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Heavy metal contamination threats carbon sequestration of paddy soils with an attenuated microbial anabolism

文献类型: 外文期刊

作者: Xiong, Li 1 ; Drosos, Marios 5 ; Jiao, Min 6 ; Sun, Jianfei 7 ; Li, Guilong 1 ; He, Longxin 1 ; Li, Fan 1 ; Liu, Cheng 8 ; Scopa, Antonio 5 ; Xia, Wenjian 1 ; Shao, Caihong 1 ; Liu, Zengbing 1 ;

作者机构: 1.Jiangxi Acad Agr Sci, Inst Soil & Fertilizer & Resources & Environm, Nanchang 330200, Peoples R China

2.Natl Engn & Technol Res Ctr Red Soil Improvement, Nanchang 330200, Peoples R China

3.Minist Agr & Rural Affairs, Key Lab Crop Ecophysiol & Farming Syst Middle & Lo, Nanchang 330200, Peoples R China

4.Jiangxi Prov Key Lab Arable Land Improvement & Qua, Nanchang 330200, Peoples R China

5.Univ Basilicata, Dept Agr Forestry Food & Environm Sci, Viale Ateneo Lucano 10, I-85100 Potenza, Italy

6.Agr Technol Extens Ctr Jiangxi Prov, Nanchang 330046, Peoples R China

7.Minist Ecol & Environm Peoples Republ China, Nanjing Inst Environm Sci, Nanjing 210042, Peoples R China

8.Zhejiang Univ Sci & Technol, Sch Environm & Nat Resources, Hangzhou 310023, Peoples R China

关键词: Soil organic carbon; Microbial carbon use efficiency; Microbial residues; Heavy metal pollution; Rice paddies

期刊名称:GEODERMA ( 影响因子:6.6; 五年影响因子:7.3 )

ISSN: 0016-7061

年卷期: 2025 年 461 卷

页码:

收录情况: SCI

摘要: As a global environmental concern, heavy metal pollution significantly impacts soil organic carbon (SOC) dynamics. Nevertheless, the microbial mechanisms governing SOC persistence under heavy metal contamination remain unclear, as previous research primarily focused on microbial catabolism. This study elucidated SOC variation induced by heavy metal contamination from the perspective of microbial anabolism, a key contributor to SOC sequestration according to recent theory. Herein a field survey was conducted at 13 sampling sites in polluted rice paddies, determining both SOC content and key microbial parameters. Nemerow index (a comprehensive index of pollution level) ranged from 0.48 to 2.93, with cadmium and copper as the primary contaminants. SOC content ranged between 14.56 and 23.97g kg(-1) across sampling sites and showed a negative relationship with nemerow index (R-2 = 0.46, P < 0.001). Variation partitioning and random forest analyses indicated that SOC reduction was primarily driven by the combined effects of microbial factors and heavy metal pollution, with dominant role of microbial factors. Nemerow index negatively correlated with microbial C use efficiency (CUE) (R-2 = 0.42, P < 0.001) and microbial biomass turnover (R-2 = 0.12, P = 0.017). Structural equation modeling further suggested that heavy metal pollution reduced SOC by decreasing microbial biomass carbon (MBC) formation and microbial residue accumulation through negative effects on microbial CUE and soil nitrogen availability. Collectively, our research provided robust evidences that heavy metal pollution could threat C sequestration of paddy soils by attenuating microbial anabolism with reduced accumulation of microbial-derived carbon.

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