营养水平
生态系统
营养级联
全球变化
食草动物
生物量(生态学)
固碳
生态学
环境科学
气候变化
生态系统生态学
全球变暖
碳循环
生物地球化学循环
生物多样性
生态系统服务
减缓气候变化
陆地生态系统
碳纤维
微生物环
食物网
环境变化
初级生产者
土壤碳
生物
作者
Changlin Xu,Yadvinder Malhi,Xincheng Li,Gukailin Ao,Lidong Mo,Shuotian Lai,Wenao Wu,Meng Pan,Shaopeng Wang,Jens‐Christian Svenning,Biao Zhu
标识
DOI:10.1073/pnas.2610728123
摘要
Global change is rapidly reshaping the ecosystem carbon cycle, yet how trophic regulation-a fundamental driver of ecosystem biogeochemical cycling-mediates these responses remains poorly understood. Here we present a global synthesis of interactions between trophic regulation and major global change factors (GCFs: fertilization, warming, fire, increased precipitation, drought, and multiple GCFs), integrating 708 paired full-factorial experimental tests across 132 studies worldwide. We show that while GCFs alone increase ecosystem carbon stocks by 27% on average, their interactions with herbivores drive carbon losses of 23%, reversing the potential gains from individual GCF effects. Carbon losses are functionally localized in aboveground plant, litter, and microbial biomass carbon, with the most pronounced depletion occurring in the tropics, drylands, aquatic systems, and restoring ecosystems. Herbivore body size emerged as a directional trait shaping these outcomes, with small-bodied herbivores exerting disproportionately negative effects. Importantly, while excluding herbivores enhances carbon accumulation under global change, this sequestration benefit comes at the cost of reduced plant diversity, revealing an inherent trade-off between carbon-centric objectives and ecosystem integrity. Together, our findings demonstrate that carbon sequestration potential under global change cannot be evaluated independently of trophic regulation. Accounting for animal-mediated feedback is therefore essential for realistic Earth system model projections and for developing nature-based solutions that align climate mitigation with biodiversity conservation.
科研通智能强力驱动
Strongly Powered by AbleSci AI