生物制造
代谢工程
合成生物学
生化工程
酿酒酵母
商品化学品
生物技术
工业生物技术
生物量(生态学)
环境科学
酵母
化学
工程类
生物
生物化学
生态学
计算生物学
酶
催化作用
作者
Philip A. Kelso,Louise K. M. Chow,Alexander C. Carpenter,Ian T. Paulsen,Thomas C. Williams
标识
DOI:10.1021/acssynbio.2c00110
摘要
The global expansion of biomanufacturing is currently limited by the availability of sugar-based microbial feedstocks, which require farmland for cultivation and therefore cannot support large increases in production without impacting the human food supply. One-carbon feedstocks, such as methanol, present an enticing alternative to sugar because they can be produced independently of arable farmland from organic waste, atmospheric carbon dioxide, and hydrocarbons such as biomethane, natural gas, and coal. The development of efficient industrial microorganisms that can convert one-carbon feedstocks into valuable products is an ongoing challenge. This review discusses progress in the field of synthetic methylotrophy with a focus on how it pertains to the important industrial yeast, Saccharomyces cerevisiae. Recent insights generated from engineering synthetic methylotrophic xylulose- and ribulose-monophosphate cycles, reductive glycine pathways, and adaptive laboratory evolution studies are critically assessed to generate novel strategies for the future engineering of methylotrophy in S. cerevisiae.
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