杨林, 汪逗逗, 田少凯, 张智新, 侯嘉铭, 肖瑶, 刘颖. 甘草DXS基因过表达及表达沉默对甘草酸生物合成的影响研究J. 药学学报, 2021,56(7): 2025-2032. doi: 10.16438/j.0513-4870.2021-0225
引用本文: 杨林, 汪逗逗, 田少凯, 张智新, 侯嘉铭, 肖瑶, 刘颖. 甘草DXS基因过表达及表达沉默对甘草酸生物合成的影响研究J. 药学学报, 2021,56(7): 2025-2032. doi: 10.16438/j.0513-4870.2021-0225
YANG Lin, WANG Dou-dou, TIAN Shao-kai, ZHANG Zhi-xin, HOU Jia-ming, XIAO Yao, LIU Ying. The role of licorice DXS knockout and overexpression in glycyrrhizic acid biosynthesisJ. Acta Pharmaceutica Sinica, 2021,56(7): 2025-2032. doi: 10.16438/j.0513-4870.2021-0225
Citation: YANG Lin, WANG Dou-dou, TIAN Shao-kai, ZHANG Zhi-xin, HOU Jia-ming, XIAO Yao, LIU Ying. The role of licorice DXS knockout and overexpression in glycyrrhizic acid biosynthesisJ. Acta Pharmaceutica Sinica, 2021,56(7): 2025-2032. doi: 10.16438/j.0513-4870.2021-0225

甘草DXS基因过表达及表达沉默对甘草酸生物合成的影响研究

The role of licorice DXS knockout and overexpression in glycyrrhizic acid biosynthesis

  • 摘要: 1-脱氧-D-木酮糖-5-磷酸合酶(1-deoxy-D-xylulose-5-phosphate synthase,DXS)是萜类化合物前体物质合成途径2-C-甲基-D-赤藻糖醇-4-磷酸(2-C-methyl-D-erythritol 4-phosphate,MEP)途径的第一个限速酶,在甘草次生代谢过程中发挥着重要的调控作用。本课题组在前期转录组研究中发现DXS基因表达水平与甘草的指标性成分甘草酸的含量呈负相关,因此本文拟通过毛状根培养体系,从基因过表达和沉默两方面开展研究,解析DXS基因对甘草酸生物合成的调控作用。本文克隆了甘草DXS基因(GenBank注册号:MN158121);采用基因融合法构建了过表达载体pCA-DXS;根据DXS第一外显子设计sgRNA序列,构建了CRISPR/Cas9基因编辑载体pHSE-DXS;以甘草胚轴为外植体材料,采用发根农杆菌介导法诱导了DXS基因过表达和表达沉默的甘草毛状根体系。同时,诱导了野生型甘草毛状根及含空质粒的阴性对照毛状根。采用UPLC法测定各甘草毛状根样品中甘草酸的含量,结果显示:DXS基因沉默组毛状根样品中甘草酸含量显著高于野生型和阴性对照组,而DXS基因过表达甘草毛状根样品中甘草酸含量则显著低于野生型和阴性对照组。本文通过逆向遗传学策略,从基因过表达和沉默两个方面证实了DXS基因对甘草酸生物合成的负调控作用,为解析DXS基因在萜类化合物代谢中的作用提供了理论依据,也为进一步构建甘草酸生物合成分子调控网络奠定了基础。

     

    Abstract: 1-Deoxy-D-xylulose-5-phosphate synthase (DXS) is a rate-limiting enzyme involved in the 2-C-methyl-D-erythritol 4-phosphate (MEP) pathway for terpenoid precursor biosynthesis. DXS plays an essential role in glycyrrhizic acid (GA) biosynthesis. Based on our previous transcriptome study, there was a negative correlation between DXS expression and GA content. Therefore, we explored the regulatory role of DXS in GA biosynthesis using both gene overexpression and gene knockout in a hairy root culture system. DXS was cloned from Glycyrrhiza glabra L. (GenBank Accession No. MN158121). A plant binary expression vector pCA-DXS was constructed by a gene fusion method. The sgRNA sequence was designed based on the first exon of DXS to construct the gene editing vector pHSE-DXS. Hairy roots overexpressing or knocking out DXS were generated through an Agrobacterium-mediated method with licorice hypocotyls as explants. Wild-type hairy roots and negative control hairy roots containing empty plasmids were also evaluated. UPLC was used to determine the GA content in each licorice hairy root line. Results showed that the content of GA in the hairy root group knocking out DXS was significantly higher than that in the wild-type and negative control groups, while in the hairy root group overexpressing DXS was significantly lower, suggesting that DXS plays a negative role in GA biosynthesis. This study provides a foundation for determining the function of DXS in terpenoid metabolism and for further establishment of a molecular regulatory network of GA biosynthesis.

     

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