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利用非诱导型大肠杆菌精细调控关键代谢途径以增强β-丙氨酸生物合成。

Fine and combinatorial regulation of key metabolic pathway for enhanced β-alanine biosynthesis with non-inducible Escherichia coli.

机构信息

National and Local Joint Engineering Research Center for Biomanufacturing of Chiral Chemicals, Zhejiang University of Technology, Hangzhou, China.

Key Laboratory of Bioorganic Synthesis of Zhejiang Province, College of Biotechnology and Bioengineering, Zhejiang University of Technology, Hangzhou, China.

出版信息

Biotechnol Bioeng. 2024 Oct;121(10):3297-3310. doi: 10.1002/bit.28799. Epub 2024 Jul 8.

Abstract

β-Alanine is the only β-amino acid in nature and one of the most important three-carbon chemicals. This work was aimed to construct a non-inducible β-alanine producer with enhanced metabolic flux towards β-alanine biosynthesis in Escherichia coli. First of all, the assembled E. coli endogenous promoters and 5'-untranslated regions (PUTR) were screened to finely regulate the combinatorial expression of genes panD and aspB for an optimal flux match between two key pathways. Subsequently, additional copies of key genes (panD and ppc) were chromosomally introduced into the host A1. On these bases, dynamical regulation of the gene thrA was performed to reduce the carbon flux directed in the competitive pathway. Finally, the β-alanine titer reached 10.25 g/L by strain A14-R15, 361.7% higher than that of the original strain. Under fed-batch fermentation in a 5-L fermentor, a titer of 57.13 g/L β-alanine was achieved at 80 h. This is the highest titer of β-alanine production ever reported using non-inducible engineered E. coli. This metabolic modification strategy for optimal carbon flux distribution developed in this work could also be used for the production of various metabolic products.

摘要

β-丙氨酸是自然界中唯一的β-氨基酸,也是最重要的三种碳化学品之一。本工作旨在构建一种非诱导型β-丙氨酸生产菌,以增强大肠杆菌中β-丙氨酸生物合成的代谢通量。首先,筛选了组装好的大肠杆菌内源性启动子和 5'非翻译区(PUTR),以精细调节 panD 和 aspB 基因的组合表达,使两条关键途径之间的通量达到最佳匹配。随后,在宿主 A1 中引入了关键基因(panD 和 ppc)的额外拷贝。在此基础上,对 thrA 基因进行动态调控,以减少竞争途径中的碳通量。最终,通过菌株 A14-R15,β-丙氨酸的产量达到 10.25 g/L,比原始菌株提高了 361.7%。在 5-L 发酵罐中的分批补料发酵中,在 80 h 时达到了 57.13 g/L 的β-丙氨酸产量。这是使用非诱导型工程大肠杆菌生产β-丙氨酸的最高产量。本工作中开发的这种用于优化碳通量分配的代谢修饰策略也可用于生产各种代谢产物。

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