
Chinese Journal of Applied Ecology ›› 2026, Vol. 37 ›› Issue (5): 1708-1716.doi: 10.13287/j.1001-9332.202605.033
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GUO Di*, LIU Chang, CHEN Yiting
Received:2026-01-19
Accepted:2026-03-28
Online:2026-05-18
Published:2026-11-18
GUO Di, LIU Chang, CHEN Yiting. Cable bacteria drive electrochemical coupling and elemental cycling in rhizosphere: A review.[J]. Chinese Journal of Applied Ecology, 2026, 37(5): 1708-1716.
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URL: https://www.cjae.net/EN/10.13287/j.1001-9332.202605.033
| [1] Pfeffer C, Larsen S, Song J, et al. Filamentous bacteria transport electrons over centimetre distances. Nature, 2012, 491: 218-221 [2] Xiong X, Li Y, Zhang C. Cable bacteria: Living electrical conduits for biogeochemical cycling and water environment restoration. Water Research, 2024, 253: 121345 [3] Ley P, Geelhoed JS, Vasquez-Cardenas D, et al. On the diversity, phylogeny and biogeography of cable bacteria. Frontiers in Microbiology, 2024, 15: 1485281 [4] Mahto KU, Das S. Electroactive biofilm communities in microbial fuel cells for the synergistic treatment of wastewater and bioelectricity generation. Critical Reviews in Biotechnology, 2025, 45: 434-453 [5] Wang Q, Zong K, Wang Y, et al. Seasonal and spatial characteristics of microbial community in intertidal wetlands: Aspect of microbial coupling. Process Safety and Environmental Protection, 2024, 188: 268-274 [6] 卢昌琛. 太湖藻类聚集区沉积物硫氧化菌分布及产电性能研究. 硕士论文. 南京: 南京师范大学, 2022 [7] Scholz VV, Meckenstock RU, Nielsen LP, et al. Cable bacteria reduce methane emissions from rice-vegetated soils. Nature Communications, 2020, 11: 1878 [8] Meysman FJR, Cornelissen R, Trashin S, et al. A highly conductive fibre network enables centimetre-scale electron transport in multicellular cable bacteria. Nature Communications, 2019, 10: 4120 [9] Scholz VV, Martin BC, Meyer R, et al. Cable bacteria at oxygen-releasing roots of aquatic plants: A widespread and diverse plant-microbe association. New Phytologist, 2021, 232: 2138-2151 [10] Wang Z, Digel L, Yuan Y, et al. Electrogenic sulfur oxidation mediated by cable bacteria and its ecological effects. Environmental Science and Ecotechnology, 2024, 20: 100371 [11] Scholz VV, Muller H, Koren K, et al. The rhizosphere of aquatic plants is a habitat for cable bacteria. FEMS Microbiology Ecology, 2019, 95: fiz062 [12] Müller H, Marozava S, Probst AJ, et al. Groundwater cable bacteria conserve energy by sulfur disproportiona-tion. The ISME Journal, 2020, 14: 623-634 [13] Rusyn I. Role of microbial community and plant species in performance of plant microbial fuel cells. Renewable and Sustainable Energy Reviews, 2021, 152: 111697 [14] Stevens E, Marco ML. Bacterial extracellular electron transfer in plant and animal ecosystems. FEMS Micro-biology Reviews, 2023, 47: fuad019 [15] Martin BC, Bougoure J, Ryan MH, et al. Oxygen loss from seagrass roots coincides with colonisation of sulphide-oxidising cable bacteria and reduces sulphide stress. The ISME Journal, 2019, 13: 707-719 [16] 陈柯江, 黄友达, 董美君, 等. 电缆细菌: 水生态系统中的“生物电缆”驱动元素循环与生态修复. 微生物学报, 2024, 64(12): 4578-4592 [17] 宋丽媛. 太湖梅梁湾蓝藻水华生消对沉积物中磷和电缆细菌的影响. 硕士论文. 南京: 南京林业大学, 2024 [18] Hiralal A, Geelhoed JS, Hidalgo-martinez S, et al. Closing the genome of unculturable cable bacteria using a combined metagenomic assembly of long and short sequencing reads. Microbial Genomics, 2024, 10: 001197 [19] Malkin S, Cardini U. Facilitative interactions on the rise: Cable bacteria associate with diverse aquatic plants. New Phytologist, 2021, 232: 1897-1900 [20] Marzocchi U, Thorup C, Dam AS, et al. Dissimilatory nitrate reduction by a freshwater cable bacterium. The ISME Journal, 2021, 16: 50-57 [21] Sandfeld T, Marzocchi U, Petro C, et al. Electrogenic sulfide oxidation mediated by cable bacteria stimulates sulfate reduction in freshwater sediments. The ISME Journal, 2020, 14: 1233-1246 [22] Bjerg JT, Damgaard LR, Holm SA, et al. Motility of electric cable bacteria. Applied and Environmental Microbiology, 2016, 82: 3816-3821 [23] Larsen S, Nielsen LP, Schramm A. Cable bacteria associated with long-distance electron transport in New England salt marsh sediment. Environmental Microbiology Reports, 2015, 7: 175-179 [24] Burdorf LDW, Hidalgo-Martinez S, Cook PLM, et al. Long-distance electron transport