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功能化喹啉基序的化学进展与治疗潜力——综述

Recent advances in chemistry and therapeutic potential of functionalized quinoline motifs - a review.

作者信息

Ajani Olayinka O, Iyaye King T, Ademosun Olabisi T

机构信息

Department of Chemistry, Covenant University Km 10, Idiroko Road PMB 1023 Ota Ogun State Nigeria

出版信息

RSC Adv. 2022 Jun 24;12(29):18594-18614. doi: 10.1039/d2ra02896d. eCollection 2022 Jun 22.

DOI:10.1039/d2ra02896d
PMID:35873320
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC9231466/
Abstract

Quinoline, which consists of benzene fused with -heterocyclic pyridine, has received considerable attention as a core template in drug design because of its broad spectrum of bioactivity. This review aims to present the recent advances in chemistry, medicinal potential and pharmacological applications of quinoline motifs to unveil their substantial efficacies for future drug development. Essential information in all the current and available literature used was accessed and retrieved using different search engines and databases, including Scopus, ISI Web of Knowledge, Google and PUBMED. Numerous derivatives of the bioactive quinolines have been harnessed expeditious synthetic approaches, as highlighted herein. This review reveals that quinoline is an indisputable pharmacophore due to its tremendous benefits in medicinal chemistry research and other valuable areas of human endeavour. The recent and screening reported by scientists is highlighted herein, which may pave the way for novel drug development. Owing to the array of information available and highlighted herein on the medicinal potential of quinoline and its functionalized derivatives, a new window of opportunity may be opened to medicinal chemists to access more biomolecular quinolines for future drug development.

摘要

喹啉由与杂环吡啶稠合的苯组成,由于其广泛的生物活性,作为药物设计中的核心模板受到了广泛关注。本综述旨在介绍喹啉基序在化学、药用潜力和药理学应用方面的最新进展,以揭示其在未来药物开发中的巨大功效。使用不同的搜索引擎和数据库,包括Scopus、ISI Web of Knowledge、谷歌和PubMed,获取并检索了所有当前可用文献中的基本信息。如本文所强调的,生物活性喹啉的许多衍生物已通过快速合成方法得到应用。本综述表明,喹啉因其在药物化学研究和人类努力的其他有价值领域中的巨大益处,是一个无可争议的药效团。本文突出了科学家们最近的研究和筛选结果,这可能为新药开发铺平道路。由于本文提供并突出了关于喹啉及其功能化衍生物药用潜力的一系列信息,可能会为药物化学家打开一扇新的机会之窗,以便获取更多用于未来药物开发的生物分子喹啉。

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