数字农科院2.0

Positive rhizospheric effects on soil carbon are primarily controlled by abiotic rather than biotic factors across global agroecosystems

文献类型: 外文期刊

作者: Ren T.;Tang S.;Han T.;Wang B.;Zhou Z.;Liang G.;Li Y.;Cai A.

作者机构:

关键词: Carbon cycling;Dissolved organic carbon;Rhizosphere effect;Soil microbial biomass carbon;Soil microorganism;Soil organic carbon

期刊名称: Geoderma

ISSN: 0016-7061

年卷期: 2023 年 430 卷

页码:

收录情况: SCIE(2023版) ; ; EI(2023版)

摘要: The carbon (C) that surrounds the rhizosphere serves as the nexus between soil, plants, and atmosphere. Although it is known that rhizospheric C is sensitive to soil management and environmental changes, the influences of crop roots on rhizospheric C across global agroecosystems have not yet been systematically quantified, which limits our understanding of the terrestrial C cycle. A comprehensive meta-analysis including 748, 294, and 695 paired data of soil organic carbon (SOC), dissolved organic carbon (DOC), and soil microbial biomass carbon (SMBC) in rhizosphere and corresponding bulk soil from 154 papers, together with 25 biotic and abiotic variables, was conducted to quantify the effects of the rhizosphere on soil carbon across global agroecosystems. We found that the rhizosphere had greater SOC, DOC, and SMBC compared to the bulk soil, with 7.0%, 34.6%, and 26.1%, respectively. Rhizospheric effects on SOC and DOC varied significantly with different climate zones, aridity indices, and crop types; however, this phenomenon did not occur with SMBC. Soil available nutrients were the main driving factor behind rhizospheric SOC (relative influence of 37.0%), whereas SMBC played a small role in regulating the rhizosphere DOC, aside from the aridity index, crop type, initial soil C, and soil pH. The soil microbial structure, diversity, and function were not critical for regulating rhizospheric C. Path analysis revealed an intercorrelated network involving climate, physicochemical soil properties, and SMBC to determine the rhizospheric impacts on SOC and DOC. Understanding the size and driving factors of the rhizospheric effects on soil C is useful for determining how crop selection might affect broader C and nutrient cycling in agroecosystems. © 2023 The Authors

分类号:

  • 相关文献

[1]The Importance of Impoundment interception in Simulating Riverine Dissolved Organic Carbon. Jiao Jiao Liu,Jun Zhi Liu,Xin Zhong Du,Ren Kui Guo,Zheng Duan,Bin Jie Yuan,Yong Qin Liu. 2024

[2]Temporal changes in soil organic carbon contents and delta C-13 values under long-term maize-wheat rotation systems with various soil and climate conditions. Tang, Xu,Ellert, Benjamin H.,Hao, Xiying,Nakonechny, Elaine,Ma, Yibing,Li, Jumei. 2012

[3]Soil extracellular enzymes drive soil carbon accumulation under elevated CO2. Zhang, Yixuan,Sun, Siyi,Zhou, Jiacong,Van Groenigen, Kees Jan,Delgado-Baquerizo, Manuel,Ma, Ying,Moorhead, Daryl L.,Hungate, Bruce A.,Smith, Pete,Terrer, Cesar,Liu, Ji,Sinsabaugh, Robert L.,Guo, Liping,Ochoa-Hueso, Raul,Power, Sally A.,Eivind Olesen, Jorgen,Luo, Yiqi,Cao, Junji,Jiang, Mingkai,Feng, Zhaozhong,Luo, Min,Chen, Ji. 2026

[4]Maize-soybean intercropping facilitates chemical and microbial transformations of phosphorus fractions in a calcareous soil. Jin Liu,Yang Li,Chaoqun Han,Dongling Yang,Jianjun Yang,Barbara J. Cade-Menun,Yuanquan Chen,Peng Sui. 2022

[5]Rhizosphere Effect Enhanced the Immobilization Efficiency of Mercapto-Palygorskite for Cd in Alkaline Soil: Mechanism from the Perspective of Microorganism. Zhang, Yu,Xu, Yingming,Liang, Xuefeng,Sun, Yuebing,Wang, Lin. 2024

[6]Long-term nickel exposure altered the bacterial community composition but not diversity in two contrasting agricultural soils. Li, Jing,Wang, Jun-Tao,Liu, Yu-Rong,He, Ji-Zheng,Li, Jing,Wang, Jun-Tao,Ma, Yi-Bing,Hu, Hang-Wei,He, Ji-Zheng.

