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通过构象编码 1,5-多元醇合成实现 1,5,9-和 1,5,7-三醇的统一策略:γ-磺酰基-α-硅氧基醛的对映选择性制备和迭代 Julia-Kocienski 偶联。

Unified Strategy for 1,5,9- and 1,5,7-Triols via Configuration-Encoded 1,5-Polyol Synthesis: Enantioselective Preparation of γ-Sulfonyl-α-silyloxyaldehydes and Iterative Julia-Kocienski Coupling.

机构信息

Department of Chemistry , University of Iowa , Iowa City , Iowa 52242 , United States.

出版信息

J Org Chem. 2018 Nov 16;83(22):13636-13649. doi: 10.1021/acs.joc.8b02033. Epub 2018 Nov 5.

Abstract

Diverse classes of natural products contain chiral 1,5-polyols, within which may be stereochemical triads of 1,5,9- and 1,5,7-triols. Biological activities associated with compounds containing these motifs warrant targeted synthetic strategies to access all stereoisomers of a 1,5-polyol family from cheap and easily accessible reagents while avoiding the need to determine configurations at each alcohol stereocenter. Here, we address these problems via design and implementation of an iterative configuration-encoded strategy to access 1,5-polyols with unambiguous stereocontrol; the coupling event exploits Julia-Kocienski reactions of enantiopure α-silyloxy-γ-sulfononitriles. These building blocks, bearing sulfone at one terminus and α-silyloxyaldehyde (in latent form) at the other, were prepared via asymmetric catalysis. An efficient scalable route to these building blocks was developed, leading to enantiopure samples in multigram quantities. Preliminary studies of acetals as the latent aldehyde functionality in the α-silyloxyaldehyde showed that Julia-Kocienski coupling of these building blocks was effective, but iterative application was thwarted during acetal hydrolysis, leading to use of nitrile to perform the latent aldehyde function. A variety of 1,5-polyols, including a 1,5,9,13-tetraol and a differentially protected 1,5,9-triol, were prepared, validating the approach. The accompanying paper describes the application of this configuration-encoded 1,5-polyol synthesis to 1,5,9- and 1,5,7-triols found in tetrafibricin.

摘要

天然产物包含多种手性 1,5-多元醇,其中可能存在 1,5,9-和 1,5,7-三醇的立体化学三联体。与含有这些结构单元的化合物相关的生物活性需要有针对性的合成策略,以便从廉价且易于获得的试剂中获得 1,5-多元醇家族的所有立体异构体,同时避免需要确定每个醇立体中心的构型。在这里,我们通过设计和实施迭代构型编码策略来解决这些问题,以获得具有明确立体控制的 1,5-多元醇;偶联反应利用了对映纯的α-硅氧基-γ-磺酰腈的 Julia-Kocienski 反应。这些带有一个末端的磺酰基和另一个末端的α-硅氧基醛(处于潜在形式)的砌块,通过不对称催化来制备。开发了一种高效可扩展的路线来制备这些砌块,从而以多克级的量获得对映纯的样品。初步研究表明,作为潜在醛官能团的缩醛在α-硅氧基醛中,这些砌块的 Julia-Kocienski 偶联是有效的,但在缩醛水解过程中,迭代应用受到阻碍,导致使用腈来实现潜在的醛功能。合成了多种 1,5-多元醇,包括 1,5,9,13-四醇和一种差保护的 1,5,9-三醇,验证了该方法。伴随的论文描述了这种构型编码的 1,5-多元醇合成在手性 1,5,9-和 1,5,7-三醇的应用,这些三醇存在于 tetrafibricin 中。

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