Sorbonne Université, CNRS, IRD, INRA, P7, UPEC, Institute of Ecology and Environmental Sciences-Paris, 4 place Jussieu, 75005 Paris, France.
Department of Microbiology and Ecosystem Science, University of Vienna, Vienna 1090, Austria.
Philos Trans R Soc Lond B Biol Sci. 2020 May 11;375(1798):20190249. doi: 10.1098/rstb.2019.0249. Epub 2020 Mar 23.
Heterogeneity is a fundamental property of soil that is often overlooked in microbial ecology. Although it is generally accepted that the heterogeneity of soil underpins the emergence and maintenance of microbial diversity, the profound and far-reaching consequences that heterogeneity can have on many aspects of microbial ecology and activity have yet to be fully apprehended and have not been fully integrated into our understanding of microbial functioning. In this contribution we first discuss how the heterogeneity of the soil microbial environment, and the consequent uncertainty associated with acquiring resources, may have affected how microbial metabolism, motility and interactions evolved and, ultimately, the overall microbial activity that is represented in ecosystem models, such as heterotrophic decomposition or respiration. We then present an analysis of predicted metabolic pathways for soil bacteria, obtained from the MetaCyc pathway/genome database collection (https://metacyc.org/). The analysis suggests that while there is a relationship between phylogenic affiliation and the catabolic range of soil bacterial taxa, there does not appear to be a trade-off between the 16S rRNA gene copy number, taken as a proxy of potential growth rate, of bacterial strains and the range of substrates that can be used. Finally, we present a simple, spatially explicit model that can be used to understand how the interactions between decomposers and environmental heterogeneity affect the bacterial decomposition of organic matter, suggesting that environmental heterogeneity might have important consequences on the variability of this process. This article is part of the theme issue 'Conceptual challenges in microbial community ecology'.
土壤的异质性是一个基本特性,但在微生物生态学中经常被忽视。尽管人们普遍认为土壤的异质性是微生物多样性产生和维持的基础,但异质性对微生物生态学和活性的许多方面可能产生的深远影响尚未被充分认识,也没有被充分纳入我们对微生物功能的理解。在本文中,我们首先讨论了土壤微生物环境的异质性,以及随之而来的获取资源的不确定性,可能如何影响微生物代谢、运动和相互作用的进化,以及最终代表生态系统模型中的整体微生物活性,如异养分解或呼吸。然后,我们对从 MetaCyc 途径/基因组数据库集合(https://metacyc.org/)获得的土壤细菌的预测代谢途径进行了分析。分析表明,虽然在系统发育归属和土壤细菌类群的分解范围之间存在关系,但在细菌菌株的 16S rRNA 基因拷贝数(作为潜在生长率的替代物)与可利用的底物范围之间似乎没有权衡关系。最后,我们提出了一个简单的、空间显式的模型,可以用来理解分解者与环境异质性之间的相互作用如何影响有机物的细菌分解,表明环境异质性可能对这个过程的可变性有重要影响。本文是主题为“微生物群落生态学中的概念挑战”的特刊的一部分。