环境科学
亚热带
微生物种群生物学
土壤水分
土壤碳
全球变暖
碳循环
土壤呼吸
碳通量
生态学
碳纤维
呼吸
气候变化
外温
大气科学
环境化学
二氧化碳
微生物代谢
异养
生态系统
全球变化
热带和亚热带湿润阔叶林
代谢活性
微生物生态学
碳呼吸
土壤微生物学
土壤科学
溶解有机碳
作者
Xujun Liu,Shu‐Yi‐Dan Zhou,Peter B Reich,Zhiyang Lie,Wu Guopeng,Yuelin Li,Guowei Chu,Shizhong Liu,Ze Meng,Zhanfeng Liu,Juxiu Liu,Junhua Yan
出处
期刊:Science Advances
[American Association for the Advancement of Science]
日期:2025-11-12
卷期号:11 (46): eadz3747-eadz3747
标识
DOI:10.1126/sciadv.adz3747
摘要
Limited understanding of microbial metabolism under long-term warming, especially in (sub)tropical forests, impedes accurate predictions of carbon-climate feedbacks. Microbial carbon use efficiency (CUE, the partitioning of metabolized carbon for microbial growth) is crucial to the fate of soil carbon, but how it changes with warming remains unknown. Here, in contrast to the often hypothesized negative temperature dependence of microbial CUE, we observed a positive microbial CUE-temperature relationship after a decade of modest ecosystem-level warming (+1.0° and +2.1°C) in subtropical China. The warmed microbial community shifted toward more K -strategists, and the increased network stability drove metabolic thermal adjustments. These thermal adjustments resulted in homeostasis, such that warmed soils did not differ from unwarmed (+0°C) soils in microbial respiration and growth, weakening the initially stimulated carbon decomposition. These results suggest that warming-induced soil-plant system imbalance can recover to a prewarming steady state within a few seasons, mitigating predicted increases in soil carbon losses.
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