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Soil fungal community has higher network stability than bacterial community in response to warming and nitrogen addition in a subtropical primary forest.
Li, Debao; Wu, Chuansheng; Wu, Jianping.
Affiliation
  • Li D; Ministry of Education Key Laboratory for Transboundary Ecosecurity of Southwest China, Yunnan Key Laboratory of Plant Reproductive Adaptation and Evolutionary Ecology, Institute of Biodiversity, School of Ecology and Environmental Science, Yunnan University, Kunming, China.
  • Wu C; Laboratory of Soil Ecology and Health in Universities of Yunnan Province, Yunnan University, Kunming, China.
  • Wu J; Anhui Province Key Laboratory of Environmental Hormone and Reproduction, Fuyang Normal University, Fuyang, China.
Appl Environ Microbiol ; 90(6): e0000124, 2024 06 18.
Article in En | MEDLINE | ID: mdl-38771056
ABSTRACT
Global change factors are known to strongly affect soil microbial community function and composition. However, as of yet, the effects of warming and increased anthropogenic nitrogen deposition on soil microbial network complexity and stability are still unclear. Here, we examined the effects of experimental warming (3°C above ambient soil temperature) and nitrogen addition (5 g N m-2 year-1) on the complexity and stability of the soil microbial network in a subtropical primary forest. Compared to the control, warming increased |negative cohesion|positive cohesion by 7% and decreased network vulnerability by 5%; nitrogen addition decreased |negative cohesion|positive cohesion by 10% and increased network vulnerability by 11%. Warming and decreased soil moisture acted as strong filtering factors that led to higher bacterial network stability. Nitrogen addition reduced bacterial network stability by inhibiting soil respiration and increasing resource availability. Neither warming nor nitrogen addition changed fungal network complexity and stability. These findings suggest that the fungal community is more tolerant than the bacterial community to climate warming and nitrogen addition. The link between bacterial network stability and microbial community functional potential was significantly impacted by nitrogen addition and warming, while the response of soil microbial network stability to climate warming and nitrogen deposition may be independent of its complexity. Our findings demonstrate that changes in microbial network structure are crucial to ecosystem management and to predict the ecological consequences of global change in the future. IMPORTANCE Soil microbes play a very important role in maintaining the function and health of forest ecosystems. Unfortunately, global change factors are profoundly affecting soil microbial structure and function. In this study, we found that climate warming promoted bacterial network stability and nitrogen deposition decreased bacterial network stability. Changes in bacterial network stability had strong effects on bacterial community functional potentials linked to metabolism, nitrogen cycling, and carbon cycling, which would change the biogeochemical cycle in primary forests.
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Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Soil Microbiology / Bacteria / Forests / Microbiota / Fungi / Nitrogen Language: En Journal: Appl Environ Microbiol Year: 2024 Document type: Article Affiliation country: China Country of publication: Estados Unidos

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Soil Microbiology / Bacteria / Forests / Microbiota / Fungi / Nitrogen Language: En Journal: Appl Environ Microbiol Year: 2024 Document type: Article Affiliation country: China Country of publication: Estados Unidos