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炔丙基乙烯基醚和叔 skipped 二炔:多样性导向合成的两个多功能分子平台。

Propargyl Vinyl Ethers and Tertiary Skipped Diynes: Two Pluripotent Molecular Platforms for Diversity-Oriented Synthesis.

机构信息

Department of Biological Chemistry and Biotechnology, Instituto de Productos Naturales y Agrobiología, CSIC , Astrofísico Francisco Sánchez 3, 38206 La Laguna, Tenerife, Islas Canarias, Spain.

出版信息

Acc Chem Res. 2016 Apr 19;49(4):703-13. doi: 10.1021/acs.accounts.5b00545. Epub 2016 Apr 6.

Abstract

During the last years, we have been involved in the development of a diversity-oriented synthetic strategy aimed at transforming simple, linear, and densely functionalized molecular platforms into collections of topologically diverse scaffolds incorporating biologically relevant structural motifs such as N- and O- heterocycles, multifunctionalized aromatic rings, fused macrocycles, etc. The strategy merges the concepts of pluripotency (the property of an array of chemical functionalities to express different chemical outcomes under different chemical environments) and domino chemistry (chemistry based on processes involving two or more bond-forming transformations that take place while the initial reaction conditions are maintained, with the subsequent reaction resulting as a consequence of the functionality installed in the previous one) to transform common multifunctional substrates into complex and diverse molecular frameworks. This design concept constitutes the ethos of the so-called branching cascade strategy, a branch of diversity-oriented synthesis focused on scaffold diversity generation. Two pluripotent molecular platforms have been extensively studied under this merging (branching) paradigm: C4-O-C3 propargyl vinyl ethers (PVEs) and C7 tertiary skipped diynes (TSDs). These are conveniently constructed from simple and commercially available raw materials (alkyl propiolates, ketones, aldehydes, acid chlorides) through multicomponent manifolds (ABB' three-component reaction for PVEs; A2BB' four-component reaction for TSDs) or a simple two-step procedure (for PVEs). Their modular origin facilitates their structural/functional diversification without increasing the number of synthetic steps for their assembly. These two pluripotent molecular platforms accommodate a well-defined and dense array of through-bond/through-space interrelated functionalities on their structures, which defines their primary reactivity principles and establishes the reactivity profile. The PVEs are defined by the presence of an alkyne (alkynoate) function and a conjugated enol moiety and their mutual through-bond/through-space connectivity. This functional array accommodates a number of domino reactions launched either by a Michael addition on the alkynoate moiety (conjugated alkynes) or by a [3,3]-propargyl Claisen rearrangement (conjugated and nonconjugated alkynes). The reactivity profile of the TSDs is defined by the two connected alkynoate moieties (Michael addition) and the bispropargylic ester group ([3,3]-sigmatropic rearrangement). Using these first reactivity principles, each platform selectively delivers one unique and different skeleton (topology) from each domino transformation. Thus, through the use of 11 instrumentally simple and scalable domino reactions, we have transformed these two linear (rod-symmetric) pluripotent molecular platforms into 16 different scaffolds incorporating important structural motifs and multifunctional decorative patterns. The generated scaffolds entail carbocycles, heterocycles, aromatics, β,γ-unsaturated esters and acids, and fused polycycles. They can be transformed into more elaborated molecular skeletons by the use of chemical handles generated in their own domino reactions or by appending different functionalities to the pluripotent molecular platform (secondary reactivity principles).

摘要

在过去的几年中,我们一直致力于开发一种多样化导向的合成策略,旨在将简单、线性和高度功能化的分子平台转化为包含生物相关结构基序的拓扑多样的支架集合,例如 N-和 O-杂环、多功能芳环、稠合大环等。该策略融合了多能性(一系列化学功能的属性,在不同的化学环境下表达不同的化学结果)和多米诺化学(基于涉及两个或更多键形成转化的过程的化学,这些转化在保持初始反应条件的同时发生,随后的反应是由于在前一个反应中安装的功能而产生的)的概念,将常见的多功能底物转化为复杂多样的分子框架。这种设计理念构成了所谓的分支级联策略的核心,这是一种专注于支架多样性生成的多样性导向合成的分支。在这种融合(分支)范例下,已经对两种多能分子平台进行了广泛研究:C4-O-C3 丙炔基乙烯基醚 (PVE) 和 C7 叔 skipped 二炔 (TSD)。它们可以通过多组分流形(PVE 的 ABB'三组分反应;TSD 的 A2BB'四组分反应)或简单的两步法(对于 PVE)从简单且市售的原料(丙炔酸酯、酮、醛、酰氯)方便地构建。它们的模块化起源便于在其结构中进行结构/功能多样化,而不会增加其组装的合成步骤数量。这两种多能分子平台在其结构上容纳了一系列定义明确且密集的通过键/通过空间相互关联的功能,这定义了它们的主要反应性原则并建立了反应性概况。PVE 的特征在于炔(炔酸盐)官能团和共轭烯醇部分及其相互之间的通过键/通过空间连接性。该功能数组可容纳通过炔酸盐部分(共轭炔)上的迈克尔加成或通过[3,3]-丙炔 Claisen 重排(共轭和非共轭炔)引发的多种多米诺反应。TSD 的反应性特征由两个连接的炔酸盐部分(迈克尔加成)和双丙炔基酯基团([3,3]-西格玛特重排)定义。使用这些第一反应性原则,每个平台都可以从每个多米诺转化中选择性地提供一个独特且不同的骨架(拓扑结构)。因此,通过使用 11 种仪器简单且可扩展的多米诺反应,我们已经将这两种线性(棒对称)多能分子平台转化为包含重要结构基序和多功能装饰图案的 16 种不同支架。生成的支架包含碳环、杂环、芳环、β,γ-不饱和酯和酸以及稠合多环。它们可以通过使用自身多米诺反应中生成的化学手柄或通过向多能分子平台添加不同的功能(二级反应性原则)来转化为更精细的分子骨架。

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