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应用生态学报 ›› 2026, Vol. 37 ›› Issue (5): 1708-1716.doi: 10.13287/j.1001-9332.202605.033

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电缆细菌驱动植物根际电化学耦合与元素循环研究进展

郭堤*, 刘畅, 陈颐婷   

  1. 延安大学石油工程与环境工程学院, 陕西延安 716000
  • 收稿日期:2026-01-19 接受日期:2026-03-28 出版日期:2026-05-18 发布日期:2026-11-18
  • 通讯作者: * E-mail: guodi_123@126.com
  • 作者简介:郭 堤, 男, 1992年生, 博士研究生。主要从事土壤修复、环境化学、植物生理、环境微生物研究。E-mail: guodi_123@126.com
  • 基金资助:
    陕西省教育厅一般专项科学研究计划项目(24JK0722)和延安市科技计划项目(2025SLZDCY-104)

Cable bacteria drive electrochemical coupling and elemental cycling in rhizosphere: A review.

GUO Di*, LIU Chang, CHEN Yiting   

  1. School of Petroleum and Environment Engineering, Yan’an University, Yan’an 716000, Shaanxi, China
  • Received:2026-01-19 Accepted:2026-03-28 Online:2026-05-18 Published:2026-11-18

摘要: 电缆细菌是一类具有跨厘米级长距离电子传递(LDET)能力的丝状导电微生物,作为环境中的“生物电缆”,在植物根际微环境中扮演着关键的地球化学工程师角色。它们通过构建独特的生物电化学网络,连接根系泌氧(ROL)与深层硫化物氧化,驱动了一系列联动的氧化还原反应。本文综述了电缆细菌在根际的定殖规律及其与植物的互作机制:LDET不仅能高效驱动硫化物解毒与铁氧化物屏障的原位形成,还深刻耦合了硫-铁-磷循环,显著降低了稻田等生态系统的甲烷排放,并提升了磷的固定与截留效率。电缆细菌与植物互作在有机污染物降解、重金属稳定化、退化生态系统修复及温室气体减排等多方面具有较大的应用潜力。本文将为深化理解“微生物-植物”电共生理论并将其转化为切实可行的生态工程策略(如根际修复、温室气体减排)提供新的研究思路与理论参考。

关键词: 电缆细菌, 植物, 硫-铁-磷耦合循环, 生物电化学互作, 根际修复

Abstract: Cable bacteria are a type of filamentous conductive microorganisms with the capacity of centimeter level long-range electron transfer (LDET). As a “biological cable” in the environment, they play a key role as geochemi-cal engineers in the rhizosphere microenvironment. They also drive a series of interconnected redox reactions by constructing a unique bioelectrochemical network that connects root oxygen secretion (ROL) with deep sulfide oxidation. We reviewed the colonization patterns of cable bacteria in the rhizosphere and their interactions with plants. LDET could efficiently drive the in-situ formation of sulfide detoxification and iron oxide barriers, deeply couple the sulfur iron phosphorus cycle, significantly reduce methane emissions from ecosystems such as rice paddies, and improve phosphorus fixation and retention efficiency. The interaction between cable bacteria and plants has great potential for applications in organic pollutant degradation, heavy metal stabilization, ecosystem restoration, and greenhouse gas emission reduction. This review would provide new research ideas and theoretical references for deepening the understanding of microbial-plant symbiosis and transforming it into ecological engineering strategies, such as rhizosphere remediation and greenhouse gas emission reduction.

Key words: cable bacteria, plant, sulfur-iron-phosphorus coupling, bioelectrochemical interaction, rhizoreme-diation