Microbial phenazine production enhances electron transfer in biofuel cells

被引:703
|
作者
Rabaey, K
Boon, N
Höfte, M
Verstraete, W
机构
[1] State Univ Ghent, Lab Microbial Ecol & Technol, B-9000 Ghent, Belgium
[2] State Univ Ghent, Phytopathol Lab, B-9000 Ghent, Belgium
关键词
D O I
10.1021/es048563o
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
High-rate electron transfer toward an anode in microbial fuel cells(MFCs) has thus far not been described for bacteria-producing soluble redox mediators. To study the mechanism of electron transfer, we used a MFC isolate, Pseudomonas aeruginosa strain KRP1. Bacterial electron transfer toward the MFC anode was enabled through pyocyanin and phenazine-l-carboxamide. The presence of the anode stimulated pyocyanin production. Mutant strains, deficient in the synthesis of pyocyanin and phenazine-1-carboxamide, were unable to achieve substantial electron transfer and reached only 5% of the wild type's power output. Upon pyocyanin addition, the power output was restored to 50%. Pyocyanin was not only used by P. aeruginosa to improve electron transfer but as well enhanced electron transfer by other bacterial species. The finding that one bacterium can produce electron shuttles, which can be used also by other bacteria, to enhance electron-transfer rate and growth, has not been shown before. These findings have considerable implications with respect to the power output attainable in MFCs.
引用
收藏
页码:3401 / 3408
页数:8
相关论文
共 50 条
  • [41] Anodic electron transfer mechanisms in microbial fuel cells and their energy efficiency
    Schroeder, Uwe
    PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2007, 9 (21) : 2619 - 2629
  • [42] Electrochemical performance and microbial community profiles in microbial fuel cells in relation to electron transfer mechanisms
    Naroa Uria
    Isabel Ferrera
    Jordi Mas
    BMC Microbiology, 17
  • [43] Identification and microbial production of a terpene-based advanced biofuel
    Pamela P. Peralta-Yahya
    Mario Ouellet
    Rossana Chan
    Aindrila Mukhopadhyay
    Jay D. Keasling
    Taek Soon Lee
    Nature Communications, 2
  • [44] Enzymatic self-wiring in nanopores and its application in direct electron transfer biofuel cells
    Trifonov, Alexander
    Stemmer, Andreas
    Tel-Vered, Ran
    NANOSCALE ADVANCES, 2019, 1 (01): : 347 - 356
  • [45] Electrochemical performance and microbial community profiles in microbial fuel cells in relation to electron transfer mechanisms
    Uria, Naroa
    Ferrera, Isabel
    Mas, Jordi
    BMC MICROBIOLOGY, 2017, 17
  • [46] Plant and microbial research seeks biofuel production from lignocellulose
    Bartley, Laura E.
    Ronald, Pamela C.
    CALIFORNIA AGRICULTURE, 2009, 63 (04) : 178 - 184
  • [47] Identification and microbial production of a terpene-based advanced biofuel
    Peralta-Yahya, Pamela P.
    Ouellet, Mario
    Chan, Rossana
    Mukhopadhyay, Aindrila
    Keasling, Jay D.
    Lee, Taek Soon
    NATURE COMMUNICATIONS, 2011, 2
  • [48] Enhancing electron transfer efficiency in microbial electrochemical systems for bioelectricity and chemical production
    Liang, Guangjie
    Gao, Cong
    Wu, Jing
    Hu, Guipeng
    Li, Xiaomin
    Liu, Liming
    BIORESOURCE TECHNOLOGY, 2025, 428
  • [49] Strategies for enhancing microbial tolerance to inhibitors for biofuel production: A review
    Wang, Shizeng
    Sun, Xinxiao
    Yuan, Qipeng
    BIORESOURCE TECHNOLOGY, 2018, 258 : 302 - 309
  • [50] Biochar assisted anaerobic digestion for biomethane production: Microbial symbiosis and electron transfer
    Saif, Irfan
    Thakur, Nandini
    Zhang, Peng
    Zhang, Lihong
    Xing, Xiaohong
    Yue, Jianwei
    Song, Zhongzhong
    Nan, Lan
    Yujun, Su
    Usman, Muhammad
    Salama, El-Sayed
    Li, Xiangkai
    JOURNAL OF ENVIRONMENTAL CHEMICAL ENGINEERING, 2022, 10 (03):