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枯草芽孢杆菌中menaquinone-7 生物合成的组合代谢工程。

Combinatorial metabolic engineering of Bacillus subtilis for menaquinone-7 biosynthesis.

机构信息

Key Laboratory of Carbohydrate Chemistry and Biotechnology, Ministry of Education, Jiangnan University, Wuxi, China.

Science Center for Future Foods, Jiangnan University, Wuxi, China.

出版信息

Biotechnol Bioeng. 2024 Oct;121(10):3338-3350. doi: 10.1002/bit.28800. Epub 2024 Jul 4.

Abstract

Menaquinone-7 (MK-7), a form of vitamin K2, supports bone health and prevents arterial calcification. Microbial fermentation for MK-7 production has attracted widespread attention because of its low cost and short production cycles. However, insufficient substrate supply, unbalanced precursor synthesis, and low catalytic efficiency of key enzymes severely limited the efficiency of MK-7 synthesis. In this study, utilizing Bacillus subtilis BSAT01 (with an initial MK-7 titer of 231.0 mg/L) obtained in our previous study, the glycerol metabolism pathway was first enhanced to increase the 3-deoxy-arabino-heptulonate 7-phosphate (DHAP) supply, which led to an increase in MK-7 titer to 259.7 mg/L. Subsequently, a combination of knockout strategies predicted by the genome-scale metabolic model etiBsu1209 was employed to optimize the central carbon metabolism pathway, and the resulting strain showed an increase in MK-7 production from 259.7 to 318.3 mg/L. Finally, model predictions revealed the methylerythritol phosphate pathway as the major restriction pathway, and the pathway flux was increased by heterologous introduction (Introduction of Dxs derived from Escherichia coli) and fusion expression (End-to-end fusion of two enzymes by a linker peptide), resulting in a strain with a titer of 451.0 mg/L in a shake flask and 474.0 mg/L in a 50-L bioreactor. This study achieved efficient MK-7 synthesis in B. subtilis, laying the foundation for large-scale MK-7 bioproduction.

摘要

甲萘醌-7(MK-7),一种维生素 K2 的形式,有助于骨骼健康并预防动脉钙化。由于其成本低、生产周期短,微生物发酵生产 MK-7 引起了广泛关注。然而,底物供应不足、前体合成不平衡以及关键酶的催化效率低,严重限制了 MK-7 合成的效率。在本研究中,利用我们之前研究中获得的枯草芽孢杆菌 BSAT01(初始 MK-7 产量为 231.0mg/L),首先增强甘油代谢途径以增加 3-脱氧-阿拉伯庚糖-7-磷酸(DHAP)的供应,从而使 MK-7 产量增加到 259.7mg/L。随后,采用基因组尺度代谢模型 etiBsu1209 预测的敲除策略组合对中心碳代谢途径进行优化,得到的菌株使 MK-7 产量从 259.7mg/L 增加到 318.3mg/L。最后,模型预测表明甲基赤藓醇磷酸途径是主要的限制途径,通过异源导入(来源于大肠杆菌的 Dxs 的导入)和融合表达(通过连接肽将两个酶首尾融合)增加途径通量,使摇瓶中的菌株产量达到 451.0mg/L,50L 生物反应器中的产量达到 474.0mg/L。本研究在枯草芽孢杆菌中实现了高效的 MK-7 合成,为大规模 MK-7 生物生产奠定了基础。

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