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黄芪中从环黄芪醇到黄芪甲苷的涉及C-3氧化还原反应的四步生物合成途径。

A four-step biosynthetic pathway involving C-3 oxidation-reduction reactions from cycloastragenol to astragaloside IV in Astragalus membranaceus.

作者信息

Zhang Meng, Bao Yang-Oujie, Zhao Chun-Xue, Tian Yun-Gang, Wang Zi-Long, Qiao Xue, Ye Min

机构信息

State Key Laboratory of Natural and Biomimetic Drugs, School of Pharmaceutical Sciences, Peking University, 38 Xueyuan Road, Beijing, 100191, China.

出版信息

Plant J. 2024 Oct;120(2):569-577. doi: 10.1111/tpj.17001. Epub 2024 Aug 24.

DOI:10.1111/tpj.17001
PMID:39180339
Abstract

Astragaloside IV is a significant chemical component derived from the medicinal plant Astragalus membranaceus. Despite the characterization of several glycosyltransferases from A. membranaceus, the complete biosynthetic pathway of astragaloside IV has not been fully elucidated. In this study, we propose a biosynthetic pathway for astragaloside IV that involves a sequence of oxidation-reduction reactions. The biosynthesis pathway from cycloastragenol to astragaloside IV encompasses four key steps: C-3 oxidation, 6-O-glucosylation, C-3 reduction, and 3-O-xylosylation. We identified a hydroxysteroid dehydrogenase AmHSD1 from A. membranaceus. AmHSD1 catalyzes the C-3 oxidation of cycloastragenol, yielding cycloastragenol-3-one, and the C-3 reduction of cycloastragenol-3-one-6-O-glucoside, resulting in cycloastragenol-6-O-glucoside. Additionally, the glycosyltransferases AmGT8 and AmGT1, previously reported by our groups, were identified as catalyzing the 6-O-glucosylation and 3-O-xylosylation steps, respectively. Astragaloside IV was successfully synthesized in transient expression in Nicotiana benthamiana using the combination of AmHSD1, AmGT8 and AmGT1. These results support the proposed four-step biosynthetic pathway and suggest that AmHSD1 probably plays a crucial role in the biosynthesis of astragaloside IV within A. membranaceus.

摘要

黄芪甲苷IV是从药用植物膜荚黄芪中提取的一种重要化学成分。尽管已经对膜荚黄芪中的几种糖基转移酶进行了表征,但黄芪甲苷IV的完整生物合成途径尚未完全阐明。在本研究中,我们提出了一条黄芪甲苷IV的生物合成途径,该途径涉及一系列氧化还原反应。从环黄芪醇到黄芪甲苷IV的生物合成途径包括四个关键步骤:C-3氧化、6-O-葡萄糖基化、C-3还原和3-O-木糖基化。我们从膜荚黄芪中鉴定出一种羟基类固醇脱氢酶AmHSD1。AmHSD1催化环黄芪醇的C-3氧化,生成环黄芪醇-3-酮,并催化环黄芪醇-3-酮-6-O-葡萄糖苷的C-3还原,生成环黄芪醇-6-O-葡萄糖苷。此外,我们团队之前报道的糖基转移酶AmGT8和AmGT1分别被鉴定为催化6-O-葡萄糖基化和3-O-木糖基化步骤。利用AmHSD1、AmGT8和AmGT1的组合,在本氏烟草的瞬时表达中成功合成了黄芪甲苷IV。这些结果支持了所提出的四步生物合成途径,并表明AmHSD1可能在膜荚黄芪中黄芪甲苷IV的生物合成中起关键作用。

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