[7]Field-based evidence for consistent responses of bacterial communities to copper contamination in two contrasting agricultural soils. Li, Jing,Wang, Jun-Tao,Liu, Yu-Rong,He, Ji-Zheng,Li, Jing,Wang, Jun-Tao,Ma, Yi-Bing,Hu, Hang-Wei,He, Ji-Zheng. 2015

[8]Changes in the activities of key enzymes and the abundance of functional genes involved in nitrogen transformation in rice rhizosphere soil under different aerated conditions. Chun mei XU,De shun XIAO,C. H.E.N. Song,C. H.U. Guang,L. I.U. Yuan-hui,ZHANG Xiu-fu,W. A.N.G. Dan-ying. 2023

[9]Response of maize yield and nitrogen recovery efficiency to nitrogen fertilizer application in field with various soil fertility. Hongqin Zou,Dejin Li,Keyu Ren,Lisheng Liu,Wenju Zhang,Yinghua Duan,Changai Lu. 2024

[10]Abundance and Diversity of RuBisCO Genes Responsible for CO2 Fixation in Arid Soils of Northwest China. Tang Zhi-Xi,Wei Wei,Lai Li-Ming,Fan Fen-Liang,Wan Yun-Fan. 2015

[11]Responses of soil mineral-associated and particulate organic carbon to carbon input: A meta-analysis. Futao Zhang,Xi Chen,Shuihong Yao,Yang Ye,Bin Zhang. 2022

[12]Enzymatic stoichiometry reveals phosphorus limitation-induced changes in the soil bacterial communities and element cycling: Evidence from a long-term field experiment. Jiwen Cui,Shuai Zhang,Xiya Wang,Xinpeng Xu,Chao Ai,Guoqing Liang,Ping Zhu,Wei Zhou. 2022

[13]Chronic drought decreased organic carbon content in topsoil greater than intense drought across grasslands in Northern China. Jaman M.S.,Yu Q.,Xu C.,Jamil M.,Ke Y.,Yang T.,Knapp A.K.,Wilkins K.,Collins S.L.,Griffin-Nolan R.J.,Luo Y.,Luo W.,Wu H.. 2024

[14]Peanut-cotton intercropping to enhance soil ecosystem multifunctionality: Roles of microbial keystone taxa, assembly processes, and C-cycling profiles. Zhang, Shijie,Han, Yingchun,Wang, Guoping,Feng, Lu,Lei, Yaping,Xiong, Shiwu,Yang, Beifang,Zhi, Xiaoyu,Xin, Minghua,Jiao, Yahui,Li, Xiao-Fei,Li, Yabing,Jiao, Zhen. 2025

[15]Lanthanum and cerium added to soil influence microbial carbon and nitrogen cycling genes. Song, Alin,Si, Zhiyuan,Xu, Duanyang,Wei, Buqing,Wang, Enzhao,Chong, Fayao,Fan, Fenliang. 2025

[16]Grazing-induced abiotic and resource changes drive distinct responses of soil bacterial and fungal community in temperate meadow steppe: Implications for carbon dynamics. Cuixia Jiang,Xiaoping Xin,Kai Xue,Zhigang Zhao,Weixing Liu,Haonan Guo,Feng Liu,Hui Li,Zihao Li,Yufan Si,Ruirui Yan. 2025

[17]Soil erosion accelerates carbon cycling as a response to carbon limitation in erosion-prone sloping cropland. Shi, Yulong,Li, Tingting,Zheng, Li,Jing, Xuekai,Li, Mengni,Hussain, Hafiz Athar,Zhang, Qingwen. 2025

[18]Conservation tillage and wheat straw managements improve soil organic carbon sequestration via calcium-mediated microbial communities and aggregate stability in Calcaric Cambisols. Zixuan Han,Shengping Li,Aurore Degré,Huizhou Gao,Fengjun Zheng,Xiaojun Song,Angyuan Jia,Xueping Wu. 2025

[19]Phosphorus Adsorption and Bioavailability in a Paddy Soil Amended with Pig Manure Compost and Decaying Rice Straw. Liang, Yongchao,Guo, Bin,Liang, Yongchao,Li, Zhaojun,Han, Fengxiang. 2009

[20]Buried straw layer plus plastic mulching improves soil organic carbon fractions in an arid saline soil from Northwest China. Huo, Long,Pang, Huancheng,Zhao, Yonggan,Wang, Jing,Lu, Chuang,Li, Yuyi.

作者其他论文 更多>>