芳香变态:芳香环的骨架编辑。

IF 16.4 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Hideki Yorimitsu
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引用次数: 0

摘要

芳香环是天然产品、合成中间体、药品、农用化学品和功能材料中发现的基本结构基序。虽然这些环外围的转变已经建立,但修改其核心框架仍然是一个未被充分探索的前沿。我们的团队率先提出了“芳香变态”的概念,通过用不同的原子取代一个内环原子或将一个原子插入芳香环,从而实现芳香环的骨架转化,从而产生新的合成策略和多样化的分子结构。芳香变态的概念首先在二苯并噻吩和二苯并呋喃逐步转化为三苯的过程中得到证实。这些转化在钯和镍催化剂的促进下,涉及到稳健的C-S和C-O键的战略性激活作为关键步骤。接下来,将该方法扩展到二苯并噻吩两步转化为咔唑、二苯并膦孔、芴等,其中包括氧化成相应的砜以及随后的分子间和分子内顺序亲核芳香取代反应。这些新的合成路线为光电材料提供了有效的途径。特别是基于snar的芳香族变态反应促进了内环原子系统变异的杂螺旋烯文库的构建。这一策略彻底改变了分子文库的构建方式,并使功能分子的快速发现成为可能。除了内环取代外,通过原子插入的扩环芳香变态也被探索过。我们开发了镍催化硼插入到苯并呋喃中,生成了苯并恶唑啉,这是药物化学的重要支架。这种新型的催化转化方法已成功地应用于工业合成,证明了芳烃变态反应的实用性。此外,锰催化和锂金属促进的方法扩大了杂原子插入和芳香框架切割的范围,为获得元素组成多样化的杂环提供了方法。噻吩的还原稀释有效地产生1,4-二硫代丁二烯,它与各种亲电试剂反应产生一系列非生物源的杂杂化合物,如硼孔、磷孔和硅孔。原则上,这种方法应该允许在现成的噻吩中的硫原子被任何原子取代,因此被认为是芳香族变态的一个理想例子,它可以用各种元素快速构建不同的化学空间。芳香族变态提出了许多新的合成子和反合成断开,挑战了传统的有机合成智慧。通过充分利用芳香骨架的变形,可以以最小的努力和时间投入直接构建具有骨架多样性的库。它的应用范围从制药到材料科学,为分子设计和合成策略的新范式铺平了道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Aromatic Metamorphosis: Skeletal Editing of Aromatic Rings.

ConspectusAromatic rings are fundamental structural motifs found in natural products, synthetic intermediates, pharmaceuticals, agrochemicals, and functional materials. While transformations at the periphery of these rings are well-established, modifying their core frameworks has remained an underexplored frontier. Our group has pioneered the concept, termed "aromatic metamorphosis", enabling skeletal transformations of aromatic rings by replacing an endocyclic atom with a different atom or inserting an atom into aromatic rings, which leads to novel synthetic strategies and diverse molecular architectures.The concept of aromatic metamorphosis was first demonstrated in the stepwise conversion of dibenzothiophenes and dibenzofurans into triphenylenes. These transformations, facilitated by palladium and nickel catalysts, involve the strategic activation of robust C-S and C-O bonds as the key steps. Next, the approach was extended to the two-step conversions of dibenzothiophenes into carbazoles, dibenzophospholes, fluorenes, etc., which involve oxidation into the corresponding sulfones and subsequent sequential inter- and intramolecular nucleophilic aromatic substitution reactions. These new synthetic routes have provided efficient access to optoelectronic materials. Especially, the SNAr-based aromatic metamorphosis facilitated the construction of a heterohelicene library with systematic variation in endocyclic atoms. This strategy has revolutionized the way molecular libraries are constructed and enables the rapid discovery of functional molecules.In addition to the endocyclic substitutions, ring-expanding aromatic metamorphosis through atom insertion has also been explored. We developed nickel-catalyzed boron insertion into benzofurans, generating benzoxaborins, which are important scaffolds for medicinal chemistry. This novel catalytic transformation has been successfully scaled to industrial synthesis by companies, which demonstrates the practical utility of aromatic metamorphosis. Furthermore, manganese-catalyzed and lithium-metal-promoted methodologies have expanded the ranges of heteroatoms inserted and aromatic frameworks cleaved, providing methods to access heterocycles with a diversity in element compositions.Reductive dilithiation of thiophenes efficiently yields 1,4-dilithiobutadienes, which react with a variety of electrophiles to produce a series of nonbiogenic heteroles, such as boroles, phospholes, and siloles. In principle, this method should allow the sulfur atom in readily available thiophenes to be replaced with any atom and is therefore considered an ideal example of aromatic metamorphosis in terms of rapid construction of diverse chemical spaces with a variety of elements.Aromatic metamorphosis proposes many new synthons and retrosynthetic disconnections that defy the conventional wisdom of organic synthesis. By making full use of metamorphosing the aromatic skeleton, a library with skeletal diversity can be constructed directly with minimal effort and time investment. Its applications span from pharmaceuticals to materials science, paving the way for a new paradigm in molecular design as well as synthetic strategy.

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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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