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微生物电化学合成中产甲烷生物膜中与氢相关或无氢电子转移的半定量检测。

Semiquantitative Detection of Hydrogen-Associated or Hydrogen-Free Electron Transfer within Methanogenic Biofilm of Microbial Electrosynthesis.

机构信息

School of Civil Engineering, Beijing Jiaotong University, Beijing, China.

State Key Laboratory of Urban Water Resource and Environment, Harbin Institute of Technology, Harbin, China.

出版信息

Appl Environ Microbiol. 2020 Aug 18;86(17). doi: 10.1128/AEM.01056-20.

Abstract

Hydrogen-entangled electron transfer has been verified as an important extracellular pathway of sharing reducing equivalents to regulate biofilm activities within a diversely anaerobic environment, especially in microbial electrosynthesis systems. However, with a lack of useful methods for hydrogen detection in cathodic biofilms, the role of hydrogen involvement in electron transfer is still debatable. Here, a cathodic biofilm was constructed in CH-produced microbial electrosynthesis reactors, in which the hydrogen evolution dynamic was analyzed to confirm the presence of hydrogen-associated electron transfer near the cathode within a micrometer scale. Fluorescent hybridization images indicated that a colocalized community of archaea and bacteria developed within a 58.10-μm-thick biofilm at the cathode, suggesting that the hydrogen gradient detected by the microsensor was consumed by the collaboration of bacteria and archaea. Coupling of a microsensor and cyclic voltammetry test further provided semiquantitative results of the hydrogen-associated contribution to methane generation (around 21.20% ± 1.57% at a potential of -0.5 V to -0.69 V). This finding provides deep insight into the mechanism of electron transfer in biofilm on conductive materials. Electron transfer from an electrode to biofilm is of great interest to the fields of microbial electrochemical technology, bioremediation, and methanogenesis. It has a promising potential application to boost more value-added products or pollutant degradation. Importantly, the ability of microbes to obtain electrons from electrodes and utilize them brings new insight into direct interspecies electron transfer during methanogenesis. Previous studies verified the direct pathway of electron transfer from the electrode to a pure-culture bacterium, but it was rarely reported how the methanogenic biofilm of mixed cultures shares electrons by a hydrogen-associated or hydrogen-free pathway. In the current study, a combination method of microsensor and cyclic voltammetry successfully semiquantified the role of hydrogen in electron transfer from an electrode to methanogenic biofilm.

摘要

氢缠结电子转移已被证实是一种重要的胞外途径,可以在多样化的厌氧环境中共享还原当量,从而调节生物膜活性,特别是在微生物电化学合成系统中。然而,由于缺乏用于检测阴极生物膜中氢气的有用方法,因此氢在电子转移中的作用仍存在争议。在这里,在产 CH 的微生物电化学合成反应器中构建了阴极生物膜,通过分析析氢动力学来确认在微米尺度内阴极附近存在与氢相关的电子转移。荧光杂交图像表明,在阴极处形成了一个厚 58.10-μm 的生物膜,其中共同定殖了古菌和细菌群落,这表明微传感器检测到的氢梯度被细菌和古菌的合作所消耗。微传感器和循环伏安测试的耦合进一步提供了氢相关贡献生成甲烷的半定量结果(在-0.5 V 至-0.69 V 的电位下约为 21.20%±1.57%)。这一发现深入了解了导电材料上生物膜电子转移的机制。从电极到生物膜的电子转移引起了微生物电化学技术、生物修复和产甲烷等领域的关注。它具有提高更多增值产品或污染物降解的潜在应用前景。重要的是,微生物从电极获取电子并利用它们的能力为产甲烷过程中的直接种间电子转移带来了新的见解。以前的研究已经验证了电子从电极直接传递给纯培养细菌的途径,但很少有报道说明混合培养物的产甲烷生物膜如何通过与氢相关或无氢途径共享电子。在本研究中,微传感器和循环伏安法的组合方法成功地对半定量了氢在从电极到产甲烷生物膜的电子转移中的作用。

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