作者
Justin B Siegel, Amanda Lee Smith, Sean Poust, Adam J Wargacki, Arren Bar-Even, Catherine Louw, Betty W Shen, Christopher B Eiben, Huu M Tran, Elad Noor, Jasmine L Gallaher, Jacob Bale, Yasuo Yoshikuni, Michael H Gelb, Jay D Keasling, Barry L Stoddard, Mary E Lidstrom, David Baker
发表日期
2015/3/24
期刊
Proceedings of the National Academy of Sciences
卷号
112
期号
12
页码范围
3704-3709
出版商
National Academy of Sciences
简介
We describe a computationally designed enzyme, formolase (FLS), which catalyzes the carboligation of three one-carbon formaldehyde molecules into one three-carbon dihydroxyacetone molecule. The existence of FLS enables the design of a new carbon fixation pathway, the formolase pathway, consisting of a small number of thermodynamically favorable chemical transformations that convert formate into a three-carbon sugar in central metabolism. The formolase pathway is predicted to use carbon more efficiently and with less backward flux than any naturally occurring one-carbon assimilation pathway. When supplemented with enzymes carrying out the other steps in the pathway, FLS converts formate into dihydroxyacetone phosphate and other central metabolites in vitro. These results demonstrate how modern protein engineering and design tools can facilitate the construction of a completely new …
引用总数
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学术搜索中的文章
JB Siegel, AL Smith, S Poust, AJ Wargacki, A Bar-Even… - Proceedings of the National Academy of Sciences, 2015