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密码子优化、N端截短及基因剂量对小檗碱桥酶异源表达的影响

Effects of codon optimization, N-terminal truncation and gene dose on the heterologous expression of berberine bridge enzyme.

作者信息

Xu Zixuan, Xia Liqiong, Sun Mengshan, Huang Peng, Zeng Jianguo

机构信息

Hunan University of Chinese Medicine, Changsha, 410128, Hunan, China.

Clinical Pharmacy, Yueyang Hospital of TCM, Yueyang, 414000, Hunan, China.

出版信息

World J Microbiol Biotechnol. 2022 Mar 22;38(5):77. doi: 10.1007/s11274-022-03265-w.

Abstract

Morphine, sanguinarine and chelerythrine are benzylisoquinoline alkaloids (BIAs), and these compounds possess strong biological activities. (S)-scoulerine is a commonly shared precursor of these compounds, and berberine bridge enzyme (BBE) is a key rate-limiting enzyme in the synthesis of (S)-scoulerine. We isolated the BBE gene from Macleaya cordata (McBBE) and used CEN.PK2-1C as a chassis strain. We compared the catalytic efficiency of five codon-optimized McBBE genes in Saccharomyces cerevisiae and finally obtained a yeast strain (YH03) that exhibited a 58-fold increase in yield (1.12 mg/L). Then, we truncated the N-terminus of McBBE by 8 and 22 amino acids and found that with the increase in the number of N-terminal truncated amino acids, the production of (S)-scoulerine gradually decreased. Additionally, we used CRISPR-Cas9 to integrate the McBBE gene at the delta site of the S. cerevisiae genome to achieve stable genetic inheritance and found that the yield of (S)-scoulerine was not significantly increased in the integrated strain. In conclusion, our work achieved high-efficiency expression of McBBE in S. cerevisiae, explored the influence of N-terminal truncation on the yield of (S)-scoulerine, and obtained a genetically stable S. cerevisiae strain with high McBBE expression. This study provides a reference for further complex metabolic engineering optimization and lays a foundation for the efficient biosynthesis of BIAs.

摘要

吗啡、血根碱和白屈菜红碱都是苄基异喹啉生物碱(BIAs),这些化合物具有很强的生物活性。(S)-四氢巴马汀是这些化合物的共同前体,小檗碱桥酶(BBE)是(S)-四氢巴马汀合成中的关键限速酶。我们从博落回中分离出BBE基因(McBBE),并使用CEN.PK2-1C作为底盘菌株。我们比较了五个密码子优化的McBBE基因在酿酒酵母中的催化效率,最终获得了一株产量提高58倍(1.12mg/L)的酵母菌株(YH03)。然后,我们将McBBE的N端截短8个和22个氨基酸,发现随着N端截短氨基酸数量的增加,(S)-四氢巴马汀的产量逐渐降低。此外,我们使用CRISPR-Cas9将McBBE基因整合到酿酒酵母基因组的delta位点以实现稳定的遗传遗传,发现整合菌株中(S)-四氢巴马汀的产量没有显著增加。总之,我们的工作实现了McBBE在酿酒酵母中的高效表达,探索了N端截短对(S)-四氢巴马汀产量的影响,并获得了一株McBBE高表达且遗传稳定的酿酒酵母菌株。本研究为进一步的复杂代谢工程优化提供了参考,为BIAs的高效生物合成奠定了基础。

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