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Productivity and salinity structuring of the microplankton revealed by comparative freshwater metagenomics

机译:比较淡水宏基因组学揭示了微浮游生物的生产力和盐分结构

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摘要

Little is known about the diversity and structuring of freshwater microbial communities beyond the patterns revealed by tracing their distribution in the landscape with common taxonomic markers such as the ribosomal RNA. To address this gap in knowledge, metagenomes from temperate lakes were compared to selected marine metagenomes. Taxonomic analyses of rRNA genes in these freshwater metagenomes confirm the previously reported dominance of a limited subset of uncultured lineages of freshwater bacteria, whereas Archaea were rare. Diversification into marine and freshwater microbial lineages was also reflected in phylogenies of functional genes, and there were also significant differences in functional beta-diversity. The pathways and functions that accounted for these differences are involved in osmoregulation, active transport, carbohydrate and amino acid metabolism. Moreover, predicted genes orthologous to active transporters and recalcitrant organic matter degradation were more common in microbial genomes from oligotrophic versus eutrophic lakes. This comparative metagenomic analysis allowed us to formulate a general hypothesis that oceanic- compared with freshwater-dwelling microorganisms, invest more in metabolism of amino acids and that strategies of carbohydrate metabolism differ significantly between marine and freshwater microbial communities.
机译:除了通过常见分类标记(如核糖体RNA)在景观中追踪其分布所揭示的模式以外,鲜为人知的淡水微生物群落的多样性和结构。为了解决这一知识差距,将来自温带湖泊的元基因组与选定的海洋元基因组进行了比较。这些淡水元基因组中rRNA基因的分类学分析证实了先前报道的淡水细菌未培养谱系的有限子集的优势,而古细菌很少。功能基因的系统发育也反映出向海洋和淡水微生物谱系的多样化,并且功能β多样性也存在显着差异。造成这些差异的途径和功能涉及渗透调节,主动转运,碳水化合物和氨基酸代谢。此外,与富营养化湖泊和富营养化湖泊相比,微生物活跃的基因组中,与主动转运蛋白直系同源的预测基因和难降解的有机物降解更为普遍。这种比较的宏基因组学分析使我们能够提出一个普遍的假设,即与淡水栖居的微生物相比,海洋微生物在氨基酸的代谢上投入更多,而海洋和淡水微生物群落之间的碳水化合物代谢策略也有很大差异。

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