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昆诺酮型三萜化合物雷公藤红素的生物合成、全合成、结构修饰、生物活性及作用机制。

Biosynthesis, total synthesis, structural modifications, bioactivity, and mechanism of action of the quinone-methide triterpenoid celastrol.

机构信息

School of Traditional Chinese Medicine, Capital Medical University, Beijing, China.

School of Pharmaceutical Sciences, Capital Medical University, Beijing, China.

出版信息

Med Res Rev. 2021 Mar;41(2):1022-1060. doi: 10.1002/med.21751. Epub 2020 Nov 10.

Abstract

Celastrol, a quinone-methide triterpenoid, was extracted from Tripterygium wilfordii Hook. F. in 1936 for the first time. Almost 70 years later, it is considered one of the molecules most likely to be developed into modern drugs, as it exhibits notable bioactivity, including anticancer and anti-inflammatory activity, and exerts antiobesity effects. In addition, the molecular mechanisms underlying its bioactivity are being widely studied, which offers new avenues for its development as a pharmaceutical reagent. Owing to its potential therapeutic effects and unique chemical structure, celastrol has attracted considerable interest in the fields of organic, biosynthesis, and medicinal chemistry. As several steps in the biosynthesis of celastrol have been revealed, the mechanisms of key enzymes catalyzing the formation and postmodifications of the celastrol scaffold have been gradually elucidated, which lays a good foundation for the future heterogeneous biosynthesis of celastrol. Chemical synthesis is also an effective approach to obtain celastrol. The total synthesis of celastrol was realized for the first time in 2015, which established a new strategy to obtain celastroid natural products. However, owing to the toxic effects and suboptimal pharmacological properties of celastrol, its clinical applications remain limited. To search for drug-like derivatives, several structurally modified compounds were synthesized and tested. This review focuses primarily on the latest research progress in the biosynthesis, total synthesis, structural modifications, bioactivity, and mechanism of action of celastrol. We anticipate that this paper will facilitate a more comprehensive understanding of this promising compound and provide constructive references for future research in this field.

摘要

雷公藤红素是一种醌甲基三萜类化合物,于 1936 年首次从雷公藤(Tripterygium wilfordii Hook. F.)中提取得到。近 70 年后,因其具有显著的生物活性,包括抗癌和抗炎活性,以及发挥抗肥胖作用,被认为是最有可能开发成为现代药物的分子之一。此外,其生物活性的分子机制正在被广泛研究,这为其作为药物试剂的开发提供了新的途径。由于其潜在的治疗效果和独特的化学结构,雷公藤红素在有机化学、生物合成和药物化学等领域引起了广泛关注。随着雷公藤红素生物合成过程中的几个步骤被揭示,催化雷公藤红素支架形成和后期修饰的关键酶的机制逐渐被阐明,为未来雷公藤红素的异源生物合成奠定了良好的基础。化学合成也是获得雷公藤红素的有效方法。2015 年,首次实现了雷公藤红素的全合成,为获得雷公藤类天然产物建立了新的策略。然而,由于雷公藤红素的毒性作用和药理学性质不佳,其临床应用仍然受到限制。为了寻找类似药物的衍生物,合成并测试了几种结构修饰的化合物。本综述主要聚焦于雷公藤红素的生物合成、全合成、结构修饰、生物活性和作用机制的最新研究进展。我们期望本文将有助于更全面地了解这一有前途的化合物,并为该领域的未来研究提供建设性的参考。

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