自行车
土壤呼吸
生态系统
呼吸
环境化学
化学
土壤水分
孵化
碳循环
草原
土壤碳
矿化(土壤科学)
生物量(生态学)
二氧化碳
氮气循环
酶分析
动物科学
氮气
农学
生态学
酶
生物
植物
生物化学
有机化学
考古
历史
作者
Yao Chen,Yangjian Zhang,Edith Bai,Shilong Piao,Ning Chen,Guang Zhao,Zhoutao Zheng,Yixuan Zhu
标识
DOI:10.1016/j.scitotenv.2021.151907
摘要
Global atmospheric CO2 keeps rising and brings about significant effects on ecosystem carbon (C) cycling by altering C processes in soils. Soil C responses to elevated CO2 are highly uncertain, and how elevated CO2 interacts with other factors, such as nitrogen (N) availability, to influence soil C flux comprises an important source of this uncertainty, especially for those under-studied ecosystems. By conducting a manipulated CO2 concentration and N availability experiment on typical alpine grassland (4600 m asl), we combined the five-year in-situ measurement of soil respiration (SR) with an incubation experiment of microbial metabolic efficiency in the lab to explore the response of SR to elevated CO2 and N availability. The results showed that elevated CO2 at ambient N conditions and enriched N equally stimulated SR during the experimental period, whereas N supply had no significant effect. Elevated CO2 enhanced soil dissolved organic C and enzyme activity, while had marginal effects on microbial biomass and C use efficiency (CUE). Strengthened microbial activity dominated SR stimulation under elevated CO2. Enriched N boosted enzyme activity and microbial CUE. N availability played divergent roles in mediating SR. The negliable regulation of N supply on elevated CO2 effects on SR was the offset consequences of the negative impacts of enhanced CUE and the positive contribution of heightened enzyme activity. Our findings suggest that rising CO2 would accelerate soil C cycling of the alpine grassland under various N regimes by stimulating microbial activity instead of lowering microbial metabolic efficiency. Such results are crucial for understanding the role of alpine ecosystems in the global C cycle.
科研通智能强力驱动
Strongly Powered by AbleSci AI