Evonik Operations GmbH, Technology and Infrastructure, Hanau, Germany.
DECHEMA Research Institute, Electrochemistry, Frankfurt am Main, Germany.
Adv Biochem Eng Biotechnol. 2022;180:213-241. doi: 10.1007/10_2021_171.
The idea to somehow combine electrical current and biological systems is not new. It was subject of research as well as of science fiction literature for decades. Nowadays, in times of limited resources and the need to capture greenhouse gases like CO, this combination gains increasing interest, since it might allow to use C1 compounds and highly oxidized compounds as substrate for microbial production by "activating" them with additional electrons. In this chapter, different possibilities to combine electrochemistry and biology to convert C1 compounds into useful products will be discussed. The chapter first shows electrochemical conversion of C1 compounds, allowing the use of the product as substrate for a subsequent biosynthesis in uncoupled systems, further leads to coupled systems of biology and electrochemical conversion, and finally reaches the discipline of bioelectrosynthesis, where electrical current and C1 compounds are directly converted by microorganisms or enzymes. This overview will give an idea about the potentials and challenges of combining electrochemistry and biology to convert C1 molecules.
将电流和生物系统以某种方式结合的想法并不新鲜。几十年来,它一直是研究和科幻文学的主题。如今,在资源有限和需要捕获 CO 等温室气体的情况下,这种组合越来越受到关注,因为它可能允许使用 C1 化合物和高度氧化的化合物作为微生物生产的底物,通过用额外的电子“激活”它们。在本章中,将讨论将电化学和生物学结合起来将 C1 化合物转化为有用产品的不同可能性。本章首先展示了 C1 化合物的电化学转化,允许将产物用作随后在非偶联系统中生物合成的底物,进一步引导到生物学和电化学转化的偶联系统,最后达到生物电化学合成的学科,其中微生物或酶直接将电流和 C1 化合物转化。该概述将使人们了解将电化学和生物学结合起来转化 C1 分子的潜力和挑战。