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Combining Zn Ion Catalysis with Homogeneous Gold Catalysis: An Efficient Annulation Approach to N-Protected Indoles

机译:结合锌离子催化与均匀的金催化:一种有效的方法环N-保护吲哚

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摘要

The Fischer indole synthesis is perhaps the most powerful method for indole preparation, but it often suffers from low regioselectivities with unsymmetric aliphatic ketone substrates and strong acidic conditions and is not suitable for α,β-unsaturated ketones. In this article, we disclose an efficient synthesis of N-protected indoles from N-arylhydroxamic acids/N-aryl-N-hydroxycarbamates and a variety of alkynes via a cooperative gold and zinc catalysis. The zinc catalysis is similar to the related zinc ion catalysis in metalloenzymes such as human carbonic anhydrase II and substantially enhances the O-nucleophilicity of N-acylated hydroxamines by forming the corresponding Zn chelates. The Zn chelates can attack gold-activated alkynes to form O-alkenyl-N-arylhydroxamates, which can undergo facile 3,3-sigmatropic rearrangements and subsequent cyclodehydrations to yield N-protected indole products. This new chemistry offers several important improvements over the Fischer indole synthesis: a) the reaction conditions are mildly acidic and can tolerate sensitive groups such as Boc; b) broader substrate scopes including substrates with pendant carbonyl groups (reactive in the Fischer chemistry) and alkyl chlorides (e.g., >3f); c) better regioselectivities for the formation of 2-substituted indoles under much milder conditions; d) 2-alkenylindoles can be prepared readily in good to excellent yields, but the Fischer chemistry could not; e) with internal alkynes both steric and electronic controls are available for achieving good regioselectivities, while the Fischer chemistry is in general problematic.
机译:Fischer吲哚合成也许是最有效的吲哚制备方法,但是它经常遭受区域选择性低,脂族酮不对称底物和强酸性条件的困扰,不适用于α,β-不饱和酮。在本文中,我们通过金和锌的协同催化作用,由N-芳基异羟肟酸/ N-芳基-N-羟基氨基甲酸酯和各种炔烃有效合成了N-保护的吲哚。锌催化与金属酶如人碳酸酐酶II中的相关锌离子催化相似,并且通过形成相应的锌螯合物而实质上增强了N-酰化羟胺的O-亲核性。 Zn螯合物可攻击金活化的炔烃,形成O-烯基-N-芳基异羟肟酸酯,后者可进行3,3-σ易位重排,然后进行环脱水生成N-保护的吲哚产物。这种新的化学方法在费歇尔吲哚合成方面提供了几项重要的改进:a)反应条件为弱酸性,可以耐受诸如Boc之类的敏感基团; b)较宽的底物范围,包括具有侧链羰基(在费歇尔化学中具有反应性)和烷基氯(例如> 3f )的底物; c)在温和得多的条件下形成2-取代的吲哚具有更好的区域选择性; d)可以很容易地以良好的产率制备2-烯基吲哚,但费歇尔化学方法不能制得; e)使用内部炔烃时,空间和电子控制均可用于实现良好的区域选择性,而费歇尔化学通常存在问题。

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  • 年(卷),期 -1(4),2
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  • 页码 1039/C2SC21333H
  • 总页数 17
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