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Scaleable catalytic asymmetric Strecker syntheses of unnatural α-amino acids

机译:非天然α-氨基酸的可缩放催化不对称Strecker合成

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摘要

α-Amino acids are the building blocks of proteins and are widely used as components of medicinally active molecules and chiral catalysts. Efficient chemo-enzymatic methods for the synthesis of enantioenriched a-amino acids have been developed, but it is still a challenge to obtain non-natural amino acids. Alkene hydrogena-tion is broadly useful for the enantioselective catalytic synthesis of many classes of amino acids, but it is not possible to obtain a-amino acids bearing aryl or quaternary alkyl α-substituents using this method. The Strecker synthesis-the reaction of an imine or imine equivalent with hydrogen cyanide, followed by nitrile hydrolysis-is an especially versatile chemical method for the synthesis of racemic a-amino adds. Asymmetric Strecker syntheses using stoichiometric amounts of a chiral reagent have been applied successfully on gram-to-kilogram scales, yielding enantiomerically enriched a-amino adds. In prindple, Strecker syntheses employing sub-stoichiometric quantities of a chiral reagent could provide a practical alternative to these approaches, but the reported catalytic asymmetric methods have seen limited use on preparative scales (more than a gram). The limited utility of existing catalytic methods may be due to several important factors, including the relatively complex and precious nature of the catalysts and the requisite use of hazardous cyanide sources. Here we report a new catalytic asymmetric method for the syntheses of highly enantiomerically enriched non-natural amino acids using a simple chiral amido-fhiourea catalyst to control the key hydrocyanation step. This catalyst is robust, without sensitive functional groups, so it is compatible with aqueous cyanide salts, which are safer and easier to handle than other cyanide sources; this makes the method adaptable to large-scale synthesis. We have used this new method to obtain enantiopure amino acids that are not readily prepared by enzymatic methods or by chemical hydrogenation.
机译:α-氨基酸是蛋白质的组成部分,被广泛用作药物活性分子和手性催化剂的组成部分。已经开发了用于合成对映体富集的α-氨基酸的有效化学酶方法,但是获得非天然氨基酸仍然是挑战。烯烃加氢广泛用于许多种类氨基酸的对映选择性催化合成,但是使用这种方法不可能获得带有芳基或季烷基α-取代基的α-氨基酸。 Strecker合成-亚胺或亚胺等同物与氰化氢的反应,然后进行腈水解-是一种特别通用的化学方法,用于合成外消旋α-氨基。使用化学计量的手性试剂进行的不对称Strecker合成已成功应用于克级至千克级,可产生对映体富集的α-氨基。在原理上,采用亚化学计量量的手性试剂的Strecker合成方法可以为这些方法提供一种实用的替代方法,但是所报道的催化不对称方法在制备规模(超过1克)上的使用受到限制。现有催化方法的有限用途可能归因于几个重要因素,包括催化剂的相对复杂和宝贵的性质以及有害氰化物源的必要使用。在这里,我们报告了一种新的催化不对称方法,该方法使用简单的手性酰胺基-硫脲催化剂来控制关键的氢氰化步骤,以合成高度对映体富集的非天然氨基酸。该催化剂坚固耐用,没有敏感的官能团,因此可与氰化盐水溶液兼容,后者比其他氰化物源更安全,更易于处理;这使得该方法适用于大规模合成。我们已经使用这种新方法来获得对映纯氨基酸,这些氨基酸不易通过酶促方法或化学氢化制备。

著录项

  • 来源
    《Nature》 |2009年第7266期|968-9701019|共4页
  • 作者单位

    Harvard University, Department of Chemistry and Chemical Biology, Cambridge, Massachusetts 02138, USA;

    Harvard University, Department of Chemistry and Chemical Biology, Cambridge, Massachusetts 02138, USA;

    Harvard University, Department of Chemistry and Chemical Biology, Cambridge, Massachusetts 02138, USA;

    Harvard University, Department of Chemistry and Chemical Biology, Cambridge, Massachusetts 02138, USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
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