食品科学 ›› 2026, Vol. 47 ›› Issue (14): 144-150.doi: 10.7506/spkx1002-6630-20260114-123

• 生物工程 • 上一篇    

代谢改造大肠杆菌高效合成肌氨酸

陈卓妍,刘昕恬,陆盼,赵新奉,于欣昊,陈佳悦,田勇,王小楠,范晓光   

  1. (1.天津科技大学 工业发酵微生物教育部重点实验室,天津 300457;2.新泰市佳禾生物科技有限公司,山东?新泰 271219)
  • 发布日期:2026-08-24
  • 基金资助:
    “十四五”国家重点研发计划重点专项(2022YFD2101401);天津市级大学生创新创业训练计划项目(202010057020)

Metabolic Engineering of Escherichia coli for the Efficient Synthesis of Sarcosine

CHEN Zhuoyan, LIU Xintian, LU Pan, ZHAO Xinfeng, YU Xinhao, CHEN Jiayue, TIAN Yong, WANG Xiaonan, FAN Xiaoguang   

  1. (1. Key Laboratory of Industrial Fermentation Microbiology, Ministry of Education, Tianjin University of Science and Technology, Tianjin 300457, China; 2. Xintai Jiahe Biotechnology Co. Ltd., Xintai 271219, China)
  • Published:2026-08-24

摘要: 在大肠杆菌Escherichia coli MG1655 ΔlacI中构建高效的肌氨酸合成途径。首先,质粒过表达来源于恶臭假单胞菌的β-哌啶-2-羧基还原酶基因dpkA,该酶能够催化乙醛酸和甲胺合成肌氨酸,通过单因素试验确定最适催化温度、pH值和细胞浓度;然后,敲除阻遏蛋白基因iclR和苹果酸合酶基因aceB,基因组过表达异柠檬酸裂解酶基因aceA,使得工程菌能够通过自身代谢积累乙醛酸;接着,分别通过基因组和质粒方式过表达6-磷酸葡萄糖脱氢酶基因zwf,强化还原型烟酰胺腺嘌呤二核苷酸磷酸的供应,提高肌氨酸的发酵产量。最终得到的工程菌E. coli S6在5 L发酵罐中,能够以葡萄糖和甲胺为原料合成55.6 mmol/L的肌氨酸。本研究构建了高效合成肌氨酸的创新性微生物细胞工厂,通过代谢工程改造实现底物定向转化,为工业化学品的绿色化生产提供了可扩展的技术路径与理论框架。

关键词: 肌氨酸;代谢工程;β-哌啶-2-羧基还原酶;大肠杆菌

Abstract: An efficient biosynthetic pathway in Escherichia coli MG1655 ΔlacI for the production of sarcosine was constructed in this study. First, the β-piperidone-2-carboxylic acid reductase gene (dpkA) from Pseudomonas putida was overexpressed via a plasmid. This enzyme is capable of catalyzing the synthesis of sarcosine from glyoxylate and methylamine. The optimal catalytic temperature, pH, and cell concentration were determined through single-factor experiments. Subsequently, to enable the engineered strain to accumulate glyoxylate through endogenous metabolism, the repressor gene iclR and the malate synthase gene aceB were knocked out, while the isocitrate lyase gene aceA was genomically overexpressed. Furthermore, to enhance the supply of nicotinamide adenine dinucleotide phosphate (reduced form), the glucose-6-phosphate dehydrogenase gene (zwf) was overexpressed by both genomic integration and plasmid-based expression, thereby improving the fermentation yield of sarcosine. Ultimately, the engineered strain E. coli S6 successfully synthesized 55.6 mmol/L of sarcosine using glucose and methylamine as substrates in a 5-L bioreactor. This study constructed an innovative microbial cell factory for the efficient biosynthesis of sarcosine, achieving directional substrate conversion through metabolic engineering, thereby providing a scalable technological pathway and theoretical framework for the green production of industrial chemicals.

Key words: sarcosine; metabolic engineering; β-piperidone-2-carboxylic acid reductase; Escherichia coli

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