首页> 外文期刊>Journal of the American Chemical Society >Hydrogen-Bonding Catalysis and Inhibition by Simple Solvents in the Stereoselective Kinetic Epoxide-Opening Spirocyclization of Glycal Epoxides to Form Spiroketals
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Hydrogen-Bonding Catalysis and Inhibition by Simple Solvents in the Stereoselective Kinetic Epoxide-Opening Spirocyclization of Glycal Epoxides to Form Spiroketals

机译:氢键催化和简单溶剂在乙二醇选择性环氧反应的立体选择性动力学环氧-开环螺环化反应中的抑制作用,形成螺缩酮

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摘要

Mechanistic investigations of a MeOH-induced kinetic epoxide-opening spirocyclization of glycal epoxides have revealed dramatic, specific roles for simple solvents in hydrogen-bonding catalysis of this reaction to form spiroketal products stereoselectively with inversion of configuration at the anomeric carbon. A series of electronically tuned Cl-aryl glycal epoxides was used to study the mechanism of this reaction based on differential reaction rates and inherent preferences for S_N_2 versus S_N1 reaction manifolds. Hammett analysis of reaction kinetics with these substrates is consistent with an S_n2 or S_N2-like mechanism (p = -1.3 vs p = -5.1 for corresponding S_n1 reactions of these substrates). Notably, the spirocyclization reaction is second-order dependent on MeOH, and the glycal ring oxygen is required for second-order MeOH catalysis. However, acetone cosolvent is a first-order inhibitor of the reaction. A transition state consistent with the experimental data is proposed in which one equivalent of MeOH activates the epoxide electrophile via a hydrogen bond while a second equivalent of MeOH chelates the side-chain nucleophile and glycal ring oxygen. A paradoxical previous observation that decreased MeOH concentration leads to increased competing intermolecular methyl glycoside formation is resolved by the finding that this side reaction is only first-order dependent on MeOH. This study highlights the unusual abilities of simple solvents to act as hydrogen-bonding catalysts and inhibitors in epoxide-opening reactions, providing both stereoselectivity and discrimination between competing reaction manifolds. This spirocyclization reaction provides efficient, stereocontrolled access to spiroketals that are key structural motifs in natural products.
机译:对MeOH诱导的糖基环氧化物的动力学环氧化物开放螺环化的机理研究表明,简单溶剂在该反应的氢键催化反应中形成立体选择性地与异头碳上的构型反转的螺缩酮产物,具有特殊的戏剧性作用。基于差反应速率和S_N_2与S_N1反应歧管的固有偏好,使用一系列电子调谐的Cl-芳基糖基环氧化合物来研究该反应的机理。与这些底物的反应动力学的哈米特分析与S_n2或类似S_N2的机理一致(对于这些底物的相应S_n1反应,p = -1.3对p = -5.1)。值得注意的是,螺环化反应是二级依赖于MeOH的,二阶MeOH催化需要糖基环氧。但是,丙酮助溶剂是反应的一级抑制剂。提出了与实验数据一致的过渡态,其中一当量的MeOH通过氢键激活环氧亲电体,而另一当量的MeOH则螯合侧链亲核体和糖环氧。通过发现该副反应仅一阶依赖于MeOH,可以解决以前的反常观点,即降低MeOH浓度会导致竞争性分子间甲基糖苷形成增加。这项研究强调了简单溶剂在环氧化物开放反应中充当氢键催化剂和抑制剂的非凡能力,既提供了立体选择性,又提供了竞争反应流形之间的区别。这种螺环化反应可有效,立体地控制螺环化合物,螺环化合物是天然产物中的关键结构图案。

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  • 来源
    《Journal of the American Chemical Society》 |2011年第20期|p.7916-7925|共10页
  • 作者单位

    Tri-Institutional Training Program in Chemical Biology, Tri-Institutional Research Program, Memorial Sloan-Kettering Cancer Center, 1275 York Avenue, Box 422, New York, New York 10065, United States;

    Molecular Pharmacology and Chemistry Program, and Tri-Institutional Research Program, Memorial Sloan-Kettering Cancer Center, 1275 York Avenue, Box 422, New York, New York 10065, United States;

    Tri-Institutional Training Program in Chemical Biology, Tri-Institutional Research Program, Memorial Sloan-Kettering Cancer Center, 1275 York Avenue, Box 422, New York, New York 10065, United States,Molecular Pharmacology and Chemistry Program, and Tri-Institutional Research Program, Memorial Sloan-Kettering Cancer Center, 1275 York Avenue, Box 422, New York, New York 10065, United States;

  • 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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  • 入库时间 2022-08-18 03:14:16

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