抗菌喹诺酮类药物的研究进展:绿色合成、相互作用模式和构效关系。

IF 2.5 3区 化学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Vishal Sharma, Monika Saini, Rina Das, Samrat Chauhan, Diksha Sharma, Somdutt Mujwar, Sumeet Gupta, Dinesh Kumar Mehta
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引用次数: 0

摘要

喹诺酮类抗生素是一类重要的合成抗菌剂,因其广谱抗菌活性而被广泛应用。由于抗菌素耐药性的发展,喹诺酮类药物的效力下降。为了提高氨化率和提高收率,开发了许多常规方法。这些方法的特点是反应时间长、溶剂沸点高、条件苛刻、试剂昂贵、产热过多,对这些化合物的治疗效果产生不利影响。最近,绿色化学关注于可持续的化学依赖性喹诺酮类类似物合成方法,这些方法可以显著减少细菌感染。这些方法包括一锅法、光氧化还原法、相转移法、超声辐照法、微波辅助法、绿色溶剂法和无催化剂法,这些方法通常采用节能、无毒、省时的技术,符合绿色化学原则,提高了安全性和对环境的影响。研究人员不断探索将这些方法应用于合成反应的创新方法。本综述对Scopus、PubMed、Embase和WOS近15年来的合成文献进行了综合分析,使用绿色化学、喹诺酮类、抗菌等关键词,重点分析了合成文献的重大进展和新趋势。这项工作的重要性在于对喹诺酮类及相关杂环化合物的绿色合成方法进行了广泛的文献综述。此外,为了为未来抗菌药物的开发提供有用的信息,一些结构-活性关系研究和计算机研究也被纳入研究喹诺酮类先导物与各种靶蛋白之间的稳定结合相互作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Recent Updates on Antibacterial Quinolones: Green Synthesis, Mode of Interaction and Structure–Activity Relationship

Recent Updates on Antibacterial Quinolones: Green Synthesis, Mode of Interaction and Structure–Activity Relationship

Quinolone antibiotics are a crucial class of synthetic antibacterial agents, widely utilized due to their broad spectrum of antibacterial activity. Due to the development of antimicrobial resistance, the potency of quinolone drugs decreased. Many conventional methods have been developed to elevate amination rate and to improve yield. These methods are generally characterized by prolonged reaction durations, high boiling solvents, harsh conditions, costly reagents and excessive heat generation, which have adversely affected the therapeutic efficacy of these compounds. Recently, green chemistry has focused on sustainable chemistry-dependent quinolone analogue synthesis methods that significantly reduce bacterial infections. These methods include one-pot synthesis, photoredox catalysis, phase transfer catalysis, ultrasonic irradiation, microwave-assisted, green solvent and catalyst-free synthesis, which often utilize energy-efficient, non-toxic and less time-consuming techniques, aligning with green chemistry principles to improve safety and environmental impact. Researchers continuously explore innovative approaches to applying these methods in synthetic reactions. This review includes a comprehensive analysis of synthetic literature from the past 15 years from Scopus, PubMed, Embase and WOS using keywords, such as green chemistry, quinolone and antibacterial, highlighting significant advancements and emerging trends. This work's importance lies in its extensive literature overview on green synthesis methods for quinolones and related heterocyclic compounds. Furthermore, to provide useful information for the generation of future antibacterial drugs, some structural–activity relationship studies and in silico studies have also been included to investigate the stable binding interactions between quinolone leads and various target proteins.

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来源期刊
Chemistry & Biodiversity
Chemistry & Biodiversity 环境科学-化学综合
CiteScore
3.40
自引率
10.30%
发文量
475
审稿时长
2.6 months
期刊介绍: Chemistry & Biodiversity serves as a high-quality publishing forum covering a wide range of biorelevant topics for a truly international audience. This journal publishes both field-specific and interdisciplinary contributions on all aspects of biologically relevant chemistry research in the form of full-length original papers, short communications, invited reviews, and commentaries. It covers all research fields straddling the border between the chemical and biological sciences, with the ultimate goal of broadening our understanding of how nature works at a molecular level. Since 2017, Chemistry & Biodiversity is published in an online-only format.
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