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ORIGINAL ARTICLE Hydrogenase-independent uptake and metabolism of electrons by the archaeon Methanococcus maripaludis

机译:原产马氏甲烷球菌对氢酶的吸收和电子代谢不依赖

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摘要

Direct, shuttle-free uptake of extracellular, cathode-derived electrons has been postulated as a novel mechanism of electron metabolism in some prokaryotes that may also be involved in syntrophic electron transport between two microorganisms. Experimental proof for direct uptake of cathodic electrons has been mostly indirect and has been based on the absence of detectable concentrations of molecular hydrogen. However, hydrogen can be formed as a transient intermediate abiotically at low cathodic potentials (<-414 mV) under conditions of electromethanogenesis. Here we provide genetic evidence for hydrogen-independent uptake of extracellular electrons. Methane formation from cathodic electrons was observed in a wild-type strain of the methanogenic archaeon Methanococcus maripaludis as well as in a hydrogenase-deletion mutant lacking all catabolic hydrogenases, indicating the presence of a hydrogenase-independent mechanism of electron catabolism. In addition, we discovered a new route for hydrogen or formate production from cathodic electrons: Upon chemical inhibition of methanogenesis with 2-bromo-ethane sulfonate, hydrogen or formate accumulated in the bioelectrochemical cells instead of methane. These results have implications for our understanding on the diversity of microbial electron uptake and metabolism.
机译:据推测,直接,无穿梭摄取细胞外,阴极衍生的电子是某些原核生物中电子代谢的新机制,这些原核生物也可能参与两种微生物之间的营养性电子传递。直接摄取阴极电子的实验证据大部分是间接的,并且是基于缺乏可检测浓度的分子氢的。但是,在电甲烷生成条件下,氢可在低阴极电势(<-414 mV)下非生物形成过渡中间体。在这里,我们提供了与氢无关的胞外电子摄取的遗传证据。在产甲烷的古细菌甲烷甲烷球菌的野生型菌株以及缺乏所有分解代谢氢酶的氢化酶缺失突变体中观察到了由阴极电子形成的甲烷,这表明存在不依赖于氢分解酶的电子分解代谢机制。此外,我们发现了一种从阴极电子产生氢或甲酸盐的新途径:在用2-溴乙烷磺酸盐化学抑制甲烷生成的过程中,氢或甲酸盐而不是甲烷积聚在生物电化学池中。这些结果对我们对微生物电子摄取和代谢多样性的理解具有影响。

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