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阐明金鸡纳生物碱催化剂的活性构象和内酸酐醇解的化学机理。

Elucidation of the active conformation of cinchona alkaloid catalyst and chemical mechanism of alcoholysis of meso anhydrides.

机构信息

Department of Chemistry, Brandeis University, Waltham, MA 02454-9110, USA.

出版信息

Proc Natl Acad Sci U S A. 2010 Nov 30;107(48):20625-9. doi: 10.1073/pnas.1004439107. Epub 2010 Jun 21.

DOI:10.1073/pnas.1004439107
PMID:20566889
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2996421/
Abstract

Complementary to enantioselective transformations of planar functionalities, catalytic desymmetrization of meso compounds is another fundamentally important strategy for asymmetric synthesis. However, experimentally established stereochemical models on how a chiral catalyst discriminates between two enantiotopic functional groups in the desymmetrization of a meso substrate are particularly lacking. This article describes our endeavor to elucidate the chemical mechanism and characterization of the active conformation of the cinchona alkaloid-derived catalyst for a desymmetrization of meso cyclic anhydrides via asymmetric alcoholysis. First, our kinetic studies indicate that the cinchona alkaloid-catalyzed alcoholysis proceeds by a general base catalysis mechanism. Furthermore, the active conformer of the cinchona alkaloid-derived catalyst DHQD-PHN was clarified by catalyst conformation studies with a designed, rigid cinchona alkaloid derivative as a probe. These key mechanistic insights enabled us to construct a stereochemical model to rationalize how DHQD-PHN differentiates the two enantiotopic carbonyl groups in the transition state of the asymmetric alcoholysis of meso cyclic anhydrides. This model not only is consistent with the sense of asymmetric induction of the asymmetric alcoholysis but also provides a rationale on how the catalyst tolerates a broad range of cyclic anhydrides. These mechanistic insights further guided us to develop a novel practical catalyst for the enantioselective alcoholysis of meso cyclic anhydrides.

摘要

除了对平面官能团的对映选择性转化之外,手性中心化合物的催化去对称化也是不对称合成的另一个基本重要策略。然而,在实验中建立的关于手性催化剂在手性中心化合物去对称化过程中如何区分两个对映异位官能团的立体化学模型特别缺乏。本文描述了我们为阐明金鸡纳生物碱衍生催化剂在手性中心化合物去对称化过程中通过不对称醇解对消旋环状酸酐进行催化的化学机制和活性构象特征所做的努力。首先,我们的动力学研究表明,金鸡纳生物碱催化的醇解反应通过广义碱催化机制进行。此外,通过使用设计的刚性金鸡纳生物碱衍生物作为探针进行催化剂构象研究,阐明了金鸡纳生物碱衍生催化剂 DHQD-PHN 的活性构象。这些关键的机理见解使我们能够构建一个立体化学模型,以合理说明 DHQD-PHN 如何在手性中心化合物去对称化过程中区分过渡态的两个对映异位羰基。该模型不仅与不对称醇解的不对称诱导一致,而且还提供了一个关于催化剂如何容忍广泛的环状酸酐的原理。这些机理见解进一步指导我们开发了一种用于手性中心化合物去对称化的新型实用催化剂。

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本文引用的文献

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Catalysis of the Asymmetric Desymmetrization of Cyclic Anhydrides by Nucleophilic Ring-Opening with Alcohols.醇亲核开环催化环状酸酐的不对称去对称化反应
Angew Chem Int Ed Engl. 2001 Sep 3;40(17):3131-3134. doi: 10.1002/1521-3773(20010903)40:17<3131::AID-ANIE3131>3.0.CO;2-Z.
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Enantioselective enzymatic desymmetrizations in organic synthesis.有机合成中的对映选择性酶促去对称化反应。
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Stereocontrolled creation of adjacent quaternary and tertiary stereocenters by a catalytic conjugate addition.通过催化共轭加成对相邻季碳和叔碳立体中心进行立体控制构建。
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Development of a rapid, room-temperature dynamic kinetic resolution for efficient asymmetric synthesis of alpha-aryl amino acids.用于高效不对称合成α-芳基氨基酸的快速室温动态动力学拆分方法的开发。
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Dynamic kinetic resolution via dual-function catalysis of modified cinchona alkaloids: asymmetric synthesis of alpha-hydroxy carboxylic acids.基于修饰金鸡纳生物碱双功能催化的动态动力学拆分:α-羟基羧酸的不对称合成
J Am Chem Soc. 2002 Mar 27;124(12):2870-1. doi: 10.1021/ja0255047.
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