生物地球化学循环
营养水平
自行车
氮气循环
环境科学
矿化(土壤科学)
生态学
土壤碳
碳循环
微生物种群生物学
生物量(生态学)
全球变化
环境化学
氮气
生物地球化学
微生物
生态系统
营养循环
农学
植物群落
非生物成分
土壤有机质
溶解有机碳
土壤水分
陆地生态系统
生态化学计量学
反硝化
化学
固碳
生物
多年生植物
碳纤维
硝化作用
作者
Min Liu,Meng Hou,Xingliang Xu,Di Ma,Yuanyuan Liu,Yueqi Wang,庞开圻,Zhihui Wang,Yanjie Liu,Lu Xiao
摘要
ABSTRACT Artificial light at night (ALAN) is an increasingly pervasive global change driver, yet its effects on the interconnected biogeochemical cycling of soil carbon (C) and nitrogen (N) remain poorly understood. Here, we conducted an in situ dual‐isotope ( 13 C‐CO 2 pulse labelling and 15 N addition) experiment combined with multitrophic microbial network analysis in a semi‐arid meadow steppe to explore the impact of ALAN on belowground C and N cycling and the underlying mechanisms. We found that ALAN significantly accelerated the turnover of newly fixed plant C, a process primarily fueled by the increased root‐derived C input from ALAN‐stimulated plant biomass (the bottom‐up C‐pump). Concurrently, while this plant‐driven C surplus primarily fueled elevated soil respiration, ALAN substantially enhanced microbial 15 N retention, resulting in a pronounced asymmetric biological allocation of assimilated C and N within the biotic pools. This stoichiometric divergence was underpinned by a physiological shift toward a conservative microbial N retention strategy, whereby soil microorganisms increased N retention efficiency to counterbalance the stoichiometric C surpluses induced by enhanced plant inputs. Crucially, we found that this enhanced biological N retention was predicted not by microbial taxonomic diversity but was closely associated with a directional trend toward reduced micro‐food web structural connectivity. This fragmented network architecture potentially altered top‐down trophic controls, which compounded the plant‐driven stoichiometric imbalance by limiting predator‐mediated N mineralization and thereby promoting relative N retention within the microbial biomass. Our findings highlight light pollution as an underappreciated global change driver that specifically accelerates plant‐mediated bottom‐up C loss while simultaneously promoting microbial N retention via fragmented micro‐food webs in increasingly illuminated ecosystems.
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