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迈向可持续原料:微生物固碳的电子供体指南。

Towards sustainable feedstocks: A guide to electron donors for microbial carbon fixation.

机构信息

Max Planck Institute of Molecular Plant Physiology, Am Mühlenberg 1, 14476 Potsdam-Golm, Germany.

Laboratory of Microbiology, Wageningen University, Stippeneng 4, 6708 WE, Wageningen, The Netherlands.

出版信息

Curr Opin Biotechnol. 2018 Apr;50:195-205. doi: 10.1016/j.copbio.2018.01.019. Epub 2018 Feb 22.

Abstract

The replacement of fossil and agricultural feedstocks with sustainable alternatives for the production of chemicals and fuels is a societal and environmental necessity. This challenge can be tackled by using inorganic or one-carbon compounds as electron donors for microbial CO fixation and bioproduction. Yet, considering the wide array of microbial electron donors, which are the best suited for bioindustry? Here, we propose criteria to evaluate these compounds, considering factors such as production methods, physicochemical properties, and microbial utilization. H, CO, and formate emerge as the most promising electron donors as they can be produced electrochemically at high efficiency and, importantly, have reduction potentials low enough to directly reduce the cellular electron carriers. Still, further research towards the production and utilization of other electron donors-especially phosphite-might unlock the full potential of microbial CO fixation and bioproduction.

摘要

用可持续的替代物替代化石和农业饲料来生产化学品和燃料是社会和环境的必要条件。这一挑战可以通过使用无机或一碳化合物作为微生物 CO 固定和生物生产的电子供体来解决。然而,考虑到广泛的微生物电子供体,哪些最适合生物工业呢?在这里,我们提出了评估这些化合物的标准,考虑了生产方法、物理化学性质和微生物利用等因素。H、CO 和甲酸盐是最有前途的电子供体,因为它们可以通过电化学方法高效地生产,而且重要的是,它们的还原电位足够低,可以直接还原细胞电子载体。尽管如此,针对其他电子供体(特别是亚磷酸盐)的生产和利用的进一步研究可能会充分发挥微生物 CO 固定和生物生产的潜力。

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