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通过多底物筛选方法实现钯(II)催化的杂芳烃非定向后期C(sp)-H氘代反应

Palladium(II)-Catalyzed Nondirected Late-Stage C(sp)-H Deuteration of Heteroarenes Enabled Through a Multi-Substrate Screening Approach.

作者信息

Dey Jyotirmoy, Kaltenberger Simon, van Gemmeren Manuel

机构信息

Otto-Diels-Institut für Organische Chemie, Christian-Albrechts-Universität zu Kiel, Otto-Hahn-Platz 4, 24098, Kiel, Germany.

出版信息

Angew Chem Int Ed Engl. 2024 Jul 1;63(27):e202404421. doi: 10.1002/anie.202404421. Epub 2024 Jun 3.

Abstract

The importance of deuterium labelling in a variety of applications, ranging from mechanistic studies to drug-discovery, has spurred immense interest in the development of new methods for its efficient incorporation in organic, and especially in bioactive molecules. The five-membered heteroarenes at the center of this work are ubiquitous motifs in bioactive molecules and efficient methods for the deuterium labelling of these compounds are therefore highly desirable. However, the profound differences in chemical properties encountered between different heteroarenes hamper the development of a single set of broadly applicable reaction conditions, often necessitating a separate optimization campaign for a given type of heteroarene. In this study we describe the use of a multi-substrate screening approach to identify optimal reaction conditions for different classes of heteroarenes from a minimal number of screening reactions. Using this approach, four sets of complementary reaction conditions derived from our dual ligand-based palladium catalysts for nondirected C(sp)-H activation were identified, that together enable the deuteration of structurally diverse heteroarenes, including bioactive molecules.

摘要

氘标记在从机理研究到药物发现等各种应用中的重要性,激发了人们对开发新方法以将其高效引入有机分子,特别是生物活性分子的极大兴趣。这项工作核心的五元杂芳烃是生物活性分子中普遍存在的结构单元,因此非常需要用于这些化合物氘标记的有效方法。然而,不同杂芳烃之间化学性质的巨大差异阻碍了一套广泛适用的反应条件的开发,通常需要针对给定类型的杂芳烃进行单独的优化研究。在本研究中,我们描述了使用多底物筛选方法,从最少数量的筛选反应中确定不同类杂芳烃的最佳反应条件。使用这种方法,我们从基于双配体的钯催化剂用于非定向C(sp)-H活化中确定了四组互补的反应条件,这些条件共同实现了结构多样的杂芳烃(包括生物活性分子)的氘代反应。

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