涉及叠氮化物或三氮鎓盐重排的n原子缺失。

IF 16.4 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Accounts of Chemical Research Pub Date : 2025-03-18 Epub Date: 2025-03-06 DOI:10.1021/acs.accounts.4c00853
Bowei Huang, Hongjian Lu
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引用次数: 0

摘要

甲巯胺是天然产物、药物、配体和催化剂中常见的结构成分,它们的合成和转化对有机化学至关重要。虽然C-N键的形成已经成为一种完善和可靠的合成策略,但C-N键的选择性裂解仍然相对较少。这一挑战源于氮的低杂核核离性,这一性质限制了C-N键切割的实际应用。这一差距突出了需要进一步发展的综合方法的一个重要领域。在这种情况下,N原子删除──定义为通过C-N键切割选择性去除氮原子,同时保持剩余框架的完整性──已成为一种有希望的骨骼编辑方法。自莱文2021年发表里程碑式的报告以来,N原子缺失因其精确修饰分子骨架的潜力而受到关注。在Levin和Sarpong提出的骨骼编辑概念的基础上,特别是他们修改循环框架的策略,我们认识到开发温和有效的方法来实现循环系统的结构操纵的迫切需要。本文总结了我们自2017年以来的研究成果,重点介绍了两种不同机制的N原子缺失方法:磺胺酰叠氮化物的重排和三氮酰胺中间体的转化。首先,我们探索并优化了仲胺衍生的磺胺酰叠氮化物的热重排,发现其作为一种可行的N原子缺失合成策略的潜力。在2024年,我们引入了O-diphenylphosphinyl hydroxylamine (DPPH)促进的N原子缺失,涉及三氮鎓中间体的生成和新的重排。这两种方法都能将极性脂肪族胺转化为非极性支架,并且适用于线性分子和不同大小的循环体系。特别是基于dpph的方法,在温和的反应条件下,对于空间受阻的底物,不需要无水或无氧环境,表现出了非凡的有效性。通过严格的实验研究,阐明了通过异二氮烯和自由基中间体两种方法的机理。此外,我们观察到当伯胺暴露于DPPH时,氢(氘)脱胺产物的快速形成。除了作为一种典型的骨骼编辑策略之外,仲胺的N原子缺失已经成为一种至关重要的合成方法。尽管存在局限性,但它将构建C-C键的挑战性任务转变为更易于管理的序列:在选择性去除N原子后形成C-N键。我们已经将这一策略应用于天然产物、配体、碳氢化合物笼和药物的合成。我们希望这项工作将进一步激发人们对N原子缺失作为骨骼编辑策略的兴趣,并鼓励将其纳入先进的合成方法,从而扩大其在有机化学各个领域的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
N-Atom Deletion Involving Rearrangement of Sulfamoyl Azides or Triazanium Salts.

ConspectusAmines are frequent structural components in natural products, pharmaceuticals, ligands, and catalysts, making their synthesis and transformation essential to organic chemistry. While C-N bond formation has become a well-established and reliable synthetic strategy, the selective cleavage of C-N bonds remains relatively underexplored. This challenge arises from the low heterolytic nucleofugality of nitrogen, a property that limits the practical application of C-N bond cleavage. This gap underscores a significant area in synthetic methodology in need of further development. In this context, N atom deletion─defined as the selective removal of a nitrogen atom via C-N bond cleavage, while preserving the integrity of the remaining framework─has emerged as a promising approach for skeletal editing. Since Levin's landmark 2021 report, N atom deletion has gained attention for its potential to precisely modify molecular skeletons. Building on the skeletal editing concepts advanced by Levin and Sarpong, particularly their strategies for modifying cyclic frameworks, we recognized the critical need for developing mild and efficient methods that enable the structural manipulation of cyclic systems.This Account summarizes our research since 2017, focusing on two approaches to N atom deletion with distinct mechanisms: the rearrangement of sulfamoyl azides and the conversion of triazanium intermediates. Initially, we explored and optimized the thermal rearrangement of sulfamoyl azides derived from secondary amines, discovering its potential as a viable synthetic strategy for N atom deletion. In 2024, we introduced an O-diphenylphosphinyl hydroxylamine (DPPH)-promoted N atom deletion, involving the generation and novel rearrangement of triazanium intermediates. Both methods enable the conversion of polar aliphatic amines into nonpolar scaffolds and are applicable to both linear molecules and cyclic systems of varying sizes. The DPPH-based approach, in particular, demonstrated exceptional effectiveness for sterically hindered substrates with mild reaction conditions and no need for anhydrous or oxygen-free environments. The mechanisms of two methods─both via isodiazene and radical intermediates─were elucidated through rigorous experimental investigation. Additionally, we observed the rapid formation of hydro(deutero)deamination products when primary amines were exposed to DPPH.Beyond its role as a typical skeletal editing strategy, N atom deletion of secondary amines has emerged as a crucial synthetic approach. Though with limitations, it transforms the challenging task of constructing C-C bonds into a more manageable sequence: the formation of C-N bonds following selective N atom removal. We have applied this strategy in the synthesis of natural products, ligands, hydrocarbon cages, and pharmaceuticals. We hope that this work will stimulate further interest in N atom deletion as a skeletal editing strategy and encourage its incorporation into advanced synthetic methodologies, thereby expanding its utility across diverse areas of organic chemistry.

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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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