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代谢可塑性塑造了温度梯度上的微生物群落。

Metabolic Plasticity Shapes Microbial Communities across a Temperature Gradient.

出版信息

Am Nat. 2024 Oct;204(4):381-399. doi: 10.1086/731997. Epub 2024 Sep 6.

Abstract

AbstractA central challenge in community ecology is understanding and predicting the effects of abiotic factors on community assembly. In particular, microbial communities play a central role in the ecosystem, but we do not understand how changing factors like temperature are going to affect community composition or function. In this article, we studied the self-assembly of multiple communities in synthetic environments to understand changes in microbial community composition based on metabolic responses of different functional groups along a temperature gradient. In many microbial communities, different microbial functional groups coexist through the partitioning of carbon sources in an emergent trophic structure (cross-feeding). In this system, respirofermentative bacteria display a preference for the sugars supplied as the only carbon source but secrete secondary carbon sources (organic acids) that are more efficiently consumed by obligate respirators. As a consequence of this trophic structure, the metabolic plasticity of the respirofermenters has downstream consequences for the relative abundance of respirators across temperatures. We found that the effects of different temperatures on microbial composition can largely be described by an increase in fermentation by-products with increasing temperatures from the respirofermentative bacteria. This research highlights the importance of metabolic plasticity and metabolic trade-offs in predicting species interactions and community dynamics across abiotic gradients.

摘要

摘要

群落生态学的一个核心挑战是理解和预测非生物因素对群落组装的影响。特别是,微生物群落在生态系统中发挥着核心作用,但我们并不清楚像温度这样的变化因素将如何影响群落组成或功能。在本文中,我们通过在合成环境中研究多个群落的自组装,来了解微生物群落组成随温度梯度下不同功能群代谢响应的变化。在许多微生物群落中,不同的微生物功能群通过在一个新兴的营养结构中对碳源进行分区(交叉喂养)而共存。在这个系统中,好氧发酵菌优先选择作为唯一碳源供应的糖,但会分泌出被需氧呼吸者更有效地消耗的次级碳源(有机酸)。由于这种营养结构,好氧发酵菌的代谢可塑性对不同温度下呼吸者的相对丰度具有下游影响。我们发现,不同温度对微生物组成的影响可以用好氧发酵菌随温度升高而增加的发酵副产物来很好地描述。这项研究强调了代谢可塑性和代谢权衡在预测生物群落在非生物梯度上的相互作用和群落动态方面的重要性。

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