Taxonomical and functional responses of microbial communities from forest soils of differing tree species diversity to drying-rewetting cycles

IF 2 3区 农林科学 Q3 ECOLOGY
Lauren M. Gillespie , Luis Daniel Prada-Salcedo , Ammar Shihan , Nathalie Fromin , Kezia Goldmann , Alexandru Milcu , François Buscot , Bruno Buatois , Stephan Hättenschwiler
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Abstract

The predicted increases in drought in many forest ecosystems may alter soil microbial community diversity and activity, which may further depend on tree species richness. Shifts in microbial community composition and activity could engender changes in ecosystem function, notably, in soil greenhouse gas emissions and C storage. Using soils from mono-specific and mixed three-species forest stands from across Europe, we performed a microcosm experiment to test how soil microbial taxonomic and catabolic diversity are affected by repeated drying-rewetting (DRW) cycles and tree species mixing. We used Illumina sequencing and MicroResp™ analyses to explore community-level changes between microbial functional groups. DRW decreased bacterial richness and carbon substrate use diversity and increased fungal Shannon diversity. Additionally, microbial communities exposed to DRW changed their consumption of 11 out of 15 substrates significantly, suggesting microbial functional shifts. The legacy effect of tree species mixing influenced the structure of the microbial communities (i.e. taxonomic differential abundance) although, community weighted mean (CWM) values of absorptive root traits appeared to affect more strongly microbial richness, relative abundance, and Shannon diversity. No significant tree species mixing:DRW interaction was found for most microbial variables, except for the use of certain substrates and potentially differential abundance. Our data from a laboratory experiment with soils from different forest ecosystems underline that drought may cause shifts in microbial taxonomic and catabolic diversity, while tree species influences primarily taxonomic diversity through root traits.

不同树种多样性森林土壤微生物群落对干湿循环的分类和功能响应
在许多森林生态系统中,预测的干旱增加可能会改变土壤微生物群落的多样性和活动,这可能进一步取决于树种丰富度。微生物群落组成和活动的变化会引起生态系统功能的变化,特别是土壤温室气体排放和碳储量的变化。利用欧洲单一树种和三种混交林的土壤进行了微观实验,研究了反复干-再湿循环和树种混合对土壤微生物分类和分解代谢多样性的影响。我们使用Illumina测序和MicroResp™分析来探索微生物功能群之间的群落水平变化。DRW降低了细菌丰富度和碳底物利用多样性,增加了真菌Shannon多样性。此外,暴露于DRW的微生物群落显著改变了15种基质中的11种,表明微生物功能发生了变化。树种混合的遗留效应影响微生物群落结构(即分类差异丰度),但吸收根系性状的群落加权平均值(CWM)值对微生物丰富度、相对丰度和香农多样性的影响更为强烈。除了某些基质的使用和潜在的丰度差异外,大多数微生物变量没有发现显著的树种混合:DRW相互作用。我们对不同森林生态系统土壤的实验室实验数据表明,干旱可能导致微生物分类多样性和分解代谢多样性的变化,而树种主要通过根系性状影响分类多样性。
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来源期刊
Pedobiologia
Pedobiologia 环境科学-生态学
CiteScore
4.20
自引率
8.70%
发文量
38
审稿时长
64 days
期刊介绍: Pedobiologia publishes peer reviewed articles describing original work in the field of soil ecology, which includes the study of soil organisms and their interactions with factors in their biotic and abiotic environments. Analysis of biological structures, interactions, functions, and processes in soil is fundamental for understanding the dynamical nature of terrestrial ecosystems, a prerequisite for appropriate soil management. The scope of this journal consists of fundamental and applied aspects of soil ecology; key focal points include interactions among organisms in soil, organismal controls on soil processes, causes and consequences of soil biodiversity, and aboveground-belowground interactions. We publish: original research that tests clearly defined hypotheses addressing topics of current interest in soil ecology (including studies demonstrating nonsignificant effects); descriptions of novel methodological approaches, or evaluations of current approaches, that address a clear need in soil ecology research; innovative syntheses of the soil ecology literature, including metaanalyses, topical in depth reviews and short opinion/perspective pieces, and descriptions of original conceptual frameworks; and short notes reporting novel observations of ecological significance.
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