Microbial mechanisms of C/N/S geochemical cycling during low-water-level sediment remediation in urban rivers

环境修复 自行车 环境科学 沉积物 环境化学 水文学(农业) 环境工程 地质学 化学 生态学 污染 地理 地貌学 林业 岩土工程 生物
作者
Wenlong Chen,Min Zhang,Jianguo Wang,Wei-Jie Huang,Qiong Wu,Xiaoping Zhu,Ning Li,Qian Wu,Wei Guo,Jun Chen
出处
期刊:Journal of Environmental Management [Elsevier]
卷期号:359: 120962-120962 被引量:4
标识
DOI:10.1016/j.jenvman.2024.120962
摘要

Low-water-level regulation has been effectively implemented in the restoration of urban river sediments in Guangzhou City, China. Further investigation is needed to understand the microbial mechanisms involved in pollutant degradation in low-water-level environments. This study examined sediment samples from nine rivers, including low-water-level rivers (LW), tidal waterways (TW), and enclosed rivers (ER). Metagenomic high-throughput sequencing and the Diting pipeline were utilized to investigate the microbial mechanisms involved in sediment C/N/S geochemical cycling during low-water-level regulation. The results reveal that the degree of pollution in LW sediment is lower compared to TW and ER sediment. LW sediment exhibits a higher capacity for pollutant degradation and elimination of black, odorous substances due to its stronger microbial methane oxidation, nitrification, denitrification, anammox, and oxidation of sulfide, sulfite, and thiosulfate. Conversely, TW and ER sediment showcase greater microbial methanogenesis, anaerobic fermentation, and sulfide generation abilities, leading to the persistence of black, odorous substances. Factors such as grit and silt content, nitrate, and ammonia concentrations impacted microbial metabolic pathways. Low-water-level regulation improved the micro-environment for functional microbes, facilitating pollutant removal and preventing black odorous substance accumulation. These findings provide insights into the microbial mechanisms underlying low-water-level regulation technology for sediment restoration in urban rivers.
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