Spatial patterns of soil and ecosystem respiration regulated by biological and environmental variables along a precipitation gradient in semi-arid grasslands in China
Precipitation is a key environmental factor in determining ecosystem structure and function. Knowledge of how soil and ecosystem respiration responds to climate change (e.g., precipitation) and human activities (e.g., grazing or clipping) is crucial for assessing the impacts of climate change on ter...
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Published in | Ecological research Vol. 31; no. 4; pp. 505 - 513 |
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Main Authors | , , , , , , , , , , , , |
Format | Journal Article |
Language | English |
Published |
Tokyo
Springer Japan
01.07.2016
Blackwell Publishing Ltd |
Subjects | |
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Abstract | Precipitation is a key environmental factor in determining ecosystem structure and function. Knowledge of how soil and ecosystem respiration responds to climate change (e.g., precipitation) and human activities (e.g., grazing or clipping) is crucial for assessing the impacts of climate change on terrestrial ecosystems and for improving model simulations and predictions of future global carbon (C) cycling in response to human activities. In this study, we examined the spatial patterns of soil and ecosystem respiration along a precipitation gradient from 167.7 to 398.1 mm in a semi-arid grassland. Our results showed that soil and ecosystem respiration increased linearly with increasing mean annual precipitation. The trends were similar to those of shoot biomass, litter and soil total C content along the precipitation gradient. Our results indicated that precipitation was the primary controlling factor in determining the spatial pattern of soil and ecosystem respiration in semi-arid grasslands in China. The linear/nonlinear relationships in this study describing the variations of the ecosystem carbon process with precipitation can be useful for model development, parameterization and validation at the regional scale to improve predictions of how carbon processes in grasslands respond to climate change, land use and grassland management. |
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AbstractList | Precipitation is a key environmental factor in determining ecosystem structure and function. Knowledge of how soil and ecosystem respiration responds to climate change (e.g., precipitation) and human activities (e.g., grazing or clipping) is crucial for assessing the impacts of climate change on terrestrial ecosystems and for improving model simulations and predictions of future global carbon (C) cycling in response to human activities. In this study, we examined the spatial patterns of soil and ecosystem respiration along a precipitation gradient from 167.7 to 398.1 mm in a semi-arid grassland. Our results showed that soil and ecosystem respiration increased linearly with increasing mean annual precipitation. The trends were similar to those of shoot biomass, litter and soil total C content along the precipitation gradient. Our results indicated that precipitation was the primary controlling factor in determining the spatial pattern of soil and ecosystem respiration in semi-arid grasslands in China. The linear/nonlinear relationships in this study describing the variations of the ecosystem carbon process with precipitation can be useful for model development, parameterization and validation at the regional scale to improve predictions of how carbon processes in grasslands respond to climate change, land use and grassland management. Abstract Precipitation is a key environmental factor in determining ecosystem structure and function. Knowledge of how soil and ecosystem respiration responds to climate change (e.g., precipitation) and human activities (e.g., grazing or clipping) is crucial for assessing the impacts of climate change on terrestrial ecosystems and for improving model simulations and predictions of future global carbon (C) cycling in response to human activities. In this study, we examined the spatial patterns of soil and ecosystem respiration along a precipitation gradient from 167.7 to 398.1 mm in a semi‐arid grassland. Our results showed that soil and ecosystem respiration increased linearly with increasing mean annual precipitation. The trends were similar to those of shoot biomass, litter and soil total C content along the precipitation gradient. Our results indicated that precipitation was the primary controlling factor in determining the spatial pattern of soil and ecosystem respiration in semi‐arid grasslands in China. The linear/nonlinear relationships in this study describing the variations of the ecosystem carbon process with precipitation can be useful for model development, parameterization and validation at the regional scale to improve predictions of how carbon processes in grasslands respond to climate change, land use and grassland management. Precipitation is a key environmental factor in determining ecosystem structure and function. Knowledge of how soil and