Biosynthesis of rare ketoses through constructing a recombination pathway in an engineered Corynebacterium glutamicum

谷氨酸棒杆菌 磷酸二羟丙酮 达普 醛缩酶A 生物化学 代谢工程 甘油醛 二羟丙酮 大肠杆菌 山梨糖 拉伤 果糖 异构酶 化学 生物 甘油 基因 脱氢酶 解剖
作者
Jiangang Yang,Yueming Zhu,Jitao Li,Yan Men,Yuanxia Sun,Yanhe Ma
出处
期刊:Biotechnology and Bioengineering [Wiley]
卷期号:112 (1): 168-180 被引量:35
标识
DOI:10.1002/bit.25345
摘要

Rare sugars have various known biological functions and potential for applications in pharmaceutical, cosmetics, and food industries. Here we designed and constructed a recombination pathway in Corynebacterium glutamicum, in which dihydroxyacetone phosphate (DHAP), an intermediate of the glycolytic pathway, and a variety of aldehydes were condensed to synthesize rare ketoses sequentially by rhamnulose-1-phosphate aldolase (RhaD) and fructose-1-phosphatase (YqaB) obtained from Escherichia coli. A wild-type strain harboring this artificial pathway had the ability to produce D-sorbose and D-psicose using D-glyceraldehyde and glucose as the substrates. The tpi gene, encoding triose phosphate isomerase was further deleted, and the concentration of DHAP increased to nearly 20-fold relative to that of the wild-type. After additional optimization of expression levels from rhaD and yqaB genes and of the fermentation conditions, the engineered strain SY6(pVRTY) exhibited preferable performance for rare ketoses production. Its yield increased to 0.59 mol/mol D-glyceraldehyde from 0.33 mol/mol D-glyceraldehyde and productivity to 2.35 g/L h from 0.58 g/L h. Moreover, this strain accumulated 19.5 g/L of D-sorbose and 13.4 g/L of D-psicose using a fed-batch culture mode under the optimal conditions. In addition, it was verified that the strain SY6(pVRTY) meanwhile had the ability to synthesize C4, C5, C6, and C7 rare ketoses when a range of representative achiral and homochiral aldehydes were applied as the substrates. Therefore, the platform strain exhibited the potential for microbial production of rare ketoses and deoxysugars.
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