通过基因组代谢模型设计合成微生物群落以增强植物与微生物的相互作用。

IF 6.2 2区 环境科学与生态学 Q1 GENETICS & HEREDITY
Osiel S Gonçalves, Christopher J Creevey, Mateus F Santana
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引用次数: 0

摘要

背景:通过接种有益微生物调控根际微生物群落在提高作物产量和抗逆性方面已引起人们的兴趣。合成微生物群落,被称为SynComs,模仿天然微生物组成,同时减少成分的数量。然而,实现这一目标需要全面了解天然微生物群落,并仔细选择具有定殖特性的相容微生物,这仍然是一个挑战。在这项研究中,我们采用多基因组代谢建模方法,设计了一个合成微生物群落,以提高重要作物的产量。结果:我们采用有针对性的方法选择了一个包含微生物代谢必需化合物和植物相互作用相关化合物的最小群落(MinCom)。这导致最初的社区规模减少了大约4.5倍。值得注意的是,MinCom保留了与必需植物生长促进性状相关的关键基因,如铁获取、外多糖生产、钾增溶、固氮、GABA生产和iaa相关色氨酸代谢。此外,基于对微生物-微生物-植物相互作用的全面理解,我们对SymComs的计算机选择产生了一组6个中心物种,这些物种在分类上表现出显著的新颖性,包括Eremiobacterota和Verrucomicrobiota门的成员。结论:总体而言,该研究有助于对合成微生物群落及其对农业实践的潜力进行越来越多的研究。从我们的计算机方法和中心物种的选择中获得的见解为进一步研究定制微生物群落的发展铺平了道路,这些微生物群落可以优化作物生产力并提高农业系统的应激恢复能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Designing a synthetic microbial community through genome metabolic modeling to enhance plant-microbe interaction.

Background: Manipulating the rhizosphere microbial community through beneficial microorganism inoculation has gained interest in improving crop productivity and stress resistance. Synthetic microbial communities, known as SynComs, mimic natural microbial compositions while reducing the number of components. However, achieving this goal requires a comprehensive understanding of natural microbial communities and carefully selecting compatible microorganisms with colonization traits, which still pose challenges. In this study, we employed multi-genome metabolic modeling of 270 previously described metagenome-assembled genomes from Campos rupestres to design a synthetic microbial community to improve the yield of important crop plants.

Results: We used a targeted approach to select a minimal community (MinCom) encompassing essential compounds for microbial metabolism and compounds relevant to plant interactions. This resulted in a reduction of the initial community size by approximately 4.5-fold. Notably, the MinCom retained crucial genes associated with essential plant growth-promoting traits, such as iron acquisition, exopolysaccharide production, potassium solubilization, nitrogen fixation, GABA production, and IAA-related tryptophan metabolism. Furthermore, our in-silico selection for the SymComs, based on a comprehensive understanding of microbe-microbe-plant interactions, yielded a set of six hub species that displayed notable taxonomic novelty, including members of the Eremiobacterota and Verrucomicrobiota phyla.

Conclusion: Overall, the study contributes to the growing body of research on synthetic microbial communities and their potential to enhance agricultural practices. The insights gained from our in-silico approach and the selection of hub species pave the way for further investigations into the development of tailored microbial communities that can optimize crop productivity and improve stress resilience in agricultural systems.

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来源期刊
Environmental Microbiome
Environmental Microbiome Immunology and Microbiology-Microbiology
CiteScore
7.40
自引率
2.50%
发文量
55
审稿时长
13 weeks
期刊介绍: Microorganisms, omnipresent across Earth's diverse environments, play a crucial role in adapting to external changes, influencing Earth's systems and cycles, and contributing significantly to agricultural practices. Through applied microbiology, they offer solutions to various everyday needs. Environmental Microbiome recognizes the universal presence and significance of microorganisms, inviting submissions that explore the diverse facets of environmental and applied microbiological research.
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