Department of Pharmaceutical Engineering, School of Chemical Engineering and Technology, Tianjin University, Tianjin 300072, China.
Key Laboratory of Systems Bioengineering (Ministry of Education), Tianjin University, Tianjin 300072, China.
J Agric Food Chem. 2024 Apr 3;72(13):6871-6888. doi: 10.1021/acs.jafc.4c00030. Epub 2024 Mar 25.
Sesquiterpenes comprise a diverse group of natural products with a wide range of applications in cosmetics, food, medicine, agriculture, and biofuels. Heterologous biosynthesis is increasingly employed for sesquiterpene production, aiming to overcome the limitations associated with chemical synthesis and natural extraction. Sesquiterpene synthases (STSs) play a crucial role in the heterologous biosynthesis of sesquiterpene. Under the catalysis of STSs, over 300 skeletons are produced through various cyclization processes (C1-C10 closure, C1-C11 closure, C1-C6 closure, and C1-C7 closure), which are responsible for the diversity of sesquiterpenes. According to the cyclization types, we gave an overview of advances in understanding the mechanism of STSs cyclization from the aspects of protein crystal structures and site-directed mutagenesis. We also summarized the applications of engineering STSs in the heterologous biosynthesis of sesquiterpene. Finally, the bottlenecks and potential research directions related to the STSs cyclization mechanism and application of modified STSs were presented.
倍半萜是一类具有广泛应用价值的天然产物,在化妆品、食品、医药、农业和生物燃料等领域都有应用。异源生物合成越来越多地用于倍半萜的生产,旨在克服化学合成和天然提取相关的限制。倍半萜合酶(Sesquiterpene synthases,STSs)在异源生物合成倍半萜中起着关键作用。在 STSs 的催化下,通过各种环化过程(C1-C10 环化、C1-C11 环化、C1-C6 环化和 C1-C7 环化)产生超过 300 种骨架,这些骨架负责倍半萜的多样性。根据环化类型,我们从蛋白晶体结构和定点突变等方面综述了对 STSs 环化机制的理解进展。还总结了工程 STSs 在异源生物合成倍半萜中的应用。最后,提出了与 STSs 环化机制和修饰 STSs 应用相关的瓶颈和潜在研究方向。