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手性有机催化对映选择性脱羧质子化的机理见解由大黄奎宁硫脲混合衍生物。

Mechanistic insights on organocatalytic enantioselective decarboxylative protonation by epicinchona-thiourea hybrid derivatives.

机构信息

Department of Chemistry, Indian Institute of Technology Bombay, Powai, Mumbai 400076, India.

出版信息

J Org Chem. 2012 Dec 7;77(23):10525-36. doi: 10.1021/jo301483p. Epub 2012 Nov 27.

Abstract

Mechanism and the origin of enantioselectivity in the decarboxylative protonation of α-amino malonate hemiester promoted by epicinchona-thiourea hybrid organocatalyst is established by using the DFT(M06-2X/6-311+G**//ONIOM2) computational methods. The origin of stereoselectivity rendered by this hybrid bifunctional catalyst in asymmetric protonation is investigated for the first time using suitable transition-state models. A detailed conformational analysis of N-[3,5-bis(trifluoromethyl)]phenylthiourea-based epicinchonidine reveals the potential for a bifunctional mode of activation of the substrate α-amino malonate hemiester through hydrogen bonding. Six different conformer families differing in characteristic dihedral angles are identified within a range of 16 kcal/mol with respect to the lowest energy conformer. Different likely mechanistic pathways obtained through detailed analysis of the transition states and intermediates are compared. It is identified that in the preferred pathway, the decarboxylation is followed by a direct proton transfer from the chiral quinuclidinium moiety to the enolate carbon as opposed to a conventional protonation at the enolate oxygen followed by a keto-enol tautomerization. The factors responsible for high levels of observed stereoselectivity are traced to interesting hydrogen-bonding interactions offered by the thiourea-cinchona bifunctional framework. The predicted stereoselectivities using computed Gibbs free energies of diastereomeric transition states are in fair agreement with the experimental stereoselectivities.

摘要

使用 DFT(M06-2X/6-311+G**//ONIOM2)计算方法,建立了由外消旋金鸡纳-硫脲杂化有机催化剂促进的α-氨基丙二酸半酯脱羧质子化的对映选择性的机理和起源。首次使用合适的过渡态模型研究了这种杂双功能催化剂在不对称质子化中产生立体选择性的原因。通过对基于 N-[3,5-双(三氟甲基)]苯基硫脲的外消旋金鸡纳啶的详细构象分析,揭示了底物α-氨基丙二酸半酯通过氢键进行双功能活化的潜力。在相对于最低能量构象的 16 kcal/mol 的范围内,确定了 6 种不同的构象族,它们在特征二面角上有所不同。通过对过渡态和中间体的详细分析比较了不同可能的反应途径。确定在优选的途径中,脱羧后,手性奎宁环部分直接向烯醇碳转移质子,而不是常规的在烯醇氧上质子化,然后进行酮-烯醇互变异构。观察到的高立体选择性的原因可追溯到硫脲-金鸡纳双功能骨架提供的有趣氢键相互作用。使用计算的非对映过渡态吉布斯自由能预测的立体选择性与实验立体选择性相当吻合。

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