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通过氧敏感烯酯还原酶对顺,顺-粘康酸进行微需氧氢化来合成己二酸。

Biosynthesis of adipic acid via microaerobic hydrogenation of cis,cis-muconic acid by oxygen-sensitive enoate reductase.

机构信息

State Key Laboratory of Chemical Resource Engineering, Beijing University of Chemical Technology, Beijing 100029, China.

State Key Laboratory of Chemical Resource Engineering, Beijing University of Chemical Technology, Beijing 100029, China.

出版信息

J Biotechnol. 2018 Aug 20;280:49-54. doi: 10.1016/j.jbiotec.2018.06.304. Epub 2018 Jun 6.

Abstract

Adipic acid (AA) is an important dicarboxylic acid used for the manufacture of nylon and polyurethane plastics. In this study, a novel adipic acid biosynthetic pathway was designed by extending the cis,cis-muconic acid (MA) biosynthesis through biohydrogenation. Enoate reductase from Clostridium acetobutylicum (CaER), an oxygen-sensitive reductase, was demonstrated to have in vivo enzyme activity of converting cis,cis-muconic acid to adipic acid under microaerobic condition. Engineered Escherichia coli strains were constructed to express the whole pathway and accumulated 5.8 ± 0.9 mg/L adipic acid from simple carbon sources. Considering the different oxygen demands between cis,cis-muconic acid biosynthesis and its degradation, a co-culture system was constructed. To improve production, T7 promoter instead of lac promoter was used for higher level expression of the key enzyme CaER and the titer of adipic acid increased to 18.3 ± 0.6 mg/L. To decrease the oxygen supply to downstream strains expressing CaER, Vitreoscilla hemoglobin (VHb) was introduced to upstream strains for its ability on oxygen obtaining. This attempt further improved the production of this novel pathway and 27.6 ± 1.3 mg/L adipic acid was accumulated under microaerobic condition.

摘要

己二酸(AA)是一种重要的二羧酸,用于制造尼龙和聚氨酯塑料。在这项研究中,通过生物氢化扩展顺式,顺式 - 粘康酸(MA)生物合成,设计了一种新颖的己二酸生物合成途径。证明梭菌丙酮丁醇(CaER)中的烯酸还原酶是一种对氧敏感的还原酶,在微氧条件下具有将顺式,顺式 - 粘康酸转化为己二酸的体内酶活性。构建了表达整个途径的工程大肠杆菌菌株,并从简单的碳源中积累了 5.8±0.9mg/L 的己二酸。考虑到顺式,顺式 - 粘康酸生物合成与其降解之间的不同氧气需求,构建了共培养系统。为了提高产量,使用 T7 启动子代替 lac 启动子,用于关键酶 CaER 的更高水平表达,己二酸的产量增加到 18.3±0.6mg/L。为了减少表达 CaER 的下游菌株的氧气供应,将血晶素血红蛋白(VHb)引入上游菌株,因为其具有获取氧气的能力。这种尝试进一步提高了该新型途径的生产能力,在微氧条件下积累了 27.6±1.3mg/L 的己二酸。

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