草原
干旱
降水
环境科学
土壤呼吸
氮气
呼吸
农学
生态学
农林复合经营
土壤水分
水文学(农业)
大气科学
土壤科学
化学
生物
地理
地质学
植物
岩土工程
有机化学
气象学
作者
Lingjie Kong,Jian Song,Jingyi Ru,Jiayin Feng,Jiawei Hou,Xueke Wang,Qingshan Zhang,Haidao Wang,Xiaojing Yue,Zhenxing Zhou,Dasheng Sun,Jiajia Zhang,Heng Li,Yongge Fan,Shiqiang Wan
标识
DOI:10.1016/j.scitotenv.2024.171170
摘要
Concurrent changing precipitation regimes and atmospheric nitrogen (N) deposition can have profound influences on soil carbon (C) cycling. However, how N enrichment regulates the responses of soil C fluxes to increasing variability of precipitation remains elusive. As part of a field precipitation gradient experiment with nine levels of precipitation amounts (−60 %, −45 %, −30 %, −15 %, ambient precipitation, +15 %, +30 %, +45 %, and +60 %) and two levels of N addition (0 and 10 g N m −2 yr −1 ) in a semi-arid temperate steppe on the Mongolian Plateau, this work was conducted to investigate the responses of soil respiration to decreased and increased precipitation (DP and IP), N addition, and their possible interactions. Averaged over the three years from 2019 to 2021, DP suppressed soil respiration by 16.1 %, whereas IP stimulated it by 27.4 %. Nitrogen addition decreased soil respiration by 7.1 % primarily via reducing microbial biomass C. Soil respiration showed symmetric responses to DP and IP within all the four precipitation variabilities (i.e., 15 %, 30 %, 45 %, and 60 %) under ambient N. Nevertheless, N addition did not alter the symmetric responses of soil respiration to changing precipitation due to the comparable sensitivities of microbial biomass and root growth to DP and IP under the N addition treatment. These findings indicate that intensified precipitation variability does not change but N addition could alleviate soil C releases. The unchanged symmetric responses of soil respiration to precipitation variability under N addition imply that N deposition may not change the response pattern of soil C releases to predicted increases in precipitation variability in grasslands, facilitating the robust projections of ecosystem C cycling under future global change scenarios. • Soil respiration showed symmetric responses regardless of shifting precipitation variability. • Increased precipitation variability did not change soil efflux. • N addition did not alter symmetric responses of soil respiration to precipitation variability.
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