School of Medicine, Huaqiao University, Quanzhou, 362000, China.
Pharmacy Department, The Second Affiliated Hospital of Fujian Medical University, Quanzhou, 362000, China.
Future Med Chem. 2022 Nov;14(22):1681-1692. doi: 10.4155/fmc-2022-0188. Epub 2022 Nov 1.
The phenyl group is the most prevalent ring system and plays an essential role as a pharmacophore or scaffold in marketed drugs. However, the indiscriminate employment of phenyl is also a major cause of poor physicochemical properties of active molecules. Nonclassical phenyl bioisosteres (NPBs) have emerged as effective replacements for phenyl in structural optimization due to their unique steric structures and physicochemical properties. Herein, the effects of widely reported NPBs on physicochemical properties and biological activities, including bicyclo[1.1.1]pentane (BCP), bicyclo[2.1.1]hexanes (BCH), bicyclo[2.2.2]octane (BCO), cubane (CUB) and closo-carboborane, are reviewed. Issues that require consideration while using NPBs and practical solutions to problems frequently encountered in structural optimization using NPBs are also discussed.
苯基是最常见的环系统,作为药效团或支架在上市药物中起着至关重要的作用。然而,苯基的不加区分的使用也是导致活性分子物理化学性质差的一个主要原因。由于具有独特的空间结构和物理化学性质,非经典苯基生物等排体(NPBs)已成为结构优化中替代苯基的有效方法。本文综述了广泛报道的 NPBs(如双环[1.1.1]戊烷(BCP)、双环[2.1.1]己烷(BCH)、双环[2.2.2]辛烷(BCO)、立方烷(CUB)和closo-碳硼烷)对物理化学性质和生物活性的影响。还讨论了使用 NPBs 时需要考虑的问题以及在使用 NPBs 进行结构优化时经常遇到的问题的实际解决方案。