by cable bacteria in mangrove sediments. Marine Ecology Progress Series, 2016, 545: 1-8 [25] Cornelissen R, Bøggild A, Eachambadi RT, et al. The cell envelope structure of cable bacteria. Frontiers in Microbiology, 2018, 9: 3044 [26] Kessler AJ, Wawryk M, Marzocchi U, et al. Cable bacteria promote DNRA through iron sulfide dissolution. Limnology and Oceanography, 2019, 64: 1228-1238 [27] Lovley DR, Holmes DE. Protein nanowires: The electrification of the microbial world and maybe our own. Journal of Bacteriology, 2020, 202: e00331-20 [28] Lovley DR, Yao J. Intrinsically conductive microbial nanowires for ‘green’ electronics with novel functions. Trends in Biotechnology, 2021, 39: 940-952 [29] Ptushenko VV. Electric cables of living cells.Ⅱ. Bacterial electron conductors. Biochemistry, 2020, 85: 955-965 [30] Walker DJF, Adhikari RY, Holmes DE, et al. Electrically conductive pili from pilin genes of phylogenetically diverse microorganisms. The ISME Journal, 2018, 12: 48-58 [31] Dong M, Nielsen LP, Yang S, et al. Cable bacteria: Widespread filamentous electroactive microorganisms protecting environments. Trends in Microbiology, 2024, 32: 697-706 [32] van de Velde SJ, Burdorf LDW, Hidalgo-Martinez S, et al. Cable bacteria activity modulates arsenic release from sediments in a seasonally hypoxic marine basin. Frontiers in Microbiology, 2022, 13: 907976 [33] Aller RC, Aller JY, Zhu Q, et al. Worm tubes as conduits for the electrogenic microbial grid in marine sediments. Science Advances, 2019, 5: eaaw3651 [34] 吴开心, 张靖天, 马春子, 等. 沉积物电缆细菌的生长特征及其对物质循环影响的研究进展. 环境科学研究, 2022, 35(8): 1854-1863 [35] 张海涵, 王跃, 黄廷林, 等. 沉积物电缆细菌研究进展. 中国环境科学, 2019, 39(7): 3048-3055 [36] Bonaglia S, Hedberg J, Marzocchi U, et al. Meiofauna improve oxygenation and accelerate sulfide removal in the seasonally hypoxic seabed. Marine Environmental Research, 2020, 159: 104968 [37] Liau P, Kim C, Saxton MA, et al. Microbial succession in a marine sediment: Inferring interspecific microbial interactions with marine cable bacteria. Environmental Microbiology, 2022, 24: 6348-6364 [38] Sulu-Gambari F, Seitaj D, Meysman FJ, et al. Cable bacteria control iron-phosphorus dynamics in sediments of a coastal hypoxic basin. Environmental Science & Technology, 2016, 50: 1227-1233 [39] Rao AMF, Malkin SY, Hidalgo-Martinez S, et al. The impact of electrogenic sulfide oxidation on elemental cycling and solute fluxes in coastal sediment. Geochimica et Cosmochimica Acta, 2016, 172: 265-286 [40] Xiong XY, Li Y, Zhang C. Enhanced phosphorus removal from anoxic water using oxygen-carrying iron-rich biochar: Combined roles of adsorption and keystone taxa. Water Research, 2024, 266: 122433 [41] Hermans M, Pascual MA, Behrends T, et al. Coupled dynamics of iron, manganese, and phosphorus in bra-ckish coastal sediments populated by cable bacteria. Limnology and Oceanography, 2021, 66: 2611-2631 [42] Seitaj D, Schauer R, Sulu-Gambari F, et al. Cable bacteria generate a firewall against euxinia in seasonally hypoxic basins. Proceedings of the National Academy of Sciences of the United States of America, 2015, 112: 13278-13283 [43] Marzocchi U, Palma E, Rossetti S, et al. Parallel artificial and biological electric circuits power petroleum decontamination: The case of snorkel and cable bacteria. Water Research, 2020, 173: 115520 [44] Huang Y, Wang B, Yang Y, et al. Microbial carriers promote and guide pyrene migration in sediments. Journal of Hazardous Materials, 2022, 424: 127188 [45] Sachs C, Kanaparthi D, Kubik S, et al. Tracing long-distance electron transfer and cable bacteria in fresh-water sediments by agar pillar gradient columns. FEMS Microbiology Ecology, 2022, 98: fiac042 [46] Huang YD, Hu WZ, Dong MJ, et al. Cable bacteria accelerate the anaerobic removal of pyrene in black odo-rous river sediments. Journal of Hazardous Materials, 2023, 443: 130305 [47] Prados MB, Lescano M, Porzionato N, et al. Wiring up along electrodes for biofilm formation. Frontiers in Microbiology, 2021, 12: 726251 [48] Rusyn I. Role of microbial community and plant species in performance of plant microbial fuel cells. Renewable and Sustainable Energy Reviews, 2021, 152: 111697 [49] Meysman FJR. Cable bacteria take a new breath using long-distance electricity. Trends in Microbiology, 2018, 26: 411-422 |
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