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酮C(sp)-C(sp)键的脱酰基均裂:简化天然产物转化

Deacylative Homolysis of Ketone C(sp)-C(sp) Bonds: Streamlining Natural Product Transformations.

作者信息

Šimek Michal, Mahato Sujit, Dehnert Brady W, Kwon Ohyun

机构信息

Department of Chemistry and Biochemistry, University of California-Los Angeles, Los Angeles, California 90095-1569, United States.

出版信息

J Am Chem Soc. 2025 Jan 22;147(3):2664-2674. doi: 10.1021/jacs.4c15045. Epub 2025 Jan 7.

Abstract

The homolytic cleavage of C-C bonds adjacent to specific functional groups has lately emerged as a versatile approach for molecular diversification. Despite the ubiquity and synthetic utility of ketones, radical fragmentation of their α-C-C bonds has proven to be a formidable challenge. Here, we present a broadly applicable deacylative strategy designed to homolytically cleave aliphatic ketones of various complexities, including transformations of cycloalkanones into carboxylic acids tethered to C-centered free radicals that can be engaged in diverse radical-based processes. The method involves ketone activation through treatment with hydrogen peroxide, yielding -dihydroperoxides. Subsequent single-electron-transfer reduction mediated by a low-valent metal complex generates alkyl radicals that can be captured selectively with a radicophile of choice, including through catalytic cross-coupling. The logic of our deacylative functionalization is exemplified by the total synthesis of 14 natural products, one analogue, and two drugs starting from readily available natural products, showcasing its transformative power in complex settings. This approach obviates the need for complex reagents and allows the controlled conversion of ketones to reconstructed products, making the process highly applicable across a spectrum of domains.

摘要

与特定官能团相邻的C-C键的均裂裂解最近已成为一种用于分子多样化的通用方法。尽管酮类化合物普遍存在且具有合成用途,但其α-C-C键的自由基断裂已被证明是一项艰巨的挑战。在此,我们提出了一种广泛适用的脱酰基策略,旨在均裂裂解各种复杂程度的脂肪族酮,包括将环烷酮转化为与C中心自由基相连的羧酸,这些自由基可参与各种基于自由基的反应。该方法包括用过氧化氢处理来活化酮,生成α-二氢过氧化物。随后由低价金属络合物介导的单电子转移还原产生烷基自由基,这些自由基可以用选择的亲核试剂选择性捕获,包括通过催化交叉偶联。我们的脱酰基官能化逻辑通过从容易获得的天然产物出发全合成14种天然产物、一种类似物和两种药物得到例证,展示了其在复杂环境中的转化能力。这种方法无需复杂的试剂,并允许将酮可控地转化为重构产物,使得该过程在一系列领域中具有高度适用性。

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引用本文的文献

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