globalchange  > 气候变化事实与影响
DOI: 10.1128/AEM.02251-18
WOS记录号: WOS:000463407200007
论文题名:
Historical Nitrogen Deposition and Straw Addition Facilitate the Resistance of Soil Multifunctionality to Drying-Wetting Cycles
作者: Luo, Gongwen; Wang, Tingting; Li, Kaisong; Li, Ling; Zhang, Junwei; Guo, Shiwei; Ling, Ning; Shen, Qirong
通讯作者: Ling, Ning
刊名: APPLIED AND ENVIRONMENTAL MICROBIOLOGY
ISSN: 0099-2240
EISSN: 1098-5336
出版年: 2019
卷: 85, 期:8
语种: 英语
英文关键词: environmental change ; microbial functions ; multifunctionality ; nitrogen deposition ; resistance ; straw addition
WOS关键词: MICROBIAL COMMUNITIES ; ECOSYSTEM MULTIFUNCTIONALITY ; FUNGAL COMMUNITY ; BIOCHEMICAL-PROPERTIES ; BACTERIAL COMMUNITIES ; REWETTING FREQUENCY ; CLIMATE-CHANGE ; LAND-USE ; CARBON ; DIVERSITY
WOS学科分类: Biotechnology & Applied Microbiology ; Microbiology
WOS研究方向: Biotechnology & Applied Microbiology ; Microbiology
英文摘要:

Climate change is predicted to alter precipitation and drought patterns, which has become a global concern as evidence accumulates that it will affect ecosystem services. Disentangling the ability of soil multifunctionality to withstand this stress (multifunctionality resistance) is a crucial topic for assessing the stability and adaptability of agroecosystems. In this study, we explored the effects of nutrient addition on multifunctionality resistance to drying-wetting cycles and evaluated the importance of microbial functional capacity (characterized by the abundances of genes involved in carbon, nitrogen and phosphorus cycles) for this resistance. The multifunctionality of soils treated with nitrogen (N) and straw showed a higher resistance to drying-wetting cycles than did nonamended soils. Microbial functional capacity displayed a positive linear relationship with multifunctionality resistance. Random forest analysis showed that the abundances of the archeal arnoA (associated with nitrification) and nosZ and narG (denitrification) genes were major predictors of multifunctionality resistance in soils without straw addition. In contrast, major predictors of multifunctionality resistance in straw amended soils were the abundances of the GH51 (xylan degradation) and fungcbhIF (cellulose degradation) genes. Structural equation modeling further demonstrated the large direct contribution of carbon (C) and N cycling-related gene abundances to multifunctionality resistance. The modeling further elucidated the positive effects of microbial functional capacity on this resistance, which was mediated potentially by a high soil fungus/bacterium ratio, dissolved organic C content, and low pH. The present work suggests that nutrient management of agroecosystems can buffer negative impacts on ecosystem functioning caused by a climate change-associated increase in drying-wetting cycles via enriching functional capacity of microbial communities.


IMPORTANCE Current climate trends indicate an increasing frequency of drying-wetting cycles. Such cycles are severe environmental perturbations and have received an enormous amount of attention. Prediction of ecosystem's stability and adaptability requires a better mechanistic understanding of the responses of microbially mediated C and nutrient cycling processes to external disturbance. Assessment of this stability and adaptability further need to disentangle the relationships between functional capacity of soil microbial communities and the resistance of multifunctionality. Study of the physiological responses and community reorganization of soil microbes in response to stresses requires large investments of resources that vary with the management history of the system. Our study provides evidence that nutrient managements on agroecosystems can be expected to buffer the impacts of progressive climate change on ecosystem functioning by enhancing the functional capacity of soil microbial communities, which can serve as a basis for field studies.


Citation statistics:
资源类型: 期刊论文
标识符: http://119.78.100.158/handle/2HF3EXSE/132810
Appears in Collections:气候变化事实与影响

Files in This Item:

There are no files associated with this item.


作者单位: Nanjing Agr Univ, Jiangsu Collaborat Innovat Ctr Solid Organ Waste, Jiangsu Prov Key Lab Solid Organ Waste Utilizat, Nanjing, Jiangsu, Peoples R China

Recommended Citation:
Luo, Gongwen,Wang, Tingting,Li, Kaisong,et al. Historical Nitrogen Deposition and Straw Addition Facilitate the Resistance of Soil Multifunctionality to Drying-Wetting Cycles[J]. APPLIED AND ENVIRONMENTAL MICROBIOLOGY,2019-01-01,85(8)
Service
Recommend this item
Sava as my favorate item
Show this item's statistics
Export Endnote File
Google Scholar
Similar articles in Google Scholar
[Luo, Gongwen]'s Articles
[Wang, Tingting]'s Articles
[Li, Kaisong]'s Articles
百度学术
Similar articles in Baidu Scholar
[Luo, Gongwen]'s Articles
[Wang, Tingting]'s Articles
[Li, Kaisong]'s Articles
CSDL cross search
Similar articles in CSDL Cross Search
[Luo, Gongwen]‘s Articles
[Wang, Tingting]‘s Articles
[Li, Kaisong]‘s Articles
Related Copyright Policies
Null
收藏/分享
所有评论 (0)
暂无评论
 

Items in IR are protected by copyright, with all rights reserved, unless otherwise indicated.