Linkages of plant stoichiometry to ecosystem production and carbon fluxes with increasing nitrogen inputs in an alpine steppe

初级生产 生态系统 陆地生态系统 环境科学 草原 氮气 生态化学计量学 化学计量学 碳循环 碳通量 碳纤维 生态学 环境化学 化学 生物 材料科学 复合材料 有机化学 复合数
作者
Yunfeng Peng,Fei Li,Guoying Zhou,Kai Fang,Dianye Zhang,Changbin Li,Guibiao Yang,Guanqin Wang,Jun Wang,Yuanhe Yang
出处
期刊:Global Change Biology [Wiley]
卷期号:23 (12): 5249-5259 被引量:89
标识
DOI:10.1111/gcb.13789
摘要

Abstract Unprecedented levels of nitrogen (N) have entered terrestrial ecosystems over the past century, which substantially influences the carbon (C) exchange between the atmosphere and biosphere. Temperature and moisture are generally regarded as the major controllers over the N effects on ecosystem C uptake and release. N‐phosphorous (P) stoichiometry regulates the growth and metabolisms of plants and soil organisms, thereby affecting many ecosystem C processes. However, it remains unclear how the N‐induced shift in the plant N:P ratio affects ecosystem production and C fluxes and its relative importance. We conducted a field manipulative experiment with eight N addition levels in a Tibetan alpine steppe and assessed the influences of N on aboveground net primary production ( ANPP ), gross ecosystem productivity ( GEP ), ecosystem respiration ( ER ), and net ecosystem exchange ( NEE ); we used linear mixed‐effects models to further determine the relative contributions of various factors to the N‐induced changes in these parameters. Our results showed that the ANPP , GEP , ER , and NEE all exhibited nonlinear responses to increasing N additions. Further analysis demonstrated that the plant N:P ratio played a dominate role in shaping these C exchange processes. There was a positive relationship between the N‐induced changes in ANPP (Δ ANPP ) and the plant N:P ratio (ΔN:P), whereas the Δ GEP , Δ ER , and Δ NEE exhibited quadratic correlations with the ΔN:P. In contrast, soil temperature and moisture were only secondary predictors for the changes in ecosystem production and C fluxes along the N addition gradient. These findings highlight the importance of plant N:P ratio in regulating ecosystem C exchange, which is crucial for improving our understanding of C cycles under the scenarios of global N enrichment.

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