营养物
生态系统
环境科学
土壤碳
微生物种群生物学
土壤呼吸
营养循环
生物量(生态学)
微生物代谢
环境化学
气候变化
生态学
土壤科学
土壤水分
化学
生物
细菌
遗传学
作者
Shuohong Zhang,Ying Pan,Zhenghu Zhou,Jian Deng,Fazhu Zhao,Yaoxin Guo,Xinhui Han,Gaihe Yang,Yongzhong Feng,Guangxin Ren,Chengjie Ren
出处
期刊:Catena
[Elsevier BV]
日期:2021-11-02
卷期号:209: 105807-105807
被引量:58
标识
DOI:10.1016/j.catena.2021.105807
摘要
• N limitation for microbe increased with increasing elevation. • The rates of SOC decomposition and microbial respiration decreased with elevation. • Global warming relieve microbial N limitation and lead to increased soil carbon release. • DOC:TDN explained more variation for microbial N limitation and microbial processes. Soil microbes have a great influence on the feedbacks of carbon (C)-climate, and their metabolic activities are limited by resource availability. Altitudinal gradients strongly affect soil microbial communities, but the effects on microbial resource limitation and their regulation for C dynamics remain unclear. In this study, we designed an altitudinal gradient experiment that included six altitudinal sites from 1308 m to 2600 m in the Qinling Mountains, China. The enzymatic stoichiometry was determined and modeled to investigate microbial resource limitations and major microbial metabolism processes (e.g., organic C decomposition rate and microbial respiration rate) along the elevation gradient. Other environmental variables including mean annual temperature (MAT) and mean annual precipitation (MAP), the C: nitrogen (N): phosphorus (P) ratio in soil total nutrients, available nutrients, and microbial biomass were also measured. The results showed that soil microbes suffered from N limitation in our study and microbial N limitation significantly increased with increasing elevation. But the rates of both organic C decomposition and microbial respiration greatly decreased with increased elevation. These trends suggest that warming induced by elevation change might relieve N limitation for microbes and lead to increased soil C release. Redundancy analysis (RDA) showed that MAT and soil nutrient stoichiometry, particularly for the DOC: TDN ratio, explained more variations for changes in microbial N limitation and major microbial processes. Collectively, our study demonstrated that the higher microbial N limitation at high elevation may be beneficial to soil carbon accumulation by changing the C: N ratio, which provided insights into microbially mediated soil carbon release under global warming.
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