生物合成
生物化学
异亮氨酸
代谢途径
高丝氨酸
胱硫醚β合酶
新陈代谢
氨基酸合成
酶
生物
化学
氨基酸
亮氨酸
群体感应
半胱氨酸
基因
毒力
赖氨酸
作者
Charles A. R. Cotton,Iria Bernhardsgrütter,Hai He,Simon Burgener,Luca Schulz,Nicole Paczia,Beau Dronsella,Alexander Erban,Stepan Toman,Marian Dempfle,Alberto De Maria,Joachim Kopka,Steffen N. Lindner,Tobias J. Erb,Arren Bar‐Even
出处
期刊:eLife
[eLife Sciences Publications, Ltd.]
日期:2020-08-24
卷期号:9
被引量:23
摘要
The promiscuous activities of enzymes provide fertile ground for the evolution of new metabolic pathways. Here, we systematically explore the ability of E. coli to harness underground metabolism to compensate for the deletion of an essential biosynthetic pathway. By deleting all threonine deaminases, we generated a strain in which isoleucine biosynthesis was interrupted at the level of 2-ketobutyrate. Incubation of this strain under aerobic conditions resulted in the emergence of a novel 2-ketobutyrate biosynthesis pathway based upon the promiscuous cleavage of O -succinyl-L-homoserine by cystathionine γ-synthase (MetB). Under anaerobic conditions, pyruvate formate-lyase enabled 2-ketobutyrate biosynthesis from propionyl-CoA and formate. Surprisingly, we found this anaerobic route to provide a substantial fraction of isoleucine in a wild-type strain when propionate is available in the medium. This study demonstrates the selective advantage underground metabolism offers, providing metabolic redundancy and flexibility which allow for the best use of environmental carbon sources.
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