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利用全细胞生物转化从植物油脂和香草基胺生产辣椒素非诺胺。

Production of capsaicinoid nonivamide from plant oil and vanillylamine via whole-cell biotransformation.

机构信息

State Key Laboratory of Animal Nutrition and Feeding, Institute of Animal Science, Chinese Academy of Agricultural Sciences, Beijing 100193, China.

State Key Laboratory of Animal Nutrition and Feeding, Institute of Animal Science, Chinese Academy of Agricultural Sciences, Beijing 100193, China.

出版信息

Bioresour Technol. 2023 Dec;390:129883. doi: 10.1016/j.biortech.2023.129883. Epub 2023 Oct 21.

Abstract

Capsaicinoids are mostly derived from chili peppers and have widespread applications in food, feed, and pharmacology. Compared with plant extraction, the use of microbial cell factories for capsaicinoids production is considered as a more efficient approach. Here, the biotransformation of renewable plant oil and vanillylamine into capsaicinoid nonivamide was investigated. Nonivamide biosynthesis using nonanoic acid and vanillylamine as substrates was achieved in Escherichia coli by heterologous expression of genes encoding amide-forming N-acyltransferase and CoA-ligase. Through increasing nonanoic acid tolerance of chassis cell, screening key enzymes involved in nonivamide biosynthesis and optimizing biotransformation conditions, the nonivamide titer reached 0.5 g/L. By further integrating a route for conversion of oleic acid to nonanoic acid, nonivamide biosynthesis was finally achieved using olive oil and vanillylamine as substrates, yielding a titer of approximately 10.7 mg/L. Results from this study provide valuable information for constructing highly efficient cell factories for the production of capsaicinoid compounds.

摘要

辣椒素类物质主要来源于辣椒,在食品、饲料和药理学中有着广泛的应用。与植物提取相比,利用微生物细胞工厂生产辣椒素类物质被认为是一种更有效的方法。本研究探索了利用可再生植物油脂和香草胺来生物转化合成辣椒素类物质——合成辣椒碱。通过异源表达酰胺形成 N-酰基转移酶和 CoA 连接酶基因,在大肠杆菌中以壬酸和香草胺为底物实现了合成辣椒碱的生物合成。通过提高底盘细胞对壬酸的耐受性、筛选参与合成辣椒碱的关键酶并优化生物转化条件,使合成辣椒碱的产量达到 0.5 g/L。通过进一步整合油酸到壬酸的转化途径,最终以橄榄油和香草胺为底物实现了合成辣椒碱的生物合成,产量约为 10.7 mg/L。本研究为构建高效生产辣椒素类化合物的细胞工厂提供了有价值的信息。

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