Linkages of stoichiometric imbalances to soil microbial respiration with increasing nitrogen addition: Evidence from a long-term grassland experiment

被引:153
作者
Yuan, Xiaobo [1 ]
Niu, Decao [1 ]
Gherardi, Laureano A. [2 ,3 ]
Liu, Yanbin [1 ]
Wang, Ying [1 ]
Elser, James J. [4 ,5 ]
Fu, Hua [1 ]
机构
[1] Lanzhou Univ, State Key Lab Grassland Agroecosyst,Coll Pastoral, Key Lab Grassland Livestock Ind Innovat,Minist Ed, Minist Agr & Rural Affairs,Engn Res Ctr Grassland, Lanzhou 730020, Gansu, Peoples R China
[2] Arizona State Univ, Sch Life Sci, Tempe, AZ 85287 USA
[3] Arizona State Univ, Global Drylands Ctr, Tempe, AZ 85287 USA
[4] Univ Montana, Flathead Lake Biol Stn, Polson, MT 59860 USA
[5] Univ Montana, Div Biol Sci, Missoula, MT 59812 USA
基金
国家重点研发计划; 中国国家自然科学基金;
关键词
Atmospheric N deposition; Stoichiometric imbalance; Ecoenzyme stoichiometry; Homeostasis; Nutrient limitation; Microbial respiration; CARBON USE EFFICIENCY; ECOENZYMATIC STOICHIOMETRY; PHOSPHORUS LIMITATION; NUTRIENT ACQUISITION; ENZYME-ACTIVITY; RESPONSES; BIOMASS; PLANT; DEPOSITION; COMMUNITIES;
D O I
10.1016/j.soilbio.2019.107580
中图分类号
S15 [土壤学];
学科分类号
0903 ; 090301 ;
摘要
Rapidly increasing atmospheric nitrogen (N) deposition has substantially altered resource availability and the stoichiometry of microbial biomass in terrestrial ecosystems. However, variations of microbial biomass stoichiometry are not paralleled by changes in the stoichiometry of available resources, resulting in stoichiometric imbalances that constrain microbial growth and nutrient cycling and thus affect carbon (C) cycling. How soil microbes cope with stoichiometric imbalances and the impacts of their responses on microbial-mediated C cycling still remain a puzzle. To help address this puzzle, we performed an eight-year field manipulative experiment with six N addition levels in a semiarid grassland in northern China. We measured soil available nutrients, nutrients within microbial biomass, and the potential activity of ecoenzymes related to microbial nutrient acquisition. Our results showed that resource stoichiometric imbalances, including C:N, C:P, and N:P, responded non-linearly to N addition. Specifically, stochiometric imbalances increased up to intermediate doses and then decreased. These nonlinear responses implied that increasing N addition enhanced microbial C limitation rather than P limitation. Data on microbial adaptive responses to resource stoichiometric imbalances revealed that, under C limitation, soil microbial communities regulated their ecoenzyme production and threshold element ratios (TER) to maintain stoichiometric homeostasis, supporting the consumer-driven nutrient recycling theory (CNR). Using piecewise structural equation modeling (SEM), we found that the N-induced reduction of soil microbial respiration was directly linked to increasing TER but was indirectly linked to soil enzyme stoichiometry and microbial biomass stoichiometry. These results suggest that coordinated regulation of microbial biomass stoichiometry and soil enzyme stoichiometry lead to a higher C use efficiency (CUE) and a lower nutrient use efficiency, further lowering microbial respiration. These results highlight the importance of stoichiometric imbalance in regulating microbial respiration and may help project how stoichiometric changes induced by global N deposition control terrestrial C and nutrient flows.
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页数:11
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