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生态学杂志 ›› 2026, Vol. 45 ›› Issue (8): 2758-2768.doi: 10.13292/j.1000-4890.202608.018

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电缆细菌参与生物地球化学循环和水环境修复的研究进展

周颖1,2,熊心妍1,2,张弛1,2*   

  1. 1河海大学材料科学与工程学院, 江苏常州 213200; 2河海大学环境学院, 南京 210024)

  • 出版日期:2026-08-10 发布日期:2026-08-20

Research progress on the role of cable bacteria in biogeochemical cycling and water environment restoration.

ZHOU Ying1,2, XIONG Xinyan1,2, ZHANG Chi1,2*   

  1. (1College of Materials Science and Engineering, Hohai University, Changzhou 213200, Jiangsu, China; 2College of Environment, Hohai University, Nanjing 210024, China).

  • Online:2026-08-10 Published:2026-08-20

摘要: 电缆细菌自2012年于沉积物中被发现,因其具备厘米尺度的电流产生与传输能力而备受关注。电缆细菌广泛分布于全球海洋与淡水系统中,电子供体(硫化物)和受体(氧气)的获得是它们生存的关键限制因素,盐度则影响其种类组成与多样性。电缆细菌可以跨越好氧区和硫化区,通过独特的生电硫氧化过程(e-SOx)充当导体传递电子,实现氧化与还原反应的空间分离,形成亚含氧区,在驱动硫、铁、钙、锰、氮、磷等元素的生物地球化学循环中发挥重要作用。在水环境修复中,电缆细菌在参与缓解水体缺氧与富营养化,促进有毒有害污染物降解与重金属去除,实现温室气体减排,改善水生植物根际环境等方面展现出多重潜力,还能与微生物电化学通气管、微生物燃料电池和曝气等其他技术耦合以提升修复效率。本文系统归纳电缆细菌在全球水环境中的分布及影响其生存和组成的主要环境因素,分析电缆细菌在沉积物中重要元素生物地球化学循环中发挥的基本作用,讨论电缆细菌在水污染控制和水生态环境修复中的实际探索,探讨其在水环境修复中的关键发现、机遇和挑战,并提出未来的研究方向。


关键词: 电缆细菌, 生电硫氧化, 水污染控制, 生物地球化学循环, 水环境修复

Abstract: Since the discovery of cable bacteria in sediments in 2012, they have attracted considerable attention for their remarkable capacity in mediating centimeter-scale long-distance electron transport. They are globally distributed in marine and freshwater. Their survival depends on the access to electron donors (sulfides) and acceptors (oxygen), and their species composition and diversity is determined by salinity. Cable bacteria can bridge oxic and sulfidic zones, functioning as biological conductors through electrogenic sulfur oxidation (e-SOx) to spatially separate oxidation and reduction reactions, create suboxic zones, and drive the biogeochemical cycling of key elements, including sulfur, iron, calcium, manganese, nitrogen, and phosphorus. In the restoration of aquatic ecosystems, cable bacteria show considerable potential to alleviate hypoxia and eutrophication, degrade toxic and hazardous pollutants, facilitate heavy metal removal, mitigate greenhouse gas emissions, and improve the rhizosphere conditions of aquatic plants. They can also be coupled with other technologies such as microbial electrochemical snorkels, microbial fuel cells, and aeration, to enhance restoration efficiency. In this review, we systematically summarized the distribution of cable bacteria in aquatic ecosystems and the major environmental factors affecting their survival and composition, analyzed the fundamental role of cable bacteria in the biogeochemical cycling of key elements in sediments, and discussed the exploration of cable bacteria in pollution control and aquatic ecosystem remediation. We highlighted the key discoveries, opportunities, and challenges of their role in aquatic environment remediation, and proposed a constructive outlook.


Key words: cable bacteria, electrogenic sulfur oxidation, water pollution control, biogeochemical cycling, water environment restoration