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基于钌的 Catechothiolate 配合物,带有不饱和 NHC 配体:有效用于(Z)-α,β-不饱和酯、羧酸以及伯、仲和 Weinreb 酰胺合成的交叉复分解催化剂。

Ru-Based Catechothiolate Complexes Bearing an Unsaturated NHC Ligand: Effective Cross-Metathesis Catalysts for Synthesis of ( Z)-α,β-Unsaturated Esters, Carboxylic Acids, and Primary, Secondary, and Weinreb Amides.

机构信息

Department of Chemistry, Merkert Chemistry Center , Boston College , Chestnut Hill , Massachusetts 02467 , United States.

Supramolecular Science and Engineering Institute , University of Strasbourg, CNRS , 67000 Strasbourg , France.

出版信息

J Am Chem Soc. 2019 May 1;141(17):7137-7146. doi: 10.1021/jacs.9b02318. Epub 2019 Apr 17.

Abstract

Despite notable progress, olefin metathesis methods for preparation of ( Z)-α,β-unsaturated carbonyl compounds, applicable to the synthesis of a large variety of bioactive molecules, remain scarce. Especially desirable are transformations that can be promoted by ruthenium-based catalysts, as such entities would allow direct access to carboxylic esters and amides, or acids (in contrast to molybdenum- or tungsten-based alkylidenes). Here, we detail how, based on the mechanistic insight obtained through computational and experimental studies, a readily accessible ruthenium catechothiolate complex was found that may be used to generate many α,β-unsaturated carbonyl compounds in up to 81% yield and ≥98:2 Z/ E ratio. We show that through the use of a complex bearing an unsaturated N-heterocyclic carbene (NHC) ligand, for the first time, products derived from the more electron-deficient esters, acids, and Weinreb amides (vs primary or secondary amides) can be synthesized efficiently and with high stereochemical control. The importance of the new advance to synthesis of bioactive compounds is illustrated through two representative applications: an eight-step, 15% overall yield, and completely Z-selective route leading to an intermediate that may be used in synthesis of stagonolide E (vs 11 steps, 4% overall yield and 91% Z, previously), and a five-step, 25% overall yield sequence to access a precursor to dihydrocompactin (vs 13 steps and 5% overall yield, formerly).

摘要

尽管已经取得了显著的进展,但用于制备(Z)-α,β-不饱和羰基化合物的烯烃复分解方法,适用于合成各种生物活性分子,仍然很少。特别需要的是可以通过钌基催化剂促进的转化,因为这样的实体可以直接得到羧酸酯和酰胺,或者酸(与钼或钨基亚烷基相反)。在这里,我们详细介绍了如何基于通过计算和实验研究获得的机理见解,找到一种易于获得的钌儿茶酚硫醇配合物,该配合物可用于以高达 81%的收率和≥98:2 Z/E 比生成许多α,β-不饱和羰基化合物。我们表明,通过使用带有不饱和 N-杂环卡宾(NHC)配体的配合物,首次可以有效地合成并且具有高立体化学控制,从更缺电子的酯,酸和Weinreb 酰胺(相对于伯酰胺或仲酰胺)获得的产物。通过两个代表性应用说明了新进展对生物活性化合物合成的重要性:一个八步,总收率为 15%,完全 Z 选择性的路线,可用于合成stagonolide E 的中间体(而之前为 11 步,总收率为 4%,Z 为 91%),以及一个五步,总收率为 25%的序列,可用于合成二氢compactin 的前体(而之前为 13 步,总收率为 5%)。

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