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Understanding and engineering electrochemically active bacteria for sustainable biotechnology

机译:可持续生物技术的理解和工程电化学活性细菌

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Electrochemically active bacteria (EAB) receive considerable attention in sustainable biotechnology, since they are essential components in microbial fuel cells (MFCs) that are able to generate electricity from biomass wastes. EAB are also expected to be applied to the production of valued chemicals in microbial electrosynthesis systems (MESs) with the supply of electric energy from electrodes. It is, therefore, important to deepen our understanding of EAB in terms of their physiology, genetics and genomics. Knowledge obtained in these studies will facilitate the engineering of EAB for developing more efficient biotechnology processes. In this article, we summarize current knowledge on Shewanella oneidensis MR-1, a representative EAB extensively studied in the laboratory. Studies have shown that catabolic activities of S. oneidensis MR-1 are well tuned for efficiently conserving energy under varied growth conditions, e.g., different electrode potentials, which would, however, in some cases, hamper its application to biotechnology processes. We suggest that understanding of molecular mechanisms underlying environmental sensing and catabolic regulation in EAB facilitates their biotechnological applications.
机译:电化学活性细菌(EAB)在可持续生物技术中受到相当大的关注,因为它们是能够从生物质废物产生电力的微生物燃料电池(MFC)中的必需组分。 EAB还预计将应用于微生物电气合成系统(混乱)中的有价值的化学品,供应来自电极的电能。因此,在他们的生理学,遗传和基因组学方面深化我们对EAB的理解是很重要的。这些研究中获得的知识将促进EAB的工程,以发展更有效的生物技术过程。在本文中,我们总结了关于Shewanella Inidensis MR-1的现有知识,该代表在实验室中进行了广泛研究的EAB。研究表明,S.Inidensis MR-1的分解活动良好地调整,以便在不同的生长条件下有效地保存能量,例如,不同的电极电位,然而,在某些情况下,将其应用于生物技术过程。我们建议理解EAB中的环境传感和分解代谢调节的潜在的分子机制促进了其生物技术应用。

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