Li Xia, Chen Geng, Gao Qing-Qing, Xiang Chun-Fan, Yuan Cheng-Xiao, Li Xiao-Ning, Shu Yan-Yu, Zhang Guang-Hui, Liang Yan-Li, Yang Sheng-Chao, Zhai Chen-Xi, Zhao Yan
Key Laboratory of Medicinal Plant Biology of Yunnan Province, National and Local Joint Engineering Research Center on Germplasms Innovation and Utilization of Chinese Medicinal Materials in Southwest China, Yunnan Agricultural University, Kunming, China.
College of Agronomy and Biotechnology, Yunnan Agricultural University, Kunming, China.
Front Plant Sci. 2023 Mar 28;14:1138893. doi: 10.3389/fpls.2023.1138893. eCollection 2023.
is a Chinese traditional medicinal plant, containing cucurbitacin IIa (CuIIa) and cucurbitacin IIb (CuIIb), both of which have a wide range of pharmacological effects, including antiallergic, anti-inflammatory, and anticancer properties. However, few studies have been explored on the key enzymes that are involved in cucurbitacins biosynthesis in . Oxidosqualene cyclase (OSC) is a vital enzyme for cyclizing 2,3-oxidosqualene and its analogues. Here, a gene encoding the oxidosqualene cyclase of (), catalyzing to produce cucurbitadienol, was used as a template of mutagenesis. With the assistance of AlphaFold2 and molecular docking, we have proposed for the first time to our knowledge the 3D structure of HcOSC6 and its binding features to 2,3-oxidosqualene. Mutagenesis experiments on HcOSC6 generated seventeen different single-point mutants, showing that single-residue changes could affect its activity. Three key amino acid residues of HcOSC6, E246, M261 and D490, were identified as a prominent role in controlling cyclization ability. Our findings not only comprehensively characterize three key residues that are potentially useful for producing cucurbitacins, but also provide insights into the significant role they could play in metabolic engineering.
是一种中国传统药用植物,含有葫芦素IIa(CuIIa)和葫芦素IIb(CuIIb),两者都具有广泛的药理作用,包括抗过敏、抗炎和抗癌特性。然而,关于其葫芦素生物合成中涉及的关键酶的研究很少。氧化角鲨烯环化酶(OSC)是将2,3-氧化角鲨烯及其类似物环化的重要酶。在此,以编码其氧化角鲨烯环化酶()、催化产生葫芦二烯醇的基因作为诱变模板。在AlphaFold2和分子对接的帮助下,据我们所知,我们首次提出了HcOSC6的三维结构及其与2,3-氧化角鲨烯的结合特征。对HcOSC6进行的诱变实验产生了17种不同的单点突变体,表明单残基变化会影响其活性。HcOSC6的三个关键氨基酸残基E246、M261和D490被确定在控制环化能力方面起重要作用。我们的研究结果不仅全面表征了三个可能对生产葫芦素有用的关键残基,还为它们在代谢工程中可能发挥的重要作用提供了见解。