The stoichiometry of soil microbial biomass determines metabolic quotient of nitrogen mineralization
作者:Zhaolei Li, Zhaoqi Zeng, Dashuan Tian, Jinsong Wang, Zheng Fu, Bingxue Wang, Ze Tang, Weinan Chen, Han Y. H. Chen, Changhui Wang, Chuixiang Yi, Shuli Niu · 发表于:Environmental Research Letters · 年份:2020 · DOI:10.1088/1748-9326/ab6a26 · 被引用次数:51 · 研究领域:Soil Carbon and Nitrogen Dynamics、Microbial Community Ecology and Physiology、Climate change and permafrost
Abstract Soil nitrogen (N) mineralization is crucial for the sustainability of available soil N and hence ecosystem productivity and functioning. Metabolic quotient of N mineralization ( Q min ), which is defined as net soil N mineralization per unit of soil microbial biomass N, reflects the efficiency of soil N mineralization. However, it is far from clear how soil Q min changes and what are the controlling factors at the global scale. We compiled 871 observations of soil Q min from 79 published articles across terrestrial ecosystems (croplands, forests, grasslands, and wetlands) to elucidate the global variation of soil Q min and its predictors. Soil Q min decreased from the equator to two poles, which was significant in the North Hemisphere. Soil Q min correlated negatively with soil pH, total soil N, the ratio of soil carbon (C) to N, and soil microbial biomass C, and positively with mean annual temperature and C:N ratio of soil microbial biomass at a global scale. Soil microbial biomass, climate, and soil physical and chemical properties in combination accounted for 41% of the total variations of global soil Q min . Among those predictors, C:N ratio of soil microbial biomass was the most important factor contributing to the variations of soil Q min (the standardized coefficient = 0.39) within or across ecosystem types. This study emphasizes the critical role of microbial stoichiometry in soil N cycling, and suggests the necessity of incorporating soil Q min into Earth sy...