GSTDTAP  > 气候变化
DOI10.1111/gcb.14557
Microbes drive global soil nitrogen mineralization and availability
Li, Zhaolei1; Tian, Dashuan1; Wang, Bingxue1; Wang, Jinsong1; Wang, Song1,2; Chen, Han Y. H.3; Xu, Xiaofeng4; Wang, Changhui5; He, Nianpeng1,2; Niu, Shuli1,2
2019-03-01
发表期刊GLOBAL CHANGE BIOLOGY
ISSN1354-1013
EISSN1365-2486
出版年2019
卷号25期号:3页码:1078-1088
文章类型Article
语种英语
国家Peoples R China; Canada; USA
英文摘要

Soil net nitrogen mineralization rate (N-min), which is critical for soil nitrogen availability and plant growth, is thought to be primarily controlled by climate and soil physical and/or chemical properties. However, the role of microbes on regulating soil N-min has not been evaluated on the global scale. By compiling 1565 observational data points of potential net N-min from 198 published studies across terrestrial ecosystems, we found that N-min significantly increased with soil microbial biomass, total nitrogen, and mean annual precipitation, but decreased with soil pH. The variation of N-min was ascribed predominantly to soil microbial biomass on global and biome scales. Mean annual precipitation, soil pH, and total soil nitrogen significantly influenced N-min through soil microbes. The structural equation models (SEM) showed that soil substrates were the main factors controlling N-min when microbial biomass was excluded. Microbe became the primary driver when it was included in SEM analysis. SEM with soil microbial biomass improved the N-min prediction by 19% in comparison with that devoid of soil microbial biomass. The changes in N-min contributed the most to global soil NH4+-N variations in contrast to climate and soil properties. This study reveals the complex interactions of climate, soil properties, and microbes on N-min and highlights the importance of soil microbial biomass in determining N-min and nitrogen availability across the globe. The findings necessitate accurate representation of microbes in Earth system models to better predict nitrogen cycle under global change.


英文关键词croplands dominant factor microbial biomass natural ecosystems nitrogen availability nitrogen mineralization soil properties
领域气候变化 ; 资源环境
收录类别SCI-E
WOS记录号WOS:000459456700024
WOS关键词ORGANIC-MATTER MINERALIZATION ; TEMPERATURE SENSITIVITY ; ENZYME-ACTIVITIES ; N MINERALIZATION ; CLIMATE-CHANGE ; CARBON-CYCLE ; BIOMASS ; RESPIRATION ; RESPONSES ; PH
WOS类目Biodiversity Conservation ; Ecology ; Environmental Sciences
WOS研究方向Biodiversity & Conservation ; Environmental Sciences & Ecology
引用统计
文献类型期刊论文
条目标识符http://119.78.100.173/C666/handle/2XK7JSWQ/17032
专题气候变化
资源环境科学
作者单位1.Chinese Acad Sci, Inst Geog Sci & Nat Resources Res, Key Lab Ecosyst Network Observat & Modeling, Beijing, Peoples R China;
2.Univ Chinese Acad Sci, Coll Resources & Environm, Beijing, Peoples R China;
3.Lakehead Univ, Fac Nat Resources Management, Thunder Bay, ON, Canada;
4.San Diego State Univ, Dept Biol, San Diego, CA 92182 USA;
5.Chinese Acad Sci, Inst Bot, State Key Lab Vegetat & Environm Change, Beijing, Peoples R China
推荐引用方式
GB/T 7714
Li, Zhaolei,Tian, Dashuan,Wang, Bingxue,et al. Microbes drive global soil nitrogen mineralization and availability[J]. GLOBAL CHANGE BIOLOGY,2019,25(3):1078-1088.
APA Li, Zhaolei.,Tian, Dashuan.,Wang, Bingxue.,Wang, Jinsong.,Wang, Song.,...&Niu, Shuli.(2019).Microbes drive global soil nitrogen mineralization and availability.GLOBAL CHANGE BIOLOGY,25(3),1078-1088.
MLA Li, Zhaolei,et al."Microbes drive global soil nitrogen mineralization and availability".GLOBAL CHANGE BIOLOGY 25.3(2019):1078-1088.
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