Temporal dynamics and drivers of soil organic carbon following ecological restoration on the Qinghai-Tibet Plateau

土壤碳 环境科学 恢复生态学 生态学 微生物种群生物学 固碳 草原 总有机碳 土壤质量 土壤有机质 生态系统 土壤生物学 土壤水分 植被(病理学) 土壤科学 土壤生物多样性 高原(数学) 土壤pH值 土壤生态学 土壤化学 植物群落 碳纤维 环境化学 作文(语言) 溶解有机碳 生物多样性 土工试验
作者
Yifan Shen,Qi Li,Xiangjun Pei,Yi Yang,Xinzhi Wu,Renjie Wei,Yunxing Xiao,Y Y Li,Ningfei Lei,Xiaochao Zhang
出处
期刊:Ecological Indicators [Elsevier BV]
卷期号:189: 115264-115264
标识
DOI:10.1016/j.ecolind.2026.115264
摘要

Investigating soil organic carbon (SOC) dynamic and its controlling factors is essential for improving soil carbon sequestration in ecological restoration areas. However, the temporal variations in SOC content and composition in alpine ecological restoration areas remain poorly understood. In this study, soil physicochemical properties (pH, aggregates, total and available nitrogen, total and available phosphorus, and available potassium), enzyme activity (sucrase, cellulase, alkaline protease, and alkaline phosphatase), microbial characteristics, and SOC composition were analysed to investigate the temporal changes in SOC content and its major controlling factors in alpine ecological restoration areas. Results showed that SOC content continuously increased following ecological restoration. Lignin and phenols were more abundant following ecological restoration, whereas the relative abundances of aromatic hydrocarbons, alkanes and alkenes exhibited the opposite trend, indicating a shift from microbially derived to plant-derived SOC inputs following ecological restoration. Soil enzyme activities and microbial community characteristics responded significantly to restoration, and the relative importance of stochastic processes in bacterial community assembly increased with restoration time. Partial least squares path modeling (PLS-PM) revealed that restoration time was the dominant factor associated with SOC dynamics through both direct and indirect effects mediated by soil properties, SOC composition, and microbial communities. Correlation analysis further identified soil total nitrogen (TN) as the factor most strongly associated with SOC content. These findings provide mechanistic insights into SOC accumulation following restoration and offer a scientific basis for enhancing carbon sequestration in degraded alpine ecosystem.
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