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脯氨酸催化的α-氨氧化反应在生物活性化合物的合成中的应用。

Proline catalyzed α-aminoxylation reaction in the synthesis of biologically active compounds.

机构信息

Organic Chemistry Division, CSIR-National Chemical Laboratory, Pune 411008, India.

出版信息

Acc Chem Res. 2013 Feb 19;46(2):289-99. doi: 10.1021/ar300135u. Epub 2012 Nov 13.

Abstract

The search for new and efficient ways to synthesize optically pure compounds is an active area of research in organic synthesis. Asymmetric catalysis provides a practical, cost-effective, and efficient method to create a variety of complex natural products containing multiple stereocenters. In recent years, chemists have become more interested in using small organic molecules to catalyze organic reactions. As a result, organocatalysis has emerged both as a promising strategy and as an alternative to catalysis with expensive proteins or toxic metals. One of the most successful and widely studied secondary amine-based organocatalysts is proline. This small molecule can catalyze numerous reactions such as the aldol, Mannich, Michael addition, Robinson annulation, Diels-Alder, α-functionalization, α-amination, and α-aminoxylation reactions. Catalytic and enantioselective α-oxygenation of carbonyl compounds is an important reaction to access a variety of useful building blocks for bioactive molecules. Proline catalyzed α-aminoxylation using nitrosobenzene as oxygen source, followed by in situ reduction, gives enantiomerically pure 1,2-diol. This molecule can then undergo a variety of organic reactions. In addition, proline organocatalysis provides access to an assortment of biologically active natural products including mevinoline (a cholesterol lowering drug), tetrahydrolipstatin (an antiobesity drug), R(+)-α-lipoic acid, and bovidic acid. In this Account, we present an iterative organocatalytic approach to synthesize both syn- and anti-1,3-polyols, both enantio- and stereoselectively. This method is primarily based on proline-catalyzed sequential α-aminoxylation and Horner-Wadsworth-Emmons (HWE) olefination of aldehyde to give a γ-hydroxy ester. In addition, we briefly illustrate the broad application of our recently developed strategy for 1,3-polyols, which serve as valuable, enantiopure building blocks for polyketides and other structurally diverse and complex natural products. Other research groups have also applied similar strategies to prepare such bioactive molecules as littoralisone, brasoside and (+)-cytotrienin A. Among the various synthetic approaches reported for 1,3-polyols, our organocatalytic iterative approach appears to be very promising and robust. This method combines the merit of organocatalytic reaction with an easy access to both enantiomerically pure forms of proline, mild reaction conditions, and tolerance to both air and moisture. In this Account, we present the latest applications of organocatalysis and how organic chemists can use this new tool for the total synthesis of complex natural products.

摘要

寻找新的和有效的方法来合成光学纯化合物是有机合成中一个活跃的研究领域。不对称催化提供了一种实用、经济高效且有效的方法来合成各种含有多个立体中心的复杂天然产物。近年来,化学家越来越感兴趣地使用小分子来催化有机反应。因此,有机催化作为一种有前途的策略和替代昂贵蛋白质或有毒金属的催化方法出现了。脯氨酸是最成功和广泛研究的基于二级胺的有机催化剂之一。这种小分子可以催化许多反应,如醛缩合、Mannich、迈克尔加成、Robinson 环化、Diels-Alder、α-官能化、α-氨基化和α-氨氧化反应。催化和对映选择性α-羰基化合物的氧化是一种重要的反应,可以获得生物活性分子的各种有用构建块。脯氨酸催化的使用亚硝基苯作为氧源的α-氨氧化,然后进行原位还原,得到对映体纯的 1,2-二醇。然后,该分子可以经历各种有机反应。此外,脯氨酸有机催化可以获得各种生物活性天然产物,包括美伐他汀(一种降胆固醇药物)、四氢脂他汀(一种减肥药)、R(+)-α-硫辛酸和牛磺酸。在本说明中,我们提出了一种迭代的有机催化方法,用于立体和对映选择性地合成顺式和反式 1,3-聚醇。该方法主要基于脯氨酸催化的连续α-氨氧化和 Horner-Wadsworth-Emmons(HWE)醛的烯丙基化反应,得到γ-羟基酯。此外,我们简要说明了我们最近开发的策略在 1,3-聚醇中的广泛应用,该策略可用作聚酮和其他结构多样和复杂天然产物的有价值的对映纯构建块。其他研究小组也应用类似的策略来制备生物活性分子,如滨海酮、乳香脂苷和(+)-细胞三烯 A。在报道的各种 1,3-聚醇的合成方法中,我们的有机催化迭代方法似乎非常有前途和强大。该方法结合了有机催化反应的优点,以及对映体纯脯氨酸的两种形式的易得性、温和的反应条件以及对空气和水分的耐受性。在本说明中,我们介绍了有机催化的最新应用以及有机化学家如何将这一新工具用于复杂天然产物的全合成。

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