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内含肽介导的温度控制在酵母中完整生物合成血根碱及其卤代衍生物。

Intein-mediated temperature control for complete biosynthesis of sanguinarine and its halogenated derivatives in yeast.

机构信息

Key Laboratory of Biomass Chemical Engineering of Ministry of Education & National Key Laboratory of Biobased Transportation Fuel Technology, College of Chemical and Biological Engineering, Zhejiang University, Hangzhou, China.

ZJU-Hangzhou Global Scientific and Technological Innovation Center, Zhejiang University, Hangzhou, China.

出版信息

Nat Commun. 2024 Jun 19;15(1):5238. doi: 10.1038/s41467-024-49554-w.

Abstract

While sanguinarine has gained recognition for antimicrobial and antineoplastic activities, its complex conjugated structure and low abundance in plants impede broad applications. Here, we demonstrate the complete biosynthesis of sanguinarine and halogenated derivatives using highly engineered yeast strains. To overcome sanguinarine cytotoxicity, we establish a splicing intein-mediated temperature-responsive gene expression system (SIMTeGES), a simple strategy that decouples cell growth from product synthesis without sacrificing protein activity. To debottleneck sanguinarine biosynthesis, we identify two reticuline oxidases and facilitated functional expression of flavoproteins and cytochrome P450 enzymes via protein molecular engineering. After comprehensive metabolic engineering, we report the production of sanguinarine at a titer of 448.64 mg L. Additionally, our engineered strain enables the biosynthesis of fluorinated sanguinarine, showcasing the biotransformation of halogenated derivatives through more than 15 biocatalytic steps. This work serves as a blueprint for utilizing yeast as a scalable platform for biomanufacturing diverse benzylisoquinoline alkaloids and derivatives.

摘要

血根碱因其具有抗菌和抗肿瘤活性而受到关注,但它的共轭结构复杂,在植物中的含量低,限制了其广泛应用。在这里,我们使用高度工程化的酵母菌株展示了血根碱和卤代衍生物的全生物合成。为了克服血根碱的细胞毒性,我们建立了一个剪接内含肽介导的温度响应基因表达系统(SIMTeGES),这是一种简单的策略,它通过不牺牲蛋白质活性将细胞生长与产物合成解耦。为了消除血根碱生物合成的瓶颈,我们通过蛋白质分子工程鉴定了两种阿朴啡氧化酶,并促进了黄素蛋白和细胞色素 P450 酶的功能表达。经过全面的代谢工程改造,我们报告了血根碱产量达到 448.64mg/L。此外,我们的工程菌株还能够合成氟代血根碱,展示了通过 15 个以上的生物催化步骤进行卤代衍生物的生物转化。这项工作为利用酵母作为可扩展的平台来生物制造多种苯并异喹啉生物碱及其衍生物提供了蓝图。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e3c1/11186835/02c1963673ac/41467_2024_49554_Fig1_HTML.jpg

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