Effects of three global change drivers on terrestrial C:N:P stoichiometry: a global synthesis

生态化学计量学 全球变化 生物地球化学 生态系统 陆地生态系统 气候变化 土壤水分 生物量(生态学) 环境科学 化学计量学 生产力 化学 环境化学 全球变暖 生态学 土壤科学 生物 宏观经济学 经济 有机化学
作者
Kai Yue,Dario Fornara,Chengming You,Yan Peng,Zhijie Li,Fuzhong Wu,Changhui Peng
出处
期刊:Global Change Biology [Wiley]
卷期号:23 (6): 2450-2463 被引量:213
标识
DOI:10.1111/gcb.13569
摘要

Abstract Over the last few decades, there has been an increasing number of controlled‐manipulative experiments to investigate how plants and soils might respond to global change. These experiments typically examined the effects of each of three global change drivers [i.e., nitrogen (N) deposition, warming, and elevated CO 2 ] on primary productivity and on the biogeochemistry of carbon (C), N, and phosphorus (P) across different terrestrial ecosystems. Here, we capitalize on this large amount of information by performing a comprehensive meta‐analysis (>2000 case studies worldwide) to address how C:N:P stoichiometry of plants, soils, and soil microbial biomass might respond to individual vs. combined effects of the three global change drivers. Our results show that (i) individual effects of N addition and elevated CO 2 on C:N:P stoichiometry are stronger than warming, (ii) combined effects of pairs of global change drivers (e.g., N addition + elevated CO 2 , warming + elevated CO 2 ) on C:N:P stoichiometry were generally weaker than the individual effects of each of these drivers, (iii) additive interactions (i.e., when combined effects are equal to or not significantly different from the sum of individual effects) were more common than synergistic or antagonistic interactions, (iv) C:N:P stoichiometry of soil and soil microbial biomass shows high homeostasis under global change manipulations, and (v) C:N:P responses to global change are strongly affected by ecosystem type, local climate, and experimental conditions. Our study is one of the first to compare individual vs. combined effects of the three global change drivers on terrestrial C:N:P ratios using a large set of data. To further improve our understanding of how ecosystems might respond to future global change, long‐term ecosystem‐scale studies testing multifactor effects on plants and soils are urgently required across different world regions.
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