Soil C and N availability determine the priming effect: microbial N mining and stoichiometric decomposition theories

矿化(土壤科学) 分解者 蔗糖 稻草 氮气循环 氮气 有机质 微生物种群生物学 环境化学 负启动 分解 化学 生态系统 食品科学 生物 细菌 生态学 有机化学 无机化学 遗传学 认知 选择性注意 神经科学
作者
Ruirui Chen,Mehmet Şenbayram,Sergey Blagodatsky,Olga Myachina,Klaus Dittert,Xiangui Lin,Еvgenia Blagodatskaya,Yakov Kuzyakov
出处
期刊:Global Change Biology [Wiley]
卷期号:20 (7): 2356-2367 被引量:1200
标识
DOI:10.1111/gcb.12475
摘要

The increasing input of anthropogenically derived nitrogen (N) to ecosystems raises a crucial question: how does available N modify the decomposer community and thus affects the mineralization of soil organic matter (SOM). Moreover, N input modifies the priming effect (PE), that is, the effect of fresh organics on the microbial decomposition of SOM. We studied the interactive effects of C and N on SOM mineralization (by natural (13) C labelling adding C4 -sucrose or C4 -maize straw to C3 -soil) in relation to microbial growth kinetics and to the activities of five hydrolytic enzymes. This encompasses the groups of parameters governing two mechanisms of priming effects - microbial N mining and stoichiometric decomposition theories. In sole C treatments, positive PE was accompanied by a decrease in specific microbial growth rates, confirming a greater contribution of K-strategists to the decomposition of native SOM. Sucrose addition with N significantly accelerated mineralization of native SOM, whereas mineral N added with plant residues accelerated decomposition of plant residues. This supports the microbial mining theory in terms of N limitation. Sucrose addition with N was accompanied by accelerated microbial growth, increased activities of β-glucosidase and cellobiohydrolase, and decreased activities of xylanase and leucine amino peptidase. This indicated an increased contribution of r-strategists to the PE and to decomposition of cellulose but the decreased hemicellulolytic and proteolytic activities. Thus, the acceleration of the C cycle was primed by exogenous organic C and was controlled by N. This confirms the stoichiometric decomposition theory. Both K- and r-strategists were beneficial for priming effects, with an increasing contribution of K-selected species under N limitation. Thus, the priming phenomenon described in 'microbial N mining' theory can be ascribed to K-strategists. In contrast, 'stoichiometric decomposition' theory, that is, accelerated OM mineralization due to balanced microbial growth, is explained by domination of r-strategists.
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