A facile access to aliphatic trifluoromethyl ketones via photocatalyzed cross-coupling of bromotrifluoroacetone and alkenes

IF 2.9 3区 化学 Q1 CHEMISTRY, ORGANIC Organic & Biomolecular Chemistry Pub Date : 2024-09-11 DOI:10.1039/d4ob01247j
Satoshi Mizuta, Tomoko Yamaguchi, Masaharu Iwasaki, Takeshi Ishikawa
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Abstract

Biological molecules incorporating trifluoromethyl ketones (TFMKs) have emerged as reversible covalent inhibitors, aiding in the management and treatment of inflammatory diseases, cancer, and respiratory conditions. TFMKs, renowned for their versatile binding properties and adaptability, are pivotal in the rational design of novel drugs for diverse diseases. The photocatalytic insertion of alkenes, abundant feedstocks, into the α-carbon of trifluoromethylacetone represents a highly effective and atom-economical method for synthesizing valuable TFMKs. However, these processes typically necessitate high-energy photoirradiation (λ > 300 nm, Hg lamp) and stoichiometric oxidants to generate the acetonyl radical from acetone. In our study, we demonstrate the visible-light photocatalytic radical addition into olefins using bromotrifluoroacetone as the trifluoroacetonyl radical precursor under mild conditions. Aliphatic trifluoromethyl ketones or the corresponding bromo-substituted products can be obtained by selecting an appropriate photocatalyst and solvent. Comprehensive experimental investigations, including cyclic voltammetry, Stern–Volmer quenching studies, and kinetic isotope effects, corroborate the synthesis of trifluoroacetonyl radical species from bromotrifluoroacetone under photoredox conditions. Further, we demonstrate the efficient synthesis of an oseltamivir derivative bearing a trifluoromethylketone moiety, which shows promising biological activity. Hence, this methodology will streamline the direct introduction of trifluoromethyl ketone into biological target molecules during drug discovery.

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通过光催化三氟溴丙酮与烯烃的交叉偶联,轻松获得脂肪族三氟甲基酮
含有三氟甲基酮(TFMKs)的生物分子已成为可逆共价抑制剂,有助于控制和治疗炎症、癌症和呼吸系统疾病。TFMKs 因其多变的结合特性和适应性而闻名,在合理设计治疗各种疾病的新型药物方面起着关键作用。光催化将烯烃这种丰富的原料插入到三氟甲基丙酮的 α 碳中,是合成有价值的 TFMKs 的一种高效且原子经济的方法。然而,这些过程通常需要高能光照射(λ > 300 nm,汞灯)和一定比例的氧化剂才能从丙酮中生成丙酮基。在我们的研究中,我们展示了在温和条件下使用溴三氟丙酮作为三氟丙酮自由基前体,在可见光光催化自由基加成烯烃的过程。通过选择适当的光催化剂和溶剂,可以获得脂肪族三氟甲基酮或相应的溴代产物。包括循环伏安法、斯特恩-沃尔默淬灭研究和动力学同位素效应在内的综合实验研究证实了在光氧化条件下从溴三氟丙酮合成三氟丙酮自由基的过程。此外,我们还证明了含有三氟甲基酮分子的奥司他韦衍生物的高效合成,该衍生物具有良好的生物活性。因此,这种方法将简化在药物发现过程中将三氟甲基酮直接引入生物靶分子的过程。
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来源期刊
Organic & Biomolecular Chemistry
Organic & Biomolecular Chemistry 化学-有机化学
CiteScore
5.50
自引率
9.40%
发文量
1056
审稿时长
1.3 months
期刊介绍: The international home of synthetic, physical and biomolecular organic chemistry.
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