Nonlinear response of soil microfauna network complexity and stability to multilevel warming in an old-growth subtropical forest.

IF 4.7 1区 生物学 Q1 MICROBIOLOGY
mBio Pub Date : 2025-10-08 Epub Date: 2025-08-29 DOI:10.1128/mbio.00156-25
Debao Li, Yan Li, Haibian Xu, Jianping Wu
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Abstract

The influence of climate warming on soil microbes and the mechanisms underlying these effects have become the subject of intense focus in microbial ecology and climate change research. However, it is largely unknown how warming affects soil microfauna network complexity and stability or how warming-induced changes may affect ecosystem functioning in old-growth forests. Here, we conducted a 3-year multilevel warming experiment in an old-growth subtropical forest using infrared heating with five treatments: ambient soil temperature and 0.8°C, 1.5°C, 3.0°C, and 4.2°C above ambient soil temperature. We found that soil microfauna network complexity and stability and multinutrient cycling were significantly higher under warming and showed similar hump-shaped trends across rising temperatures. The nonlinear responses of soil microfauna network complexity and stability were primarily linked to soil temperature, moisture, organic carbon, and microbial biomass. Importantly, we found that soil multinutrient cycling was positively influenced by microfauna network complexity and stability. Consequently, our findings provide insights into the key role of soil microfauna network structure in regulating soil multinutrient cycling, highlighting the need to consider soil organisms' potential interactions and that it is crucial to preserve soil microfauna "interactions" for ecosystem management in forests under global change.IMPORTANCEIt is largely unknown how warming affects soil microfauna network complexity and stability or how warming-induced changes may affect ecosystem functioning in old-growth forests. We conducted a 3-year multilevel warming experiment in an old-growth subtropical forest using infrared heating. We found that soil microfauna network complexity and stability were significantly higher under warming treatments and displayed nonlinear responses to different warming levels. Soil multinutrient cycling was positively and significantly influenced by microfauna network complexity and stability. Given that complex interconnections between soil microfauna are critical for sustaining ecosystem functioning, protecting microfauna "interactions" may be critical to mitigating the adverse impacts of warming-induced biodiversity reduction on ecosystem functioning.

亚热带原生林土壤微动物网络复杂性和稳定性对多级增温的非线性响应
气候变暖对土壤微生物的影响及其机制已成为微生物生态学和气候变化研究的热点。然而,对于气候变暖如何影响土壤微动物网络的复杂性和稳定性,以及气候变暖引起的变化如何影响原始森林的生态系统功能,在很大程度上是未知的。本研究采用环境土壤温度高于环境土壤温度0.8°C、1.5°C、3.0°C和4.2°C 5种处理方式,对亚热带原生林进行了3年多尺度的红外加热实验。研究发现,气候变暖条件下,土壤微动物网络的复杂性、稳定性和多养分循环显著提高,且在温度升高过程中呈现相似的驼峰趋势。土壤微动物网络复杂性和稳定性的非线性响应主要与土壤温度、湿度、有机碳和微生物生物量有关。重要的是,我们发现土壤多养分循环受到微动物网络复杂性和稳定性的积极影响。因此,我们的研究结果为土壤微动物网络结构在调节土壤多养分循环中的关键作用提供了见解,强调了考虑土壤生物潜在相互作用的必要性,以及在全球变化下保护土壤微动物“相互作用”对森林生态系统管理至关重要。气候变暖如何影响土壤微动物网络的复杂性和稳定性,以及气候变暖引起的变化如何影响原生林的生态系统功能,这在很大程度上是未知的。利用红外加热技术对亚热带原始森林进行了为期3年的多层增温实验。结果表明,增温处理显著提高了土壤微动物网络的复杂性和稳定性,并对不同增温水平表现出非线性响应。土壤多养分循环受微动物网络复杂性和稳定性的显著正向影响。鉴于土壤微动物之间复杂的相互联系对维持生态系统功能至关重要,保护微动物的“相互作用”可能对减轻气候变暖导致的生物多样性减少对生态系统功能的不利影响至关重要。
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来源期刊
mBio
mBio MICROBIOLOGY-
CiteScore
10.50
自引率
3.10%
发文量
762
审稿时长
1 months
期刊介绍: mBio® is ASM''s first broad-scope, online-only, open access journal. mBio offers streamlined review and publication of the best research in microbiology and allied fields.
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