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苯环的生物电子等排体:在先导化合物优化和药物设计中的近期策略性应用

Bioisosteres of the Phenyl Ring: Recent Strategic Applications in Lead Optimization and Drug Design.

作者信息

Subbaiah Murugaiah A M, Meanwell Nicholas A

机构信息

Department of Medicinal Chemistry, Biocon-Bristol Myers Squibb Research and Development Centre, Biocon Park, Bommasandra IV Phase, Jigani Link Road, Bangalore, Karnataka 560099, India.

Department of Small Molecule Drug Discovery, Bristol Myers Squibb Research and Early Development, P.O. Box 4000, Princeton, New Jersey 08543-4000, United States.

出版信息

J Med Chem. 2021 Oct 14;64(19):14046-14128. doi: 10.1021/acs.jmedchem.1c01215. Epub 2021 Sep 30.

Abstract

The benzene moiety is the most prevalent ring system in marketed drugs, underscoring its historic popularity in drug design either as a pharmacophore or as a scaffold that projects pharmacophoric elements. However, introspective analyses of medicinal chemistry practices at the beginning of the 21st century highlighted the indiscriminate deployment of phenyl rings as an important contributor to the poor physicochemical properties of advanced molecules, which limited their prospects of being developed into effective drugs. This Perspective deliberates on the design and applications of bioisosteric replacements for a phenyl ring that have provided practical solutions to a range of developability problems frequently encountered in lead optimization campaigns. While the effect of phenyl ring replacements on compound properties is contextual in nature, bioisosteric substitution can lead to enhanced potency, solubility, and metabolic stability while reducing lipophilicity, plasma protein binding, phospholipidosis potential, and inhibition of cytochrome P450 enzymes and the hERG channel.

摘要

苯环部分是市售药物中最普遍的环系,这突出了其在药物设计中作为药效基团或作为投射药效基团元素的支架的长期受欢迎程度。然而,对21世纪初药物化学实践的反思性分析强调,苯环的随意使用是导致先进分子不良物理化学性质的一个重要因素,这限制了它们被开发成有效药物的前景。本观点文章探讨了苯环生物电子等排体替代物的设计与应用,这些替代物为先导优化过程中经常遇到的一系列可开发性问题提供了实际解决方案。虽然苯环替代物对化合物性质的影响本质上是因具体情况而异的,但生物电子等排体替代可提高效力、溶解度和代谢稳定性,同时降低亲脂性、血浆蛋白结合、磷脂沉积潜力以及对细胞色素P450酶和hERG通道的抑制作用。

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