution patterns and functional gene repertoires of soil microorganisms, as well as the biotic and environmental associations between the diversity and structure of both bacterial and fungal soil communities(1-4). Here we show, by leveraging metagenomics and metabarcoding of global topsoil samples (189 sites, 7,560 subsamples), that bacterial, but not fungal, genetic diversity is highest in temperate habitats and that microbial gene composition varies more strongly with environmental variables than with geographic distance. We demonstrate that fungi and bacteria show global niche differentiation that is associated with contrasting diversity responses to precipitation and soil pH. Furthermore, we provide evidence for strong bacterial-fungal antagonism, inferred from antibiotic-resistance genes, in topsoil and ocean habitats, indicating the substantial role of biotic interactions in shaping microbial communities. Our results suggest that both competition and environmental filtering affect the abundance, composition and encoded gene functions of bacterial and fungal communities, indicating that the relative contributions of these microorganisms to global nutrient cycling varies spatially.
机译:土壤中蕴藏着地球上最多样化的微生物群,对于养分循环和碳储存都是必不可少的。要了解土壤功能,有必要对土壤微生物的全球分布模式和功能基因库以及细菌和真菌土壤群落的多样性与结构之间的生物和环境关联进行建模(1-4)。在这里,我们显示出通过利用宏基因组学和全球表土样品(189个位点,7,560个子样品)的元条形码,在温带栖息地中细菌而不是真菌的遗传多样性最高,而且环境基因的微生物基因组成变化远大于地理距离。我们证明了真菌和细菌显示全球生态位分化,这与对降水和土壤pH的差异响应形成鲜明对比。此外,我们为表土和海洋生境中从抗生素抗性基因推断出的强烈细菌-真菌拮抗作用提供了证据,表明了生物相互作用在塑造微生物群落中的重要作用。我们的结果表明,竞争和环境过滤都会影响细菌和真菌群落的丰度,组成和编码的基因功能,表明这些微生物对全球营养循环的相对贡献在空间上有所不同。

著录项

  • 来源
    《Nature》 |2018年第7717期|233-237|共5页
  • 作者单位

    Univ Tartu, Inst Ecol & Earth Sci, Dept Bot, Tartu, Estonia;

    European Mol Biol Lab, Struct & Computat Biol Unit, Heidelberg, Germany;

    European Mol Biol Lab, Struct & Computat Biol Unit, Heidelberg, Germany;

    Uppsala Univ, Dept Organismal Biol, Evolutionary Biol Ctr, Uppsala, Sweden;

    Leiden Univ, CML, Inst Environm Sci, Environm Biol Dept, Leiden, Netherlands;

    Leiden Univ, CML, Inst Environm Sci, Environm Biol Dept, Leiden, Netherlands;

    Univ Goteborg, Sahlgrenska Acad, Inst Biomed, Dept Infect Dis, Gothenburg, Sweden;

    Univ Tartu, Inst Ecol & Earth Sci, Dept Bot, Tartu, Estonia;

    European Mol Biol Lab, Struct & Computat Biol Unit, Heidelberg, Germany;

    Univ Tartu, Inst Ecol & Earth Sci, Dept Bot, Tartu, Estonia;

    European Mol Biol Lab, Struct & Computat Biol Unit, Heidelberg, Germany;

    Wageningen Univ, Bioinformat Grp, Wageningen, Netherlands;

    Univ Calif Riverside, Ctr Conservat Biol, Riverside, CA 92521 USA;

    Univ Oslo, Dept Biosci, Sect Genet & Evolutionary Biol Evogene, Oslo, Norway;

    Lund Univ, Biodivers Unit, Dept Biol, Ecol Bldg, Lund, Sweden;

    Univ Tartu, Inst Ecol & Earth Sci, Dept Bot, Tartu, Estonia;

    Univ Tartu, Inst Ecol & Earth Sci, Dept Bot, Tartu, Estonia;

    European Mol Biol Lab, Struct & Computat Biol Unit, Heidelberg, Germany;

    Uppsala Univ, Dept Organismal Biol, Evolutionary Biol Ctr, Uppsala, Sweden;

    Univ Tartu, Nat Hist Museum, Tartu, Estonia;

    European Mol Biol Lab, Struct & Computat Biol Unit, Heidelberg, Germany;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
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  • 入库时间 2022-08-18 02:51:35

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