土壤碳
单作
环境科学
热带和亚热带湿润阔叶林
诽谤
碳纤维
生物量(生态学)
固碳
下层林
微生物种群生物学
碳循环
总有机碳
非生物成分
垃圾箱
农学
生态学
土壤有机质
化学
环境化学
生态系统
土壤化学
植物凋落物
亚热带
丰度(生态学)
生物
无机碳总量
自行车
土壤水分
土壤生态学
杉木
土壤分类
溶解有机碳
异养
作者
Zhiqiang Ding,Zhijie Yang,Yusheng Yang
出处
期刊:PLOS ONE
[Public Library of Science]
日期:2026-01-08
卷期号:21 (1): e0339350-e0339350
标识
DOI:10.1371/journal.pone.0339350
摘要
Subtropical forests are critical to regional carbon cycling, yet the mechanisms by which forest management practices influence soil organic carbon (SOC) stability are not yet fully understood. This study assessed SOC fractions and microbial communities across four forest management types in southeastern China: secondary forest, assisted natural regeneration (ANR), and two monoculture plantations (Castanopsis carlesii and Cunninghamia lanceolata). We measured soil physicochemical properties, microbial biomass, and community composition, and used structural equation modeling (SEM) to identify the biotic and abiotic pathways regulating SOC dynamics. The results showed that ANR maintained SOC concentrations and microbial traits comparable to those of secondary forests, while significantly reducing labile carbon losses relative to monoculture plantations. At our site, ANR also exhibited higher fine-root input and richer understory cover than plantations, supporting microbially mediated LC retention and, ultimately, greater SOC stabilization. SEM identified two partially independent regulatory pathways: (1) aboveground litter inputs influenced soil pH, carbon:nitrogen ratio, and ammonium nitrogen. These changes promoted the conversion of labile carbon into recalcitrant carbon and increased total SOC. (2) fine root biomass enhanced labile carbon accumulation by increasing the abundance of Gram-positive bacteria. Recalcitrant carbon is conventionally considered a stable SOC component. However, the SEM identified no direct pathway of influence from recalcitrant carbon to total SOC. This finding underscores the central role of labile carbon in SOC stabilization in humid subtropical systems. These findings demonstrate that ANR mitigates carbon losses by enhancing microbially mediated carbon retention and reducing disturbance. This approach supports SOC preservation through improved litter dynamics and root-microbe interactions, providing insights for sustainable forest carbon management.
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