Kelly Christopher B, Milligan John A, Tilley Leon J, Sodano Taylor M
Discovery Process Research, Janssen Research & Development LLC 1400 McKean Road, Spring House PA 19477 USA
Department of Biological and Chemical Sciences, College of Life Sciences, Thomas Jefferson University 4201 Henry Avenue Philadelphia PA 19144 USA
Chem Sci. 2022 Aug 25;13(40):11721-11737. doi: 10.1039/d2sc03948f. eCollection 2022 Oct 19.
The unique chemistry of small, strained carbocyclic systems has long captivated organic chemists from a theoretical and fundamental standpoint. A resurgence of interest in strained carbocyclic species has been prompted by their potential as bioisosteres, high fraction of sp carbons, and limited appearance in the patent literature. Among strained ring systems, bicyclo[1.1.0]butane (BCB) stands apart as the smallest bicyclic carbocycle and is amongst the most strained carbocycles known. Despite the fact that BCBs have been synthesized and studied for well over 50 years, they have long been regarded as laboratory curiosities. However, new approaches for preparing, functionalizing, and using BCBs in "strain-release" transformations have positioned BCBs to be powerful synthetic workhorses. Further, the olefinic character of the bridgehead bond enables BCBs to be elaborated into various other ring systems and function as covalent warheads for bioconjugation. This review will discuss the recent developments in the synthesis and functionalization of BCBs as well as the applications of these strained rings in synthesis and drug discovery. An overview of the properties and the historical context of this interesting structure will be provided.
从小型、张力碳环体系的独特化学性质来看,长期以来它在理论和基础层面吸引着有机化学家。由于其作为生物电子等排体的潜力、高比例的sp碳以及在专利文献中出现频率有限,人们对张力碳环物种的兴趣再度兴起。在张力环体系中,双环[1.1.0]丁烷(BCB)作为最小的双环碳环脱颖而出,是已知的最具张力的碳环之一。尽管BCB已经被合成和研究了五十多年,但长期以来它们一直被视为实验室里的稀罕物。然而,在“应变释放”转化中制备、官能团化和使用BCB的新方法,已使BCB成为强大的合成工具。此外,桥头键的烯烃特性使BCB能够衍生出各种其他环系,并作为生物缀合的共价弹头。本综述将讨论BCB合成和官能团化的最新进展,以及这些张力环在合成和药物发现中的应用。还将概述这种有趣结构的性质和历史背景。