Drzał Wiktoria, Trotsko Nazar
Students Research Group, Department of Organic Chemistry, Medical University of Lublin, 4A Chodzki Street, 20-093 Lublin, Poland.
Department of Organic Chemistry, Medical University of Lublin, 4A Chodzki Street, 20-093 Lublin, Poland.
Molecules. 2025 May 17;30(10):2201. doi: 10.3390/molecules30102201.
Tuberculosis (TB) remains one of the leading causes of mortality worldwide, exacerbated by the emergence of multidrug-resistant (MDR) and extensively drug-resistant (XDR) Mycobacterium tuberculosis strains. In the pursuit of novel therapeutic strategies, thiazolidin-4-one derivatives have gained significant attention due to their structural diversity and broad-spectrum biological activities. This review provides a comprehensive summary of recent advances (2021-present) in the synthesis, structure-activity relationship (SAR), and mechanisms of action of thiazolidin-4-one derivatives as promising antitubercular agents. A detailed discussion of synthetic pathways is presented, including classical and multi-component reactions leading to various subclasses such as thiazolidine-2,4-diones, rhodanines, and pseudothiohydantoins. The SAR analysis highlights key functional groups that enhance antimycobacterial activity, such as halogen substitutions and heterocyclic linkers, while molecular docking and in vitro studies elucidate interactions with key targets including InhA, MmpL3, and DNA gyrase. Several compounds demonstrate potent inhibitory effects with MIC values lower than or comparable to first-line TB drugs, alongside favorable cytotoxicity profiles. These findings underscore the potential of thiazolidin-4-one scaffolds as a valuable platform for the development of next-generation antitubercular therapeutics.
结核病(TB)仍然是全球主要死因之一,耐多药(MDR)和广泛耐药(XDR)结核分枝杆菌菌株的出现加剧了这一情况。在寻求新型治疗策略的过程中,噻唑烷-4-酮衍生物因其结构多样性和广谱生物活性而备受关注。本综述全面总结了噻唑烷-4-酮衍生物作为有前景的抗结核药物在合成、构效关系(SAR)及作用机制方面的最新进展(2021年至今)。文中详细讨论了合成途径,包括导致噻唑烷-2,4-二酮、若丹宁和假硫代乙内酰脲等各种亚类的经典反应和多组分反应。SAR分析突出了增强抗分枝杆菌活性的关键官能团,如卤素取代基和杂环连接基,而分子对接和体外研究则阐明了与包括InhA、MmpL3和DNA促旋酶在内的关键靶点的相互作用。几种化合物表现出强效抑制作用,其最低抑菌浓度(MIC)值低于或与一线抗结核药物相当,且细胞毒性特征良好。这些发现强调了噻唑烷-4-酮骨架作为开发下一代抗结核治疗药物的宝贵平台的潜力。