Engineering the Reductive Glycine Pathway: A Promising Synthetic Metabolism Approach for C1-Assimilation

生物生产 代谢工程 同化(音韵学) 合成生物学 格式化 生化工程 代谢途径 纳米技术 计算生物学 化学 生物 生物化学 组合化学 新陈代谢 材料科学 工程类 催化作用 哲学 语言学
作者
Nico J. Claassens,Ari Satanowski,Viswanada R Bysani,Beau Dronsella,Enrico Orsi,Vittorio Rainaldi,Suzan Yilmaz,Sebastian Wenk,Steffen N. Lindner
出处
期刊:Advances in Biochemical Engineering / Biotechnology [Springer Science+Business Media]
卷期号:: 299-350 被引量:20
标识
DOI:10.1007/10_2021_181
摘要

In recent years the reductive glycine pathway (rGlyP) has emerged as a promising pathway for the assimilation of formate and other sustainable C1-feedstocks for future biotechnology. It was originally proposed as an attractive "synthetic pathway" to support formatotrophic growth due to its high ATP efficiency, linear structure, and limited overlap with native pathways in most microbial hosts. Here, we present the current state of research on this pathway including breakthroughs on its engineering. Different variants of the rGlyP are discussed, including its core module for formate to glycine conversion, as well as varying modules for substrate conversion to formate, and glycine assimilation routes. Very recently, the rGlyP has been successfully implemented for synthetic formatotrophic growth, as well as for growth on methanol, in some bacterial hosts. We discuss the engineering strategies employed in these studies, including growth-coupled selection of functional pathway modules. We also compare the rGlyP to other natural and synthetic C1-assimilation pathways. Finally, we provide an outlook on open challenges and opportunities for the rGlyP, including its engineering into more biotechnological hosts, as well as the still-to-be realized production of value-added chemicals via this pathway. We expect that further research on the rGlyP will support the efficient use of sustainable C1-substrates in bioproduction.
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