清脆的
大肠杆菌
基因组编辑
丁醇
柠檬酸循环
代谢工程
Cas9
生物化学
生物
柠檬酸合酶
基因
ATP合酶
化学
计算生物学
酶
乙醇
作者
Min-Ji Heo,Hwi-Min Jung,Jaeyong Um,Sang‐Woo Lee,Min‐Kyu Oh
标识
DOI:10.1021/acssynbio.6b00134
摘要
Genome editing using CRISPR/Cas9 was successfully demonstrated in Esherichia coli to effectively produce n-butanol in a defined medium under microaerobic condition. The butanol synthetic pathway genes including those encoding oxygen-tolerant alcohol dehydrogenase were overexpressed in metabolically engineered E. coli, resulting in 0.82 g/L butanol production. To increase butanol production, carbon flux from acetyl-CoA to citric acid cycle should be redirected to acetoacetyl-CoA. For this purpose, the 5'-untranslated region sequence of gltA encoding citrate synthase was designed using an expression prediction program, UTR designer, and modified using the CRISPR/Cas9 genome editing method to reduce its expression level. E. coli strains with decreased citrate synthase expression produced more butanol and the citrate synthase activity was correlated with butanol production. These results demonstrate that redistributing carbon flux using genome editing is an efficient engineering tool for metabolite overproduction.
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