ecosystem respiration responds to climate change (e.g., precipitation) and human activities (e.g., grazing or clipping) is crucial for assessing the impacts of climate change on terrestrial ecosystems and for improving model simulations and predictions of future global carbon (C) cycling in response to human activities. In this study, we examined the spatial patterns of soil and ecosystem respiration along a precipitation gradient from 167.7 to 398.1 mm in a semi-arid grassland. Our results showed that soil and ecosystem respiration increased linearly with increasing mean annual precipitation. The trends were similar to those of shoot biomass, litter and soil total C content along the precipitation gradient. Our results indicated that precipitation was the primary controlling factor in determining the spatial pattern of soil and ecosystem respiration in semi-arid grasslands in China. The linear/nonlinear relationships in this study describing the variations of the ecosystem carbon process with precipitation can be useful for model development, parameterization and validation at the regional scale to improve predictions of how carbon processes in grasslands respond to climate change, land use and grassland management. |
Author | Yuan, Wenping Zhang, Haicheng Liu, Wei Chen, Yang Fu, Yang Xia, Jiangzhou Cai, Wenwen Shi, Huiqiu Xu, Wenfang Liu, Dan Li, Xianglan Hou, Longyu Li, Linghao |
Author_xml | – sequence: 1 givenname: Wenfang surname: Xu fullname: Xu, Wenfang organization: State Key Laboratory of Cryospheric Sciences, Cold and Arid Regions Environmental and Engineering Research Institute, Chinese Academy of Sciences, University of Chinese Academy of Sciences – sequence: 2 givenname: Xianglan surname: Li fullname: Li, Xianglan organization: College of Global Change and Earth System Science, Beijing Normal University – sequence: 3 givenname: Wei surname: Liu fullname: Liu, Wei organization: State Key Laboratory of Vegetation and Environmental Change, Institute of Botany, Chinese Academy of Sciences – sequence: 4 givenname: Linghao surname: Li fullname: Li, Linghao email: llinghao@ibcas.ac.cn organization: State Key Laboratory of Vegetation and Environmental Change, Institute of Botany, Chinese Academy of Sciences – sequence: 5 givenname: Longyu surname: Hou fullname: Hou, Longyu organization: Department of Grassland Science, China Agricultural University – sequence: 6 givenname: Huiqiu surname: Shi fullname: Shi, Huiqiu organization: State Key Laboratory of Vegetation and Environmental Change, Institute of Botany, Chinese Academy of Sciences – sequence: 7 givenname: Jiangzhou surname: Xia fullname: Xia, Jiangzhou organization: State Key Laboratory of Earth Surface Processes and Resource Ecology, Beijing Normal University – sequence: 8 givenname: Dan surname: Liu fullname: Liu, Dan organization: State Key Laboratory of Earth Surface Processes and Resource Ecology, Beijing Normal University – sequence: 9 givenname: Haicheng surname: Zhang fullname: Zhang, Haicheng organization: State Key Laboratory of Earth Surface Processes and Resource Ecology, Beijing Normal University – sequence: 10 givenname: Yang surname: Chen fullname: Chen, Yang organization: State Key Laboratory of Earth Surface Processes and Resource Ecology, Beijing Normal University – sequence: 11 givenname: Wenwen surname: Cai fullname: Cai, Wenwen organization: State Key Laboratory of Earth Surface Processes and Resource Ecology, Beijing Normal University – sequence: 12 givenname: Yang surname: Fu fullname: Fu, Yang organization: State Key Laboratory of Earth Surface Processes and Resource Ecology, Beijing Normal University – sequence: 13 givenname: Wenping surname: Yuan fullname: Yuan, Wenping email: yuanwpcn@126.com organization: State Key Laboratory of Cryospheric Sciences, Cold and Arid Regions Environmental and Engineering Research Institute, Chinese Academy of Sciences, State Key Laboratory of Earth Surface Processes and Resource Ecology, Beijing Normal University |
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Snippet | Precipitation is a key environmental factor in determining ecosystem structure and function. Knowledge of how soil and ecosystem respiration responds to... Abstract Precipitation is a key environmental factor in determining ecosystem structure and function. Knowledge of how soil and ecosystem respiration responds... |
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SubjectTerms | Behavioral Sciences Biomass Biomedical and Life Sciences Carbon Climate change Ecology Ecosystem respiration Ecosystem structure Ecosystems Environmental factors Environmental impact Evolutionary Biology Forestry Grassland management Grasslands Land use Life Sciences Original Article Plant Sciences Precipitation Precipitation gradient Respiration Soil respiration Soils Terrestrial ecosystems Zoology |
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Title | Spatial patterns of soil and ecosystem respiration regulated by biological and environmental variables along a precipitation gradient in semi-arid grasslands in China |
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