Engineering Research Center of Ministry of Education on Food Synthetic Biotechnology, School of Biotechnology, Jiangnan University, 1800 Lihu Road, Wuxi, Jiangsu 214122, China.
Science Center for Future Foods, Jiangnan University, 1800 Lihu Rd, Wuxi, Jiangsu 214122, China.
J Agric Food Chem. 2024 Nov 6;72(44):24599-24608. doi: 10.1021/acs.jafc.4c05892. Epub 2024 Oct 25.
Squalene epoxidase plays a pivotal role in the biosynthesis of ergosterol, its derivatives, and other triterpenoid compounds by catalyzing the transformation of squalene into 2,3-oxidosqualene. However, its low catalytic efficiency remains a primary bottleneck for the microbial synthesis of triterpenoids. In this study, the catalytic activity of the squalene epoxidase from was significantly improved by reshaping its substrate tunnel, resulting in a marked increase in the yield of the final product, ergosterol. First, the amino acid in the catalytic pocket of squalene epoxidase was replaced with alanine (Ala), effectively reducing the steric hindrance, and thus, enhancing the affinity of the enzyme with its substrate. Then, the V249H/L343A mutant was obtained by redesigning the substrate tunnel of dominant mutant L343A, thus, increasing the titer of ergosterol. The study also elucidated the mechanism behind the increased catalytic activity of the V249H/L343A mutant through substrate tunnel parameter analysis and molecular dynamics simulations. Finally, a titer of 3345 mg/L of ergosterol was achieved by strains containing V249H/L343A in a 5 L bioreactor, with a specific yield of 84 mg/g dry cell weight (DCW), marking a 64% increase compared with the titer achieved by wild type strains. This study established a strong foundation for improving the synthetic efficiency of ergosterol and other triterpenoid compounds.
角鲨烯环氧化酶在甾醇、其衍生物和其他三萜类化合物的生物合成中发挥着关键作用,通过催化角鲨烯转化为 2,3-氧化角鲨烯来实现。然而,其低催化效率仍然是微生物合成三萜类化合物的主要瓶颈。在这项研究中,通过重塑其底物隧道,显著提高了来自 的角鲨烯环氧化酶的催化活性,从而使最终产物麦角固醇的产量明显增加。首先,用丙氨酸(Ala)替换角鲨烯环氧化酶催化口袋中的氨基酸,有效地降低了空间位阻,从而提高了酶与底物的亲和力。然后,通过重新设计优势突变体 L343A 的底物隧道,获得了 V249H/L343A 突变体,从而提高了麦角固醇的产量。该研究还通过底物隧道参数分析和分子动力学模拟阐明了 V249H/L343A 突变体催化活性增加的机制。最后,在 5L 生物反应器中,含有 V249H/L343A 的菌株达到了 3345mg/L 的麦角固醇产量,比野生型菌株的产量提高了 64%,比野生型菌株的产量提高了 84mg/g 干细胞重量(DCW)。这项研究为提高麦角固醇和其他三萜类化合物的合成效率奠定了坚实的基础。