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六氟异丙醇介导的多组分反应:吡唑连接的噻唑衍生物的合成

HFIP-Mediated Multicomponent Reactions: Synthesis of Pyrazole-Linked Thiazole Derivatives.

作者信息

Banerjee Riddhiman, Ali Danish, Mondal Nurabul, Choudhury Lokman H

机构信息

Department of Chemistry, Indian Institute of Technology Patna, Patna 801106, India.

出版信息

J Org Chem. 2024 Apr 5;89(7):4423-4437. doi: 10.1021/acs.joc.3c02567. Epub 2024 Mar 14.

Abstract

The development of one-pot, atom, and step-economic new methods avoiding metal, harsh reaction conditions, and toxic reagents for the synthesis of medicinally important hybrid molecules bearing more than one bioactive moieties is currently one of the hot topics in organic synthesis. Herein, we report a green and efficient room temperature multicomponent reaction for the synthesis of novel pyrazole-linked thiazoles involving a one-pot C-C, C-N, and C-S bond-forming process from the reaction of aryl glyoxal, aryl thioamide, and pyrazolones in 1,1,1,3,3,3-hexafluoroisopropanol, a hydrogen bond donating reaction medium. A set of diverse hybrid molecules bearing thiazole and pyrazole moieties were prepared in good to excellent yields by using this method. This methodology can also be extended to prepare thiazole-linked barbiturates as well as imidazole-linked pyrazoles. All the products were fully characterized by spectroscopic techniques. The notable features of this protocol are room temperature, metal as well as additive-free reaction conditions, use of recyclable solvent, water as the byproduct, wide substrate scope, operational simplicity, easy purification, applicability for gram-scale synthesis, high atom economy, and the presence of two bioactive pyrazole and thiazole moieties in the products.

摘要

开发一锅法、原子经济和步骤经济的新方法,避免使用金属、苛刻的反应条件和有毒试剂来合成具有多个生物活性部分的重要药用杂化分子,是目前有机合成中的热点话题之一。在此,我们报道了一种绿色高效的室温多组分反应,用于合成新型吡唑连接的噻唑,该反应涉及在1,1,1,3,3,3-六氟异丙醇(一种氢键供体反应介质)中,芳基乙二醛、芳基硫代酰胺和吡唑啉酮反应形成C-C、C-N和C-S键的一锅法过程。通过该方法以良好至优异的产率制备了一系列含有噻唑和吡唑部分的多样杂化分子。该方法还可扩展用于制备噻唑连接的巴比妥酸盐以及咪唑连接的吡唑。所有产物均通过光谱技术进行了全面表征。该方案的显著特点是室温、无金属和无添加剂的反应条件、使用可回收溶剂、水作为副产物、底物范围广、操作简单、易于纯化、适用于克级合成、高原子经济性以及产物中存在两个生物活性吡唑和噻唑部分。

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