用于人参皂苷生物合成的 UDP-糖基转移酶的鉴定进展。

IF 3.3 2区 生物学 Q2 CHEMISTRY, MEDICINAL Journal of Natural Products Pub Date : 2024-03-06 DOI:10.1021/acs.jnatprod.3c00630
Xiaoxuan Yuan, Ruiqiong Li, Weishen He, Wei Xu, Wen Xu, Guohong Yan, Shaohua Xu*, Lixia Chen*, Yaqian Feng* and Hua Li*, 
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引用次数: 0

摘要

人参皂甙是三七属植物的主要药理活性成分,具有多种药用特性,包括抗心血管疾病、细胞毒性、抗衰老和抗糖尿病作用。然而,人参皂苷在植物中的浓度较低,而且提取人参皂苷也面临挑战,这阻碍了人参皂苷的发展和应用。异源生物合成是有针对性地生产这些天然活性化合物的一种有前途的策略。作为具有代表性的三萜类化合物,人参皂苷的苷元骨架的生物合成途径已被成功破解。糖基对人参皂苷的结构多样性和药理活性至关重要,而近年来对参与人参皂苷生物合成的二磷酸尿苷依赖性糖基转移酶(UGTs)的挖掘引起了广泛关注,并取得了重大进展。本文总结了人参和绞股蓝等植物以及枯草芽孢杆菌和酿酒酵母等微生物中负责人参皂苷合成的 UGTs 的鉴定和功能研究。我们还提到了用于大规模生产人参皂苷的 UGT 相关微生物细胞工厂。此外,我们还深入探讨了 UGT 的挖掘策略,特别是潜在的快速筛选或鉴定方法,并提出了见解和展望。本综述为研究其他未知糖基转移酶作为异源生物合成稀有人参皂苷的候选遗传因子提供了见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Progress in Identification of UDP-Glycosyltransferases for Ginsenoside Biosynthesis

Ginsenosides, the primary pharmacologically active constituents of the Panax genus, have demonstrated a variety of medicinal properties, including anticardiovascular disease, cytotoxic, antiaging, and antidiabetes effects. However, the low concentration of ginsenosides in plants and the challenges associated with their extraction impede the advancement and application of ginsenosides. Heterologous biosynthesis represents a promising strategy for the targeted production of these natural active compounds. As representative triterpenoids, the biosynthetic pathway of the aglycone skeletons of ginsenosides has been successfully decoded. While the sugar moiety is vital for the structural diversity and pharmacological activity of ginsenosides, the mining of uridine diphosphate-dependent glycosyltransferases (UGTs) involved in ginsenoside biosynthesis has attracted a lot of attention and made great progress in recent years. In this paper, we summarize the identification and functional study of UGTs responsible for ginsenoside synthesis in both plants, such as Panax ginseng and Gynostemma pentaphyllum, and microorganisms including Bacillus subtilis and Saccharomyces cerevisiae. The UGT-related microbial cell factories for large-scale ginsenoside production are also mentioned. Additionally, we delve into strategies for UGT mining, particularly potential rapid screening or identification methods, providing insights and prospects. This review provides insights into the study of other unknown glycosyltransferases as candidate genetic elements for the heterologous biosynthesis of rare ginsenosides.

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来源期刊
CiteScore
9.10
自引率
5.90%
发文量
294
审稿时长
2.3 months
期刊介绍: The Journal of Natural Products invites and publishes papers that make substantial and scholarly contributions to the area of natural products research. Contributions may relate to the chemistry and/or biochemistry of naturally occurring compounds or the biology of living systems from which they are obtained. Specifically, there may be articles that describe secondary metabolites of microorganisms, including antibiotics and mycotoxins; physiologically active compounds from terrestrial and marine plants and animals; biochemical studies, including biosynthesis and microbiological transformations; fermentation and plant tissue culture; the isolation, structure elucidation, and chemical synthesis of novel compounds from nature; and the pharmacology of compounds of natural origin. When new compounds are reported, manuscripts describing their biological activity are much preferred. Specifically, there may be articles that describe secondary metabolites of microorganisms, including antibiotics and mycotoxins; physiologically active compounds from terrestrial and marine plants and animals; biochemical studies, including biosynthesis and microbiological transformations; fermentation and plant tissue culture; the isolation, structure elucidation, and chemical synthesis of novel compounds from nature; and the pharmacology of compounds of natural origin.
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