催化1,2-自由基酰基迁移:一种获取新化学空间和反应概况的策略。

IF 16.4 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Gaoyuan Zhao, Upasana Mukherjee, Wang Yao, Ming-Yu Ngai
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引用次数: 0

摘要

自由基迁移代表了有机合成中反应发现和发展的有力策略,提供了前所未有的功能分子和化学空间。在本文中,我们描述了我们对该领域的贡献,特别是关注1,2-自由基酰基迁移(RAM),这是一个涉及自由基和酰基移位的过程。我们重点介绍了它在碳水化合物修饰和羧酸烯丙酯三官能化中的应用,展示了这种反应性如何使新型糖仿制品的流线型合成成为可能,并促进了羧酸烯丙酯的选择性1,2,3三官能化。这些进展使1,2- ram成为催化自由基转化的通用平台,为反应开发和功能分子设计提供了新的机会。我们的方法利用激发态钯和基态镍催化来修饰碳水化合物,特别是在C2位置。该策略实现了c2脱氧氢化,氘化,碘化,烯基化,烯丙基化,酮基化和芳基化反应,提供了前所未有的糖模拟物的直接访问。这些转化简化了结构多样的糖仿制品的合成,促进了以碳水化合物为基础的功能分子的发现和发展。此外,这些催化体系的温和反应条件和高官能团耐受性使它们对后期功能化特别有吸引力,扩大了它们在复杂分子合成中的适用性。除了碳水化合物之外,我们还扩展了1,2- ram反应性,以实现前所未有的1,2,3-烯丙基羧酸酯三官能化。通过激发态磷化氢催化,我们证明了伴随酰基移位的1,3-碳溴化反应。这项概念验证研究为开发更广泛的1,2,3三官能化反应奠定了基础,有效地将烯丙基羧酸酯转化为取代的异丙基羧酸酯供体。这一进展扩大了烯丙基羧酸酯的合成用途,使快速构建结构多样的分子支架成为可能。总之,1,2- ram反应性为反应的发现和开发开辟了一条新的途径,为新的功能分子和化学空间提供了途径。该方法的温和条件、广泛的官能团相容性和独特的反应性使其成为有价值的化学合成工具。我们预计1,2- ram与其他催化平台的合并将进一步推进键断开策略,提供新的功能分子的途径,并扩大化学合成的前沿。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Catalytic 1,2-Radical Acyloxy Migration: A Strategy to Access Novel Chemical Space and Reaction Profiles.

ConspectusRadical migration represents a powerful strategy for reaction discovery and development in organic synthesis, offering access to unprecedented functional molecules and chemical space. In this Account, we describe our contributions to the field, particularly focusing on 1,2-radical acyloxy migration (RAM), a process involving the transposition of a radical and an acyloxy group. We highlight its application in carbohydrate modification and allyl carboxylate trifunctionalization, demonstrating how this reactivity enables the streamlined synthesis of novel glycomimetics and facilitates selective 1,2,3-trifunctionalization of allyl carboxylates. These advances establish 1,2-RAM as a versatile platform for catalytic radical transformations, unlocking new opportunities in reaction development and functional molecule design.Our approach leverages excited-state palladium and ground-state nickel catalysis to modify carbohydrates, specifically at the C2 position. This strategy enables C2-deoxy-hydrogenation, deuteration, iodination, alkenylation, allylation, ketonylation, and arylation reactions, providing direct access to unprecedented glycomimetics. These transformations streamline the synthesis of structurally diverse glycomimetics, facilitating the discovery and development of carbohydrate-based functional molecules. Furthermore, the mild reaction conditions and high functional group tolerance of these catalytic systems make them particularly attractive for late-stage functionalization, broadening their applicability in complex molecule synthesis.Beyond carbohydrates, we have extended 1,2-RAM reactivity to achieve unprecedented 1,2,3-trifunctionalization of allyl carboxylates. By employing excited-state phosphine catalysis, we demonstrate a 1,3-carbobromination reaction accompanied by an acyloxy shift. This proof-of-concept study lays the foundation for developing a broader range of 1,2,3-trifunctionalization reactions, effectively transforming allyl carboxylates into substituted isopropyl carboxylate donors. This advancement expands the synthetic utility of allyl carboxylates, enabling the rapid construction of structurally diverse molecular scaffolds.In summary, the 1,2-RAM reactivity opens a new avenue for reaction discovery and development, granting access to new functional molecules and chemical space. The mild conditions, broad functional group compatibility, and unique reactivity of this approach make it a valuable tool for chemical synthesis. We anticipate that merging 1,2-RAM with other catalytic platforms will further advance bond disconnection strategies, provide access to new functional molecules, and expand the frontiers of chemical synthesis.

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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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