矿化(土壤科学)
生态系统
氮气循环
自行车
吸收
生物群落
生态学
陆地生态系统
环境科学
环境化学
化学
营养循环
氮气
生物
地理
土壤水分
林业
内分泌学
有机化学
作者
Meifeng Deng,Lingli Liu,Lin Jiang,Weixing Liu,Xin Wang,Shaopeng Li,Sen Yang,Bin Wang
标识
DOI:10.1038/s41559-018-0677-1
摘要
The nitrogen (N) cycle in terrestrial ecosystems is strongly influenced by resorption before litter fall and by mineralization after litter fall. Although both resorption and mineralization make N available to plants and are influenced by climate, their linkage in a changing environment remains largely unknown. Here, our synthesis study shows that, at the global scale, increasing N-resorption efficiency negatively affects the N-mineralization rate. As temperature and precipitation increase, the increasing rates of N cycling closely correspond to a shift from the more conservative resorption pathway to the mineralization pathway. Furthermore, ecosystems with faster N-cycle rates support plant species that have higher foliar N:P ratios and microbial communities with lower fungi:bacteria ratios. Our study shows an ecosystem scale trade-off in N-acquisition pathways. We propose that incorporating the dynamic interaction between N resorption and N mineralization into Earth system models will improve the simulation of nutrient constraints on ecosystem productivity.
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