探索四氢化萘的治疗潜力和结构改造的见解。

IF 3.2 4区 医学 Q3 CHEMISTRY, MEDICINAL Future medicinal chemistry Pub Date : 2024-12-01 Epub Date: 2024-11-28 DOI:10.1080/17568919.2024.2432297
Liang Gong, He Liu, Bo Xu, Tao Yu, Yi Wang, Sheng-Li Niu, Rong Zeng, Qin Ouyang
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引用次数: 0

摘要

四氢萘啶(Tetrandrine,简称 Tet)是一种双苄基异喹啉生物碱,来自四氢萘,具有多种药理作用,但由于毒性、溶解性差和生物利用度低等原因,其临床应用受到限制。研究人员正致力于通过结构改造,开发出具有更大治疗潜力的 Tet 衍生物,以解决这些问题。一般来说,主要的改造包括1) 在 C-5 位引入芳香杂环或疏水性炔烃单元,可增强其抗肿瘤活性;2) 在 C-14 位加入酰胺、磺酰胺或夺电子基团,可增强其抗肿瘤活性;3) 将其结构改为季铵盐,可改变其溶解性,大大提高其抗菌活性;4)C-12-甲氧基苄基基团的结构修饰可提高其代谢稳定性,从而改变类似物的活性;5)Tet 结构简化可能导致具有新作用机制的抗癌先导化合物的发现。本综述系统地总结了这些修饰策略,并对 Tet 衍生物的生物活性进行了评估,旨在指导进一步的优化工作,促进发现具有更好疗效的先导类似物。此外,还探讨了 Tet 结构优化的未来方向和可能性。
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Insights on exploring the therapeutic potential and structural modification of Tetrandrine.

Tetrandrine (Tet), a bisbenzylisoquinoline alkaloid from Stephania tetrandra, is noted for its diverse pharmacological effects but faces limitations in clinical use due to toxicity, poor solubility, and low bioavailability. Researchers are working to address these issues by developing Tet derivatives with greater therapeutic potential through structural modification. Generally, key modifications include: 1) introducing an aromatic heterocycle or a hydrophobic alkyne unit at the C-5 position can enhance its antitumor activity; 2) adding an amide, sulfonamide, or electron-withdrawing group at the C-14 position can enhance its antitumor activity; 3) changing its structure to a quaternary ammonium salt can alter its solubility and greatly boost its antibacterial activity; 4) structural modification of the C-12-methoxybenzyl motif can enhance its metabolic stability and thus change the activity of the analogs; 5) Tet structural simplification may result in the identification of anticancer lead compounds with novel mechanisms of action. This review systematically summarizes these modification strategies and evaluates the biological activities of Tet derivatives, aiming to guide further optimization and facilitate the discovery of lead analogs with improved efficacy. The future direction and possibility of Tet structural optimization are also considered.

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来源期刊
Future medicinal chemistry
Future medicinal chemistry CHEMISTRY, MEDICINAL-
CiteScore
5.80
自引率
2.40%
发文量
118
审稿时长
4-8 weeks
期刊介绍: Future Medicinal Chemistry offers a forum for the rapid publication of original research and critical reviews of the latest milestones in the field. Strong emphasis is placed on ensuring that the journal stimulates awareness of issues that are anticipated to play an increasingly central role in influencing the future direction of pharmaceutical chemistry. Where relevant, contributions are also actively encouraged on areas as diverse as biotechnology, enzymology, green chemistry, genomics, immunology, materials science, neglected diseases and orphan drugs, pharmacogenomics, proteomics and toxicology.
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