澳洲土壤中缓生根瘤菌的高品系多样性。

Clifton P Bueno de Mesquita,Matthew R Olm,Andrew Bissett,Noah Fierer
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引用次数: 0

摘要

全球土壤细菌调查已经确定了几个分类群,这些分类群几乎无处不在,而且往往是土壤细菌群落中最丰富的成员。然而,目前尚不清楚为什么这些分类群在广泛的土壤类型和环境条件下如此丰富和普遍。在这里,我们使用基因组解析的宏基因组学来验证这些分类群中存在菌株水平差异的假设,这些差异没有被标准标记基因测序充分捕获,并且不同的菌株具有反映不同土壤环境适应的独特特征。我们分析了来自澳大利亚331个天然土壤的数据,以评估缓生根瘤菌的菌株分化,缓生根瘤菌是一种具有生态重要性的优势土壤细菌属。我们开发了一套复杂土壤宏基因组菌株水平细菌分析工作流程,将已有数据库中的基因组与宏基因组靶向组装产生的新基因组相结合,在土壤收集中检测181种慢生根瘤菌菌株。除了高度的系统发育变异外,我们还观察到泛基因组含量和推断性状的实质性差异,突出了这个广泛分布的属的多样性广度。虽然在80%的样品中检测到缓生根瘤菌属的成员,但大多数菌株的分布受到限制。缓生根瘤菌群落组成在地理空间和环境梯度上存在显著差异,并与温度、土壤pH、土壤硝酸盐和金属浓度的差异密切相关。我们的工作为研究土壤细菌的菌株水平生态学提供了一个总体框架,并突出了这一优势土壤细菌属的生态和全基因组多样性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
High strain-level diversity of Bradyrhizobium across Australian soils.
Global surveys of soil bacteria have identified several taxa that are nearly ubiquitous and often the most abundant members of soil bacterial communities. However, it remains unclear why these taxa are so abundant and prevalent across a wide range of soil types and environmental conditions. Here we use genome-resolved metagenomics to test the hypothesis that strain-level differences exist in these taxa that are not adequately captured with standard marker gene sequencing, and that distinct strains harbor unique traits that reflect adaptations to different soil environments. We analyzed data from 331 natural soils spanning Australia to assess strain differentiation in Bradyrhizobium, a dominant soil bacterial genus of ecological importance. We developed a workflow for strain-level bacterial analyses of complex soil metagenomes, combining genomes from pre-existing databases with new genomes generated via targeted assembly from metagenomes to detect 181 Bradyrhizobium strains across the soil collection. In addition to a high degree of phylogenetic variation, we observed substantial variation in pangenome content and inferred traits, highlighting the breadth of diversity within this widespread genus. Although members of the genus Bradyrhizobium were detected in >80% of samples, most individual strains were restricted in their distributions. The overall strain-level community composition of Bradyrhizobium varied significantly across geographic space and environmental gradients, and was particularly associated with differences in temperature, soil pH, and soil nitrate and metal concentrations. Our work provides a general framework for studying the strain-level ecology of soil bacteria and highlights the ecological and pangenomic diversity within this dominant soil bacterial genus.
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