Not all soil carbon is created equal: Labile and stable pools under nitrogen input

矿化(土壤科学) 自行车 氮气循环 生态系统 环境化学 土壤碳 氮气 孵化 微生物种群生物学 化学 土壤有机质 环境科学 生态学 土壤水分 土壤科学 生物 林业 细菌 有机化学 生物化学 遗传学 地理
作者
Huadong Zang,Imran Mehmood,Yakov Kuzyakov,Rong Jia,Heng Gui,Еvgenia Blagodatskaya,Xingliang Xu,Pete Smith,Haiqing Chen,Zhaohai Zeng,Mingsheng Fan
出处
期刊:Global Change Biology [Wiley]
卷期号:30 (7): e17405-e17405 被引量:47
标识
DOI:10.1111/gcb.17405
摘要

Anthropogenic activities have raised nitrogen (N) input worldwide with profound implications for soil carbon (C) cycling in ecosystems. The specific impacts of N input on soil organic matter (SOM) pools differing in microbial availability remain debatable. For the first time, we used a much-improved approach by effectively combining the 13C natural abundance in SOM with 21 years of C3-C4 vegetation conversion and long-term incubation. This allows to distinguish the impact of N input on SOM pools with various turnover times. We found that N input reduced the mineralization of all SOM pools, with labile pools having greater sensitivity to N than stable ones. The suppression in SOM mineralization was notably higher in the very labile pool (18%-52%) than the labile and stable (11%-47%) and the very stable pool (3%-21%) compared to that in the unfertilized control soil. The very labile C pool made a strong contribution (up to 60%) to total CO2 release and also contributed to 74%-96% of suppressed CO2 with N input. This suppression of SOM mineralization by N was initially attributed to the decreased microbial biomass and soil functions. Over the long-term, the shift in bacterial community toward Proteobacteria and reduction in functional genes for labile C degradation were the primary drivers. In conclusion, the higher the availability of the SOM pools, the stronger the suppression of their mineralization by N input. Labile SOM pools are highly sensitive to N availability and may hold a greater potential for C sequestration under N input at global scale.
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