Li Jinling, Wang Shuai, Miao Yinan, Wan Ya, Li Chun, Wang Ying
Key Laboratory of Medical Molecule Science and Pharmaceutical Engineering, Ministry of Industry and Information Technology, Institute of Biochemical Engineering, School of Chemistry and Chemical Engineering, Beijing Institute of Technology, Beijing 100081, China.
Key Laboratory of Medical Molecule Science and Pharmaceutical Engineering, Ministry of Industry and Information Technology, Institute of Biochemical Engineering, School of Chemistry and Chemical Engineering, Beijing Institute of Technology, Beijing 100081, China; Key Laboratory for Industrial Biocatalysis, Ministry of Education, Department of Chemical Engineering, Tsinghua University, Beijing 100084, China.
J Biotechnol. 2023 Sep 20;375:1-11. doi: 10.1016/j.jbiotec.2023.08.004. Epub 2023 Aug 18.
β-Amyrin is a pentacyclic triterpenoid and has anti-viral, anti-bacterial and anti-inflammatory activities. The synthetic pathway of β-amyrin has been analyzed and its heterogeneous synthesis has been achieved in Saccharomyces cerevisiae. Squalene epoxidase (SQE) catalyzes the oxygenation of squalene to form 2,3-oxidosqualene and is rate-limiting in the synthetic pathways of β-amyrin. The endogenous SQE in S. cerevisiae is insufficient for high production of β-amyrin. Herein, eight squalene epoxidases derived from different plants were selected and characterized in S. cerevisiae for improved biosynthesis of β-amyrin. Among them, the squalene epoxidase from Oryza sativa (OsSQE52) showed the best performance compared to other plant-derived sources. Through protein remodeling, the mutant OsSQE52, obtained based on modeling analysis, increased the titer of β-amyrin by 2.43-fold compared to that in the control strain with ERG1 overexpressed under the same conditions. Moreover, the expression of OsSQE52 was optimized with the improvement of precursor supply to further increase the production of β-amyrin. Finally, the constructed strains produced 66.97 mg/L β-amyrin in the shake flask, which was 6.45-fold higher than the original strain. Our study provides alternative SQEs for efficient production of β-amyrin as well as other triterpenoids derived from 2,3-oxidosqualene.
β-香树脂醇是一种五环三萜类化合物,具有抗病毒、抗菌和抗炎活性。β-香树脂醇的合成途径已被分析,并且其在酿酒酵母中实现了异源合成。角鲨烯环氧酶(SQE)催化角鲨烯的氧化形成2,3-氧化角鲨烯,并且在β-香树脂醇的合成途径中是限速酶。酿酒酵母中的内源性SQE不足以实现β-香树脂醇的高产。在此,选择了八种来自不同植物的角鲨烯环氧酶,并在酿酒酵母中进行表征,以改善β-香树脂醇的生物合成。其中,来自水稻的角鲨烯环氧酶(OsSQE52)与其他植物来源相比表现出最佳性能。通过蛋白质重塑,基于模型分析获得的突变体OsSQE52与在相同条件下过表达ERG1的对照菌株相比,β-香树脂醇的产量提高了2.43倍。此外,随着前体供应的改善优化了OsSQE52的表达,以进一步提高β-香树脂醇的产量。最后,构建的菌株在摇瓶中产生了66.97 mg/L的β-香树脂醇,比原始菌株高6.45倍。我们的研究为高效生产β-香树脂醇以及其他源自2,3-氧化角鲨烯的三萜类化合物提供了替代的SQE。