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理解自由生活和宿主相关微生物组的概念交流。

Conceptual Exchanges for Understanding Free-Living and Host-Associated Microbiomes.

机构信息

Department of Ecology & Evolution and The Microbiome Center, University of Chicago, Chicago, Illinois, USA.

Department of Microbiology & Duchossois Family Institute, University of Chicago, Chicago, Illinois, USA.

出版信息

mSystems. 2022 Feb 22;7(1):e0137421. doi: 10.1128/msystems.01374-21. Epub 2022 Jan 11.

Abstract

Whether a microbe is free-living or associated with a host from across the tree of life, its existence depends on a limited number of elements and electron donors and acceptors. Yet divergent approaches have been used by investigators from different fields. The "environment first" research tradition emphasizes thermodynamics and biogeochemical principles, including the quantification of redox environments and elemental stoichiometry to identify transformations and thus an underlying microbe. The increasingly common "microbe first" research approach benefits from culturing and/or DNA sequencing methods to first identify a microbe and encoded metabolic functions. Here, the microbe itself serves as an indicator for environmental conditions and transformations. We illustrate the application of both approaches to the study of microbiomes and emphasize how both can reveal the selection of microbial metabolisms across diverse environments, anticipate alterations to microbiomes in host health, and understand the implications of a changing climate for microbial function.

摘要

无论微生物是自由生活的,还是与生命之树上的宿主相关联的,其存在都取决于有限数量的元素和电子供体和受体。然而,来自不同领域的研究人员采用了不同的方法。“环境优先”的研究传统强调热力学和生物地球化学原理,包括氧化还原环境和元素化学计量的量化,以识别转化,从而确定潜在的微生物。越来越常见的“微生物优先”研究方法受益于培养和/或 DNA 测序方法,首先识别微生物和编码的代谢功能。在这里,微生物本身就是环境条件和转化的指标。我们举例说明了这两种方法在微生物组研究中的应用,并强调了这两种方法如何能够揭示不同环境中微生物代谢的选择,预测宿主健康中微生物组的变化,并理解气候变化对微生物功能的影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5142/8751383/8a91e2fea50a/msystems.01374-21-f001.jpg

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