Laboratory for Food and Medicine Homologous Natural Resources Development and Utilization, Belgorod College of Food Sciences, Dezhou University, Dezhou, 253023, China.
State Key Laboratory of Microbial Technology, Shandong University, Qingdao, 266237, China.
Eur J Med Chem. 2024 Mar 15;268:116234. doi: 10.1016/j.ejmech.2024.116234. Epub 2024 Feb 13.
Increasing disease-related proteins have been identified as novel therapeutic targets. Macrocycles are emerging as potential solutions, bridging the gap between conventional small molecules and biomacromolecules in drug discovery. Inspired by successful macrocyclic drugs of natural origins, macrocycles are attracting more attention for enhanced binding affinity and target selectivity. Due to the conformation constraint and structure preorganization, macrocycles can reach bioactive conformations more easily than parent acyclic compounds. Also, rational macrocyclization combined with sequent structural modification will help improve oral bioavailability and combat drug resistance. This review introduces various strategies to enhance membrane permeability in macrocyclization and subsequent modification, such as N-methylation, intramolecular hydrogen bonding modulation, isomerization, and reversible bicyclization. Several case studies highlight macrocyclic inhibitors targeting kinases, HDAC, and protein-protein interactions. Finally, some macrocyclic agents targeting tumor microenvironments are illustrated.
越来越多的与疾病相关的蛋白质被鉴定为新的治疗靶点。大环化合物作为潜在的解决方案正在出现,它们在药物发现中弥合了传统小分子和生物大分子之间的差距。受天然来源大环药物成功的启发,大环化合物因其增强的结合亲和力和靶标选择性而受到更多关注。由于构象约束和结构预组织,大环化合物比母体无环化合物更容易达到生物活性构象。此外,合理的大环化与随后的结构修饰相结合将有助于提高口服生物利用度和对抗药物耐药性。本综述介绍了各种在大环化和随后的修饰中增强膜通透性的策略,例如 N-甲基化、分子内氢键调节、异构化和可逆双环化。一些案例研究突出了针对激酶、HDAC 和蛋白质-蛋白质相互作用的大环抑制剂。最后,还展示了一些针对肿瘤微环境的大环药物。