Department of Chemistry, University of Chicago, Chicago, Illinois 60637, United States.
J Am Chem Soc. 2022 Oct 26;144(42):19258-19264. doi: 10.1021/jacs.2c09616. Epub 2022 Oct 14.
Given the ubiquity of heterocycles in biologically active molecules, transformations with the capacity to modify such molecular skeletons with modularity remain highly desirable. Ring expansions that enable interconversion of privileged heterocyclic motifs are especially interesting in this regard. As such, the known mechanisms for ring expansion and contraction determine the classes of heterocycle amenable to skeletal editing. Herein, we report a reaction that selectively cleaves the N-N bond of pyrazole and indazole cores to afford pyrimidines and quinazolines, respectively. This chlorodiazirine-mediated reaction provides a unified route to a related pair of heterocycles that are otherwise typically prepared by divergent approaches. Mechanistic experiments and DFT calculations support a pathway involving pyrazolium ylide fragmentation followed by cyclization of the ring-opened diazahexatriene intermediate to yield the new diazine core. Beyond enabling access to valuable heteroarenes from easily prepared starting materials, we demonstrate the synthetic utility of skeletal editing in the synthesis of a Rosuvastatin analog as well as in an aryl vector-adjusting direct scaffold hop.
鉴于杂环化合物在生物活性分子中的普遍性,具有模块化能力的转化仍然是高度可取的,能够实现这种分子骨架的相互转换的环扩展在这方面尤其有趣。因此,已知的环扩展和收缩机制决定了可用于骨架编辑的杂环类别。在此,我们报告了一种选择性断裂吡唑和吲唑核心的 N-N 键的反应,分别得到嘧啶和喹唑啉。这种氯代二氮烯介导的反应为相关的一对杂环提供了一条统一的途径,否则这对杂环通常通过不同的方法来制备。机理实验和 DFT 计算支持了一条途径,涉及吡唑翁叶立德的片段化,然后环化开环的二氮杂六烯中间体,生成新的二嗪核。除了能够从易于制备的起始原料获得有价值的杂芳烃外,我们还展示了骨架编辑在合成罗苏伐他汀类似物以及在芳基矢量调节直接支架跃迁中的合成实用性。