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PubMed · 42436636

Increased precipitation decelerates temporal succession of grassland soil microbial communities.

Abstract

Global precipitation regimes have been shifted in recent decades, imposing significant consequences in water-limited grassland ecosystems. However, the effects of increased precipitation on the succession of soil microbial communities remain unclear, mainly due to the scarcity of long-term experiments with time-series data. Here, we examined temporal succession of grassland soil microbial communities in a long-term increased precipitation experiment. Both soil microbial taxonomic and functional structures were significantly altered by increased precipitation. Increased precipitation significantly decelerated the succession rates of soil microbial functional structure (i.e. time-decay relationships). Consistent with the increased microbial decomposition and heterotrophic respiration, the abundances of soil microbial carbon decomposition genes were markedly enhanced by increased precipitation. Furthermore, increased precipitation stimulated genes involved in nutrient cycling processes, potentially promoting plant growth. Collectively, the contributions of stochastic processes in shaping microbial communities were increased under increased precipitation, suggesting that microbial successional trajectories may shift toward multiple alternative states characterized by greater stochasticity under future altered precipitation regimes.

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Sihang Deng, Weiling Shi, Renmao Tian, Xue Guo, Daliang Ning, Xishu Zhou, Mengting Yuan, Jiajie Feng, Aifen Zhou, Ying Fu, Gang Xu, Dashuai Mu, Peng Shi, Xiangyu Fan, Yue Teng, Xin Zhao, Zhongfang Li, Jiantao Liu, Xiaonan Liu, Liyou Wu, Zhili He, Xueduan Liu, Yiqi Luo, James M Tiedje, Yunfeng Yang, Jizhong Zhou. 2026-01-14. Increased precipitation decelerates temporal succession of grassland soil microbial communities.. https://doi.org/10.1093/ismejo%2Fwrag176

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