首页> 美国卫生研究院文献>Microbial Biotechnology >Engineering of recombinant Escherichia coli cells co-expressing poly-γ-glutamic acid (γ-PGA) synthetase and glutamate racemase for differential yielding of γ-PGA
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Engineering of recombinant Escherichia coli cells co-expressing poly-γ-glutamic acid (γ-PGA) synthetase and glutamate racemase for differential yielding of γ-PGA

机译:共表达聚-γ-谷氨酸(γ-PGA)合成酶和谷氨酸消旋酶的重组大肠杆菌细胞的工程化以产生不同的γ-PGA

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摘要

Poly-γ-glutamic acid (γ-PGA) is a promising environmental-friendly material with outstanding water solubility, biocompatibility and degradability. However, it is tough to determine the relationship between functional synthetic enzyme and the strains' yield or substrate dependency. We cloned γ-PGA synthetase genes pgsBCA and glutamate racemase gene racE from both L-glutamate-dependent γ-PGA-producing Bacillus licheniformis NK-03 and L-glutamate-independent B. amyloliquefaciens LL3 strains. The deduced RacE and PgsA from the two strains shared the identity of 84.5% and 78.53%, while PgsB and PgsC possessed greater similarity with 93.13% and 93.96%. The induced co-expression of pgsBCA and racE showed that the engineered Escherichia coli strains had the capacity of synthesizing γ-PGA, and LL3 derived PgsBCA had higher catalytic activity and enhanced productivity than NK-03 in Luria–Bertani medium containing glucose or L-glutamate. However, the differential effect was weakened when providing sufficient immediateness L-glutamate substrate, that is, the supply of substrate could be served as the ascendance upon γ-PGA production. Furthermore, RacE integration could enhance γ-PGA yield through improving the preferred d-glutamate content. This is the first report about co-expression of pgsBCA and racE from the two Bacillus strains, which will be of great value for the determination of the biosynthetic mechanism of γ-PGA.
机译:聚-γ-谷氨酸(γ-PGA)是一种有前途的环保材料,具有出色的水溶性,生物相容性和可降解性。但是,很难确定功能性合成酶与菌株产量或底物依赖性之间的关系。我们从依赖于L-谷氨酸的γ-PGA产生的地衣芽孢杆菌NK-03和不依赖L-谷氨酸的解淀粉芽孢杆菌LL3菌株克隆了γ-PGA合成酶基因pgsBCA和谷氨酸消旋酶基因racE。从这两个菌株推导的RacE和PgsA具有84.5%和78.53%的同一性,而PgsB和PgsC具有更高的相似性,分别为93.13%和93.96%。 pgsBCA和racE的共表达表明,工程化的大肠杆菌菌株具有合成γ-PGA的能力,LL3衍生的PgsBCA在含葡萄糖或L-氨基苯甲酸的Luria–Bertani培养基中比NK-03具有更高的催化活性和更高的生产率。谷氨酸。然而,当提供足够的即时性L-谷氨酸底物时,差异作用被削弱,也就是说,底物的供应可以作为γ-PGA生产中的优势。此外,RacE整合可通过提高首选d-谷氨酸含量来提高γ-PGA产量。这是关于两个芽孢杆菌菌株中pgsBCA和racE共表达的首次报道,这对于确定γ-PGA的生物合成机制具有重要价值。

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