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Lewis Acid Enabled Copper-Catalyzed Asymmetric Synthesis of Chiral β-Substituted Amides

机译:Lewis酸使铜催化手性β取代的酰胺的不对称合成

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摘要

Here we report that readily available silyl- and boron-based Lewis acids in combination with chiral copper catalysts are able to overcome the reactivity issues of unactivated enamides, known as the least reactive carboxylic acid derivatives, toward alkylation with organomagnesium reagents. Allowing unequaled chemo-reactivity and stereocontrol in catalytic asymmetric conjugate addition to enamides, the method is distinguished by its unprecedented reaction scope, allowing even the most challenging and synthetically important methylations to be accomplished with good yields and excellent enantioselectivities. This catalytic protocol tolerates a broad temperature range (-78 °C to ambient) and scale up (10 g), while the chiral catalyst can be reused without affecting overall efficiency. Mechanistic studies revealed the fate of the Lewis acid in each elementary step of the copper-catalyzed conjugate addition of Grignard reagents to enamides, allowing us to identify the most likely catalytic cycle of the reaction.
机译:在这里我们报告说,容易获得的甲硅烷基和硼基路易斯酸与手性铜催化剂的结合能够克服未活化的酰胺类(被称为最低反应性羧酸衍生物)对有机镁试剂烷基化的反应性问题。该方法在催化不对称共轭物添加到酰胺中时可实现无与伦比的化学反应性和立体控制,其特点是其空前的反应范围,甚至可以以高收率和出色的对映选择性实现最具挑战性和合成上重要的甲基化。该催化方案可耐受较宽的温度范围(相对于环境温度为-78°C)并按比例放大(10 g),而手性催化剂可重复使用而不会影响整体效率。机理研究表明,路易斯酸在将格氏试剂与铜进行铜催化的共轭加成反应的每个基本步骤中都具有决定性的作用,这使我们能够确定反应的最可能催化周期。

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