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功能土壤真菌组 across ecosystems。

Functional soil mycobiome across ecosystems.

机构信息

Laboratory of Environmental Microbiology, Institute of Microbiology of the Czech Academy of Sciences, Vídeňská 1083, 14220 Praha 4, Czech Republic.

CEBAS-CSIC, Campus Universitario de Espinardo, Murcia E-30100, Spain.

出版信息

J Proteomics. 2022 Feb 10;252:104428. doi: 10.1016/j.jprot.2021.104428. Epub 2021 Nov 21.

Abstract

Fungi support a wide range of ecosystem processes such as decomposition of organic matter and plant-soil relationships. Yet, our understanding of the factors driving the metaproteome of fungal communities is still scarce. Here, we conducted a field survey including data on fungal biomass (by phospholipid fatty acids, PLFA), community composition (by metabarcoding of the 18S rRNA gene from extracted DNA) and functional profile (by metaproteomics) to investigate soil fungi and their relation to edaphic and environmental variables across three ecosystems (forests, grasslands, and shrublands) distributed across the globe. We found that protein richness of soil fungi was significantly higher in forests than in shrublands. Among a wide suite of edaphic and environmental variables, we found that soil carbon content and plant cover shaped evenness and diversity of fungal soil proteins while protein richness correlated to mean annual temperature and pH. Functions shifted from metabolism in forests to information processing and storage in shrublands. The differences between the biomes highlight the utility of metaproteomics to investigate functional microbiomes in soil. SIGNIFICANCE: Understanding the structure and the function of fungal communities and the driving factors is crucial to determine the contribution to ecosystem services of fungi and what effect future climate has. While there is considerable knowledge on the ecosystem processes provided by fungi such as decomposition of organic matter and plant-soil relationships, our understanding of the driving factors of the fungal metaproteome is scarce. Here we present the first estimates of fungal topsoil protein diversity in a wide range of soils across global biomes. We report taxonomic differences for genes delivered by amplicon sequencing of the 18S rRNA gene and differences of the functional microbiome based on metaproteomics. Both methods gave a complementary view on the fungal topsoil communities, unveiling both taxonomic and functional changes with changing environments. Such a comprehensive multi-omic analysis of fungal topsoil communities has never been performed before, to our knowledge.

摘要

真菌支持广泛的生态系统过程,如有机物质的分解和植物-土壤关系。然而,我们对驱动真菌群落宏蛋白质组的因素的理解仍然很少。在这里,我们进行了一项现场调查,包括真菌生物量(通过磷脂脂肪酸,PLFA)、群落组成(通过提取 DNA 的 18S rRNA 基因的代谢组学)和功能谱(通过宏蛋白质组学)的数据,以调查土壤真菌及其与全球三个生态系统(森林、草原和灌丛)的土壤变量和环境变量的关系。我们发现,森林土壤真菌的蛋白质丰富度明显高于灌丛。在广泛的土壤和环境变量中,我们发现土壤碳含量和植物覆盖度塑造了真菌土壤蛋白质的均匀度和多样性,而蛋白质丰富度与年平均温度和 pH 值相关。功能从森林中的代谢转变为灌丛中的信息处理和存储。生物群系之间的差异突出了宏蛋白质组学在研究土壤功能微生物组方面的作用。意义:了解真菌群落的结构和功能以及驱动因素对于确定真菌对生态系统服务的贡献以及未来气候的影响至关重要。虽然我们对真菌提供的生态系统过程(如有机物质的分解和植物-土壤关系)有相当多的了解,但我们对真菌宏蛋白质组的驱动因素的了解却很少。在这里,我们首次在全球生物群系的广泛土壤中估计了真菌表土蛋白质的多样性。我们报告了基于 18S rRNA 基因扩增子测序的基因的分类学差异和基于宏蛋白质组学的功能微生物组的差异。这两种方法都对真菌表土群落提供了互补的观点,揭示了随着环境变化而发生的分类和功能变化。据我们所知,这种对真菌表土群落的综合多组学分析以前从未进行过。

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