Kinetics, Thermodynamics, and Emergence in Stereoediting Reactions.

IF 16.4 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Gino Occhialini,Alison E Wendlandt
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引用次数: 0

Abstract

ConspectusThe selective formation of one stereoisomer over another is a long-standing challenge in organic chemistry. Conventionally, the configuration of a stereogenic center is defined during bond forming molecular assembly steps and thereafter treated as a static component of the molecular structure. One isomer is often more accessible than others, because it can be obtained directly from natural sources, because synthetic strategies to access certain stereochemical patterns are more efficient than others, or because substrate-based steric and electronic biases preclude certain reaction outcomes. In such cases, the ability to revise the stereochemistry without altering the underlying molecular skeleton could parlay more accessible products directly into more challenging targets.In this Account, we describe our efforts to develop stereocenter editing tools to enable the interconversion of stereoisomers with a predictable and tunable selectivity. Stereoediting methods developed by our lab leverage radical intermediates accessed by sequential H atom abstraction and donation steps promoted by a range of different H atom transfer reagents. Modern photoredox methods enable access to reactive radical intermediates under mild reaction conditions, serve as an orthogonal stimulus to induce dynamic character from otherwise static structures, and provide ample fuel to drive contra-thermodynamic product composition when mechanistically feasible.The first methods developed by our lab targeted secondary alcohol stereogenic centers located ubiquitously in complex chiral molecules. By varying catalyst identity and reaction conditions, product distributions can either reflect a thermodynamic equilibrium or reach an out-of-equilibrium steady state defined by kinetic factors. In the latter case, catalyst control enables contra-thermodynamic product distributions to form and offers the best prospects for tunable site- and stereocontrol. Our laboratory has been particularly interested in applications of stereoediting in rare sugar synthesis where innovative solutions are required to address the site-selectivity challenges presented by minimally protected glycan substrates.Subsequent efforts in our laboratory have led to the development of stereoediting methods targeting unactivated tertiary stereogenic centers for which there are few other methods or synthetic routes for stereorevision. Here, stereoediting methods offer substantial flexibility for molecular construction and can formally extend the scope of stereochemical outcomes accessible from powerful existing synthetic methodologies. Finally, we have sought to extend the mechanistic principles governing catalyst-controlled stereocenter isomerization into more general classes of constitutional isomerization, including a synthetically versatile contra-thermodynamic positional alkene isomerization reaction leveraging many of the same elementary steps.Like other transformations within the "editing" superfamily, stereoediting methods are designed for surgical precision and with a late-stage application in mind. Although a structurally minimalist perturbation, stereoediting can profoundly alter synthetic access to certain complex chiral targets and has the potential to fundamentally transform the logic of stereodefined synthesis.
立体编辑反应的动力学、热力学和涌现。
一种立体异构体对另一种立体异构体的选择性形成是有机化学中一项长期存在的挑战。传统上,在成键分子组装步骤中定义立体中心的构型,然后将其视为分子结构的静态组成部分。一种异构体通常比其他异构体更容易获得,因为它可以直接从自然来源获得,因为获得某些立体化学模式的合成策略比其他方法更有效,或者因为基于底物的空间和电子偏置排除了某些反应结果。在这种情况下,在不改变潜在分子骨架的情况下修改立体化学的能力可以将更容易获得的产物直接转化为更具挑战性的目标。在本报告中,我们描述了我们开发立体中心编辑工具的努力,以使立体异构体的相互转化具有可预测和可调的选择性。我们实验室开发的立体编辑方法利用由一系列不同的H原子转移试剂促进的顺序H原子抽象和给予步骤获得的自由基中间体。现代光氧化还原方法可以在温和的反应条件下获得活性自由基中间体,作为正交刺激从静态结构中诱导出动态特性,并在机械可行的情况下为驱动反热力学产物组成提供充足的燃料。我们实验室开发的第一种方法是针对位于复杂手性分子中无处不在的仲醇立体中心。通过改变催化剂的性质和反应条件,产物分布既可以反映热力学平衡,也可以达到由动力学因素定义的非平衡稳态。在后一种情况下,催化剂控制使逆向热力学产物分布形成,并为可调的位置和立体控制提供了最好的前景。我们的实验室一直对立体编辑在稀有糖合成中的应用特别感兴趣,其中需要创新的解决方案来解决由最低限度保护的聚糖底物提出的位点选择性挑战。在我们实验室的后续努力已经导致了立体编辑方法的发展,针对非活化的三级立体中心,很少有其他方法或合成路线立体校正。在这里,立体编辑方法为分子构建提供了很大的灵活性,并且可以正式扩展从强大的现有合成方法中获得的立体化学结果的范围。最后,我们试图将控制催化剂控制的立体中心异构化的机理原理扩展到更一般的结构异构化类别,包括利用许多相同基本步骤的合成通用反热力学位置烯烃异构化反应。像“编辑”超家族中的其他转换一样,立体编辑方法是为外科手术精度而设计的,并且考虑到后期应用。虽然是结构上的最小扰动,但立体编辑可以深刻地改变对某些复杂手性靶点的合成途径,并有可能从根本上改变立体合成的逻辑。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Accounts of Chemical Research
Accounts of Chemical Research 化学-化学综合
CiteScore
31.40
自引率
1.10%
发文量
312
审稿时长
2 months
期刊介绍: Accounts of Chemical Research presents short, concise and critical articles offering easy-to-read overviews of basic research and applications in all areas of chemistry and biochemistry. These short reviews focus on research from the author’s own laboratory and are designed to teach the reader about a research project. In addition, Accounts of Chemical Research publishes commentaries that give an informed opinion on a current research problem. Special Issues online are devoted to a single topic of unusual activity and significance. Accounts of Chemical Research replaces the traditional article abstract with an article "Conspectus." These entries synopsize the research affording the reader a closer look at the content and significance of an article. Through this provision of a more detailed description of the article contents, the Conspectus enhances the article's discoverability by search engines and the exposure for the research.
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