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Microbial Biofilm Voltammetry: Direct Electrochemical Characterization of Catalytic Electrode-Attached Biofilms

机译:微生物生物膜伏安法:催化电极附着的生物膜的直接电化学表征

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摘要

While electrochemical characterization of enzymes immobilized on electrodes has become common, there is still a need for reliable quantitative methods for study of electron transfer between living cells and conductive surfaces. This work describes growth of thin (<20 μm) Geobacter sulfurreducens biofilms on polished glassy carbon electrodes, using stirred three-electrode anaerobic bioreactors controlled by potentiostats and nondestructive voltammetry techniques for characterization of viable biofilms. Routine in vivo analysis of electron transfer between bacterial cells and electrodes was performed, providing insight into the main redox-active species participating in electron transfer to electrodes. At low scan rates, cyclic voltammetry revealed catalytic electron transfer between cells and the electrode, similar to what has been observed for pure enzymes attached to electrodes under continuous turnover conditions. Differential pulse voltammetry and electrochemical impedance spectroscopy also revealed features that were consistent with electron transfer being mediated by an adsorbed catalyst. Multiple redox-active species were detected, revealing complexity at the outer surfaces of this bacterium. These techniques provide the basis for cataloging quantifiable, defined electron transfer phenotypes as a function of potential, electrode material, growth phase, and culture conditions and provide a framework for comparisons with other species or communities.
机译:尽管固定在电极上的酶的电化学表征已经很普遍,但仍需要可靠的定量方法来研究活细胞与导电表面之间的电子转移。这项工作描述了在抛光的玻璃碳电极上生长薄的(<20μm)降低土壤细菌硫的生物膜,使用由恒电位仪控制的三电极厌氧生物反应器和无损伏安技术对活生物膜进行表征。进行了细菌细胞与电极之间电子转移的常规体内分析,从而深入了解了参与电子转移至电极的主要氧化还原活性物质。在低扫描速率下,循环伏安法揭示了细胞与电极之间的催化电子转移,这与在连续翻转条件下附着在电极上的纯酶所观察到的相似。差示脉冲伏安法和电化学阻抗谱还揭示了与吸附的催化剂介导的电子转移相一致的特征。检测到多种氧化还原活性物质,揭示了该细菌外表面的复杂性。这些技术为根据电位,电极材料,生长期和培养条件对可量化的,定义的电子转移表型进行分类提供了基础,并为与其他物种或群落进行比较提供了框架。

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