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布朗斯特酸催化的不对称多组分反应,用于方便地合成高对映选择性的结构多样的含氮杂环。

Brønsted-acid-catalyzed asymmetric multicomponent reactions for the facile synthesis of highly enantioenriched structurally diverse nitrogenous heterocycles.

机构信息

Hefei National Laboratory for Physical Sciences at the Microscale and Department of Chemistry, University of Science and Technology of China, Hefei 230026, P. R. China.

出版信息

Acc Chem Res. 2011 Nov 15;44(11):1156-71. doi: 10.1021/ar2000343. Epub 2011 Jul 29.

Abstract

Optically pure nitrogenous compounds, and especially nitrogen-containing heterocycles, have drawn intense research attention because of their frequent isolation as natural products. These compounds have wide-ranging biological and pharmaceutical activities, offering potential as new drug candidates. Among the various synthetic approaches to nitrogenous heterocycles, the use of asymmetric multicomponent reactions (MCRs) catalyzed by chiral phosphoric acids has recently emerged as a particularly robust tool. This method combines the prominent merits of MCRs with organocatalysis, thus affording enantio-enriched nitrogenous heterocyclic compounds with excellent enantioselectivity, atom economy, bond-forming efficiency, structural diversity, and complexity. In this Account, we discuss a variety of asymmetric MCRs catalyzed by chiral phosphoric acids that lead to the production of structurally diverse nitrogenous heterocycles. In MCRs, three or more reagents are combined simultaneously to produce a single product containing structural contributions from all the components. These one-pot processes are especially useful in the construction of heterocyclic cores: they can provide a high degree of both complexity and diversity for a targeted set of scaffolds while minimizing the number of synthetic operations. Unfortunately, enantioselective MCRs have thus far been relatively underdeveloped. Particularly lacking are reactions that proceed through imine intermediates, which are formed from the condensation of carbonyls and amines. The concomitant generation of water in the condensation reaction can deactivate some Lewis acid catalysts, resulting in premature termination of the reaction. Thus, chiral catalysts typically must be compatible with water for MCRs to generate nitrogenous compounds. Recently, organocatalytic MCRs have proven valuable in this respect. Brønsted acids, an important class of organocatalysts, are highly compatible with water and thereby offer great potential as chiral catalysts for multicomponent protocols that unavoidably release water molecules during the course of the reaction. We present a detailed investigation of several MCRs catalyzed by chiral phosphoric acids, including Biginelli and Biginelli-like reactions; 1,3-dipolar cycloadditions; aza Diels-Alder reactions; and some other cyclization reactions. These approaches have enabled the facile preparation of 3,4-dihydropyrimidinones, pyrrolidines, piperidines, and dihydropyridines with high optical purity. The synthetic applications of these new protocols are also discussed, together with theoretical studies of the reaction transition states that address the regio- and stereochemistry. In addition, we briefly illustrate the application of a recently developed strategy that involves relay catalysis by a binary system consisting of a chiral phosphoric acid and a metal complex. This technique has provided access to new reactions that generate structurally diverse and complex heterocycles. Enantioselective organocatalytic MCRs remain a challenge, but we illustrate success on several fronts with chiral phosphoric acids as the primary catalysts. Further progress will undoubtedly provide even better access to the chiral nitrogen-containing heterocycles that are not only prevalent as natural products but also serve as key chiral building blocks in organic synthesis.

摘要

光学纯的含氮化合物,特别是含氮杂环化合物,因其常作为天然产物被分离出来而受到广泛关注。这些化合物具有广泛的生物和药物活性,有潜力成为新的药物候选物。在各种合成含氮杂环的方法中,手性磷酸催化的不对称多组分反应(MCRs)最近成为一种特别强大的工具。该方法结合了 MCRs 的突出优点和有机催化的优点,从而提供了具有优异对映选择性、原子经济性、键形成效率、结构多样性和复杂性的手性含氮杂环化合物。在本报告中,我们讨论了各种由手性磷酸催化的不对称 MCRs,这些反应导致了结构多样的含氮杂环化合物的生成。在 MCRs 中,三个或更多的试剂同时结合在一起,生成一个包含所有组分结构贡献的单一产物。这些一锅法工艺在构建杂环核心时特别有用:它们可以为目标骨架提供高度的复杂性和多样性,同时最大限度地减少合成操作的数量。不幸的是,对映选择性 MCRs 到目前为止还相对不发达。特别是缺乏通过亚胺中间体进行的反应,亚胺中间体是由羰基和胺的缩合形成的。缩合反应中同时生成的水会使一些路易斯酸催化剂失活,导致反应过早终止。因此,对于 MCRs 生成含氮化合物,手性催化剂通常必须与水相容。最近,有机催化的 MCRs 在这方面证明了其价值。Brønsted 酸是一类重要的有机催化剂,与水高度相容,因此作为多组分方案的手性催化剂具有很大的潜力,因为这些方案在反应过程中不可避免地会释放水分子。我们详细研究了几种由手性磷酸催化的 MCRs,包括比格利尼和比格利尼类反应;1,3-偶极环加成反应;氮杂 Diels-Alder 反应;和一些其他的环化反应。这些方法使得 3,4-二氢嘧啶酮、吡咯烷、哌啶和二氢吡啶的制备变得容易,光学纯度高。还讨论了这些新方案的合成应用,以及对反应过渡态的理论研究,这些研究涉及区域和立体化学。此外,我们简要说明了最近开发的一种策略的应用,该策略涉及由手性磷酸和金属配合物组成的二元体系的接力催化。该技术提供了新的反应途径,可以生成结构多样和复杂的杂环。对映选择性的有机催化 MCRs 仍然是一个挑战,但我们用手性磷酸作为主要催化剂在几个方面取得了成功。毫无疑问,进一步的进展将为那些不仅作为天然产物普遍存在,而且作为有机合成中关键手性构建块的手性含氮杂环提供更好的途径。

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