环境科学
微生物种群生物学
亚热带
生态系统
土壤碳
土壤呼吸
生态学
全球变暖
土壤生态学
土壤水分
气候变化
土壤生物学
碳循环
陆地生态系统
热带和亚热带湿润阔叶林
微生物
微生物生态学
农学
特质
大气科学
土壤微生物学
降水
全球变化
含水量
生长季节
土壤科学
野外试验
干旱
碳纤维
作者
Carla Cruz‐Paredes,Albert C. Brangarí,Dániel Tájmel,Lettice C. Hicks,Ainara Leizeaga,Menale Wondie,Hans Sandén,Johannes Rousk
摘要
ABSTRACT Soil microorganisms regulate carbon (C) cycling, and their growth and respiration are strongly dependent on temperature. Yet it remains unclear how warming alters microbial thermal traits, community structure, and the balance between microbial respiration and growth, particularly in subtropical ecosystems where high temperatures coincide with low soil moisture, potentially constraining microbial activity. In this study, we investigated soil microbial thermal traits for growth and respiration, and the microbial community composition in two subtropical land‐uses with contrasting microclimates: a cooler, moist pristine forest and a warmer, drier cropland. Using open top chambers (OTCs) or rain exclusion shelters over 1.5 years, we quantified how experimental warming and drought altered microbial functioning and upscaled these effects using field soil temperature and moisture records. Field warming increased the abundance of warm‐adapted bacterial and fungal taxa and led to shifts in microbial thermal trait distributions toward higher minimum temperature values for microbial growth, indicating community‐level thermal adaptation. These thermal trait adaptations resulted in a modeled 36% reduction in annual soil CO 2 efflux in warmed plots. Overall, our results show that thermal trait adaptation, driven partly by community restructuring, buffers soil C losses under warming and may enhance soil C sequestration in subtropical ecosystems. These findings showcase the importance of integrating microbial thermal traits into soil C models to improve predictions of climate‐carbon feedbacks.
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