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通过脂肪酸分解代谢途径对大肠杆菌Top10进行代谢工程改造以生产香草醛,并使用响应面法进行生物工艺优化。

Metabolic engineering of E. coli top 10 for production of vanillin through FA catabolic pathway and bioprocess optimization using RSM.

作者信息

Chakraborty Debkumar, Gupta Gaganjot, Kaur Baljinder

机构信息

Department of Biotechnology, Punjabi University, Patiala, India.

Department of Biotechnology, Punjabi University, Patiala, India.

出版信息

Protein Expr Purif. 2016 Dec;128:123-33. doi: 10.1016/j.pep.2016.08.015. Epub 2016 Aug 31.

Abstract

Metabolic engineering and construction of recombinant Escherichia coli strains carrying feruloyl-CoA synthetase and enoyl-CoA hydratase genes for the bioconversion of ferulic acid to vanillin offers an alternative way to produce vanillin. Isolation and designing of fcs and ech genes was carried out using computer assisted protocol and the designed vanillin biosynthetic gene cassette was cloned in pCCIBAC expression vector for introduction in E. coli top 10. Recombinant strain was implemented for the statistical optimization of process parameters influencing F A to vanillin biotransformation. CCD matrix constituted of process variables like FA concentration, time, temperature and biomass with intracellular, extracellular and total vanillin productions as responses. Production was scaled up and 68 mg/L of vanillin was recovered from 10 mg/L of FA using cell extracts from 1 mg biomass within 30 min. Kinetic activity of enzymes were characterized. From LCMS-ESI analysis a metabolic pathway of FA degradation and vanillin production was predicted.

摘要

代谢工程以及构建携带阿魏酸辅酶A合成酶和烯酰辅酶A水合酶基因的重组大肠杆菌菌株用于将阿魏酸生物转化为香草醛,为香草醛的生产提供了一种替代方法。使用计算机辅助方案进行fcs和ech基因的分离与设计,并将设计好的香草醛生物合成基因盒克隆到pCCIBAC表达载体中,以便导入大肠杆菌Top10。对重组菌株进行了影响阿魏酸向香草醛生物转化的工艺参数的统计优化。中心复合设计(CCD)矩阵由诸如阿魏酸浓度、时间、温度和生物量等工艺变量组成,以细胞内、细胞外和总香草醛产量作为响应值。放大生产规模后,在30分钟内使用1毫克生物量的细胞提取物,从10毫克/升的阿魏酸中回收了68毫克/升的香草醛。对酶的动力学活性进行了表征。通过液相色谱-质谱联用-电喷雾电离(LCMS-ESI)分析预测了阿魏酸降解和香草醛生产的代谢途径。

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