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New Developments in Heterocycle Synthesis: Applications of an Anti-Aminopalladation Mechanism

机译:杂环合成的新进展:抗氨基palpalation机理的应用

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摘要

Biologically active compounds, such as molecules isolated from natural sources like plants and marine sponges, have long been of interest to the synthetic