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通过组合代谢工程改造 提高 L-半胱氨酸的生产:深入了解关键调控模式以及碳硫代谢和辅助因子可用性的优化。

Combinatorial Metabolic Engineering of for Enhanced L-Cysteine Production: Insights into Crucial Regulatory Modes and Optimization of Carbon-Sulfur Metabolism and Cofactor Availability.

机构信息

The National and Local Joint Engineering Research Center for Biomanufacturing of Chiral Chemicals, Zhejiang University of Technology, Hangzhou, Zhejiang 310014, P. R. China.

Key Laboratory of Bioorganic Synthesis of Zhejiang Province, College of Biotechnology and Bioengineering, Zhejiang University of Technology, Hangzhou, Zhejiang 310014, P. R. China.

出版信息

J Agric Food Chem. 2023 Sep 13;71(36):13409-13418. doi: 10.1021/acs.jafc.3c03709. Epub 2023 Aug 28.

Abstract

Microbial production of valuable compounds can be enhanced by various metabolic strategies. This study proposed combinatorial metabolic engineering to develop an effective cell factory dedicated to L-cysteine production. First, the crucial regulatory modes that control L-cysteine levels were investigated to guide metabolic modifications. A two-stage fermentation was achieved by employing multi-copy gene expression, improving the balance between production and growth. Subsequently, carbon flux distribution was further optimized by modifying the C1 unit metabolism and the glycolytic pathway. The modifications of sulfur assimilation demonstrated superior performance of thiosulfate utilization pathways in enhancing L-cysteine titer. Furthermore, the studies focusing on cofactor availability and preference emphasized the vital role of synergistic enhancement of sulfur-carbon metabolism in L-cysteine overproduction. In a 5 L bioreactor, the strain BW15-3/pED accumulated 12.6 g/L of L-cysteine. This work presented an effective metabolic engineering strategy for the development of L-cysteine-producing strains.

摘要

微生物可以通过各种代谢策略来生产有价值的化合物。本研究提出了组合代谢工程,以开发一种专门用于 L-半胱氨酸生产的有效细胞工厂。首先,研究了控制 L-半胱氨酸水平的关键调控模式,以指导代谢修饰。通过采用多拷贝基因表达,实现了两阶段发酵,改善了生产和生长之间的平衡。随后,通过修饰 C1 单元代谢和糖酵解途径,进一步优化了碳通量分布。硫同化的修饰表明,硫代硫酸盐利用途径在提高 L-半胱氨酸产量方面具有优越的性能。此外,关于辅助因子可用性和偏好的研究强调了协同增强硫-碳代谢在 L-半胱氨酸过量生产中的重要作用。在 5 L 生物反应器中,BW15-3/pED 菌株积累了 12.6 g/L 的 L-半胱氨酸。这项工作提出了一种有效的代谢工程策略,用于开发 L-半胱氨酸生产菌株。

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