通过环加成和随后的环还原反应进行骨架编辑。

IF 17.7 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY Accounts of Chemical Research Pub Date : 2025-02-18 Epub Date: 2025-01-28 DOI:10.1021/acs.accounts.4c00813
Pengwei Xu, Armido Studer
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引用次数: 0

摘要

框架编辑,包括添加,删除,或取代环系统中的单个或多个原子,已成为现代合成化学的一种变革性方法。这种创新策略通过在不破坏基本功能复杂性的情况下精确修改分子框架,解决了开发新药和先进材料的始终存在的需求。理想情况下,在合成的后期进行,骨架编辑可以最大限度地减少与从头合成相关的成本和劳动密集型过程的需要,从而加速复杂分子结构的发现和优化。虽然目前在骨骼编辑方面的努力主要集中在单原子尺度上的修饰,但通过环加成和环还原来编辑分子,为在双原子尺度上操纵分子框架提供了一种独特的策略。这为化学转换引入了新的可能性,并使转换成为可能,例如双原子嬗变、正式的单原子嬗变和原子插入。这种骨架编辑过程的早期例子通常依赖于底物固有的高反应性,底物需要足够的活性才能进行环加成,并具有良好的离开基团,用于随后的断裂(环还原)步骤。然而,最近,相对惰性底物的结构编辑已经可以通过底物激活策略来实现,这些策略旨在增强环加成或随后的环还原步骤。沿着这些思路,我们最近开发了一种激活吡啶的脱芳工艺。在一个简单的高产化学操作中,恶嗪吡啶很容易作为活化的脱芳分离中间体得到。这种方法使我们能够通过环加成/环还原顺序将吡啶转化为苯和萘。在本报告中,也强调了其他研究小组最近的相关贡献,以及早期涉及四嗪、三嗪、杂嗪和其他类似的杂环作为环加成反应伙伴的例子。通过提供一种简化的途径来修饰分子结构,这些方法已经证明了它们相互转化芳烃和杂芳烃的能力,并且在后期编辑应用以及推进药物发现和生物活性分子的合成方面显示出巨大的潜力。在未来,这些方法无疑将在骨骼编辑领域看到更广泛的发展。新的底物活化策略不仅要使氮和其他杂原子结合到环中,而不是使其缺失,而且要实现环收缩,并将这种策略扩展到非芳香环上。我们希望在本帐户中总结的进展将激励化学家探索和扩展骨骼编辑方法。通过推动这些方法的边界,研究人员可以为构建和修改复杂的分子框架提供新的机会,最终为化学,生物学和材料科学的创新应用铺平道路。
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Skeletal Editing through Cycloaddition and Subsequent Cycloreversion Reactions.

ConspectusSkeletal editing, which involves adding, deleting, or substituting single or multiple atoms within ring systems, has emerged as a transformative approach in modern synthetic chemistry. This innovative strategy addresses the ever-present demand for developing new drugs and advanced materials by enabling precise modifications of molecular frameworks without disrupting essential functional complexities. Ideally performed at late stages of synthesis, skeletal editing minimizes the need for the cost- and labor-intensive processes often associated with de novo synthesis, thus accelerating the discovery and optimization of complex molecular architectures. While current efforts in skeletal editing predominantly focus on monatomic-scale modifications, editing molecules through cycloaddition followed by cycloreversion offers a unique strategy to manipulate molecular frameworks on a double-atomic scale. This introduces new possibilities for chemical transformations and enables transformations such as double-atom transmutation, formal single-atom transmutation, and atom insertion. Early examples of such skeletal editing processes often relied on the inherent high reactivity of the substrates, which needed to be sufficiently active to undergo cycloaddition and possess good leaving groups for the subsequent fragmentation (cycloreversion) step. Recently, however, the structural editing of relatively inert substrates has become achievable through substrate activation strategies designed to enhance either the cycloaddition or subsequent cycloreversion step.Along these lines, we recently developed a dearomative process for activating pyridines. In a simple high-yielding chemical operation, oxazinopyridines are readily obtained as activated dearomatized isolable intermediates. This method enabled us to achieve the transformation of pyridines into benzenes and naphthalenes through a cycloaddition/cycloreversion sequence. In this Account, related recent contributions from other research groups are highlighted as well, alongside early examples involving tetrazines, triazines, diazines, and other similar heterocycles as cycloaddition reaction partners. By offering a streamlined route to modify molecular structures, these approaches have demonstrated their ability to interconvert arenes and heteroarenes and have shown significant potential for late-stage editing applications as well as advancing drug discovery and the synthesis of bioactive molecules.In the future, these approaches will undoubtedly see broader development in the field of skeletal editing. New strategies for substrate activation should be devised to enable not only the incorporation of nitrogen and other heteroatoms into rings─rather than their deletion─but also to achieve ring contraction and expand the application of this strategy to non-aromatic rings. We hope that the advancements summarized in this Account will inspire chemists to explore and expand skeletal editing methodologies. By pushing the boundaries of these approaches, researchers can unlock new opportunities for constructing and modifying complex molecular frameworks, eventually paving the way for innovative applications in chemistry, biology, and materials science.

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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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