表土
草原
环境科学
土壤碳
营养物
农学
恢复生态学
氮气
微生物种群生物学
营养循环
降级(电信)
氮气循环
总有机碳
环境化学
生态系统
草地退化
土壤科学
土壤有机质
碳纤维
生物地球化学循环
作者
Jinchao Gong,Feida Sun,Jingjing Wu,Shijie Zhou,Xiu Yue,Lin Li,Tahmina Kausar,Zhouwen Ma,Jiqiong Zhou,Lin Liu,Yongxing Cui,Jordi Sardans,Josep Peñuelas,Ahmed S. Elrys,Ji Chen,Yanfu Bai
标识
DOI:10.1002/advs.202510549
摘要
Abstract Grassland degradation disrupts microbial nutrient cycling, yet the role of nitrogen (N) limitation in regulating soil organic carbon (SOC) dynamics during restoration remains poorly understood. Here, 10 years of active (sowing of seeds of native plants) and passive restoration (sand barrier protection) in degraded grasslands on the Qinghai–Tibetan Plateau are compared. Restoration impacts are assessed by integrating microbial metabolic traits such as stoichiometry‐based nutrient limitation and C use efficiency (CUE ST ) with SOC fractionation, which considers both POC and MAOC). Active restoration reduces microbial N limitation by 44–71%, driving a 291–467% increase in SOC stocks, from 0.81 to 3.15 kg m −2 in topsoil and 0.54 to 3.08 kg m −2 in subsoil. It also reduces CUE ST by 54% in topsoil and 34% in subsoil, boosting POC by 483–557% and MAOC by 621–1,071%. MAOC dominates SOC accumulation, exceeding POC by 2.3–7.2 times. The CUE ST reduction aids POC transformation into MAOC, stabilizing SOC storage. In contrast, passive restoration slightly reduces N limitation by 36–39% and CUE ST by 10–23%, but failed to enhance C fractions or SOC stocks due to persistent nutrient constraints. The findings demonstrate that alleviating microbial N limitation by active restoration is critical for stabilizing SOC through MAOC accumulation.
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