Suppr超能文献

钌催化的发散反应:双高炔丙醇的氧化环化与环异构化

A Ru catalyzed divergence: oxidative cyclization vs cycloisomerization of bis-homopropargylic alcohols.

作者信息

Trost Barry M, Rhee Young Ho

机构信息

Department of Chemistry, Stanford University, Stanford, CA 94305-5080, USA.

出版信息

J Am Chem Soc. 2002 Mar 20;124(11):2528-33. doi: 10.1021/ja011840w.

Abstract

During the course of investigating the development of catalytic reactions involving ruthenium vinylidene intermediates, a novel divergence of reactivity was discovered. The oxidative cyclization of bis-homopropargylic alcohols with Ru(+2) complexes as catalysts and N-hydroxysuccinimide as oxidant, which requires formation of a ruthenium vinylidene intermediate, is complicated by the simple electrophilically initiated direct attack of the hydroxyl group on a pi-complex of the alkyne and ruthenium. A catalytic system composed of CpRu(p-CH(3)O(6)H(4))(3)PCl and excess (p-CH(3)O-C(6)H(4))(3)P directs the reaction toward the oxidative cyclization to form delta-lactones in good yields. Significantly, a simple switch of catalyst to CpRu(p-FC(6)H(4))(3)PCl redirects the reaction to a cycloisomerization to form dihydropyrans in good yields. The synthetic utility of the oxidative cyclization is illustrated by the synthesis of oviposition attractant pheromone of the mosquito Culex pipens. The utility of the cycloisomerization to dihydropyrans is demonstrated by an iterative process leading to the antiviral agent narbosine B. A rationale for this dramatic switch by simple ligand modification is proposed.

摘要

在研究涉及钌亚乙烯基中间体的催化反应发展过程中,发现了一种新型的反应活性差异。以Ru(+2)配合物为催化剂、N-羟基琥珀酰亚胺为氧化剂,双高炔丙醇的氧化环化反应需要形成钌亚乙烯基中间体,但由于羟基对炔烃与钌的π配合物的简单亲电引发直接进攻,该反应变得复杂。由CpRu(p-CH(3)O(6)H(4))(3)PCl和过量的(p-CH(3)O-C(6)H(4))(3)P组成的催化体系能使反应朝着氧化环化方向进行,以良好的产率生成δ-内酯。值得注意的是,简单地将催化剂换成CpRu(p-FC(6)H(4))(3)PCl会使反应转向环异构化,以良好的产率生成二氢吡喃。通过合成蚊虫致倦库蚊的产卵引诱信息素,展示了氧化环化反应的合成实用性。通过导致抗病毒药物纳博西宁B的迭代过程,证明了环异构化生成二氢吡喃的实用性。本文提出了通过简单的配体修饰实现这种显著转变的原理。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验