定制功能性微生物合成群落的策略。

IF 10.8 1区 环境科学与生态学 Q1 ECOLOGY
Jiayi Jing, Paolina Garbeva, Jos M Raaijmakers, Marnix H Medema
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引用次数: 0

摘要

自然生态系统中蕴藏着种类繁多的微生物,它们对植物的生长和健康非常重要。土壤微生物种类繁多,相互作用复杂,因此要准确定位微生物为植物提供生命支持功能(包括增强对(a)生物胁迫因素的耐受性)的主要参与者具有挑战性。设计简化的微生物合成群落有助于降低这种复杂性,从而揭示特定微生物群落功能的分子和化学基础及相互作用。虽然合成群落已被成功用于剖析微生物相互作用或重现微生物组相关表型,但这些群落的组装和重组往往基于一般丰度模式或分类学特征和共存性,而很少以功能特征为依据。在此,我们回顾了最近关于设计功能合成群落的研究,以揭示共同的原则,并讨论群落设计的多维方法。我们提出了一种基于高通量实验测定与微生物菌株及其功能能力的计算基因组分析相结合的定制功能合成群落设计策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Strategies for tailoring functional microbial synthetic communities.

Natural ecosystems harbor a huge reservoir of taxonomically diverse microbes that are important for plant growth and health. The vast diversity of soil microorganisms and their complex interactions make it challenging to pinpoint the main players important for the life support functions microbes can provide to plants, including enhanced tolerance to (a)biotic stress factors. Designing simplified microbial synthetic communities (SynComs) helps reduce this complexity to unravel the molecular and chemical basis and interplay of specific microbiome functions. While SynComs have been successfully employed to dissect microbial interactions or reproduce microbiome-associated phenotypes, the assembly and reconstitution of these communities have often been based on generic abundance patterns or taxonomic identities and co-occurrences but have only rarely been informed by functional traits. Here, we review recent studies on designing functional SynComs to reveal common principles and discuss multidimensional approaches for community design. We propose a strategy for tailoring the design of functional SynComs based on integration of high-throughput experimental assays with microbial strains and computational genomic analyses of their functional capabilities.

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来源期刊
ISME Journal
ISME Journal 环境科学-生态学
CiteScore
22.10
自引率
2.70%
发文量
171
审稿时长
2.6 months
期刊介绍: The ISME Journal covers the diverse and integrated areas of microbial ecology. We encourage contributions that represent major advances for the study of microbial ecosystems, communities, and interactions of microorganisms in the environment. Articles in The ISME Journal describe pioneering discoveries of wide appeal that enhance our understanding of functional and mechanistic relationships among microorganisms, their communities, and their habitats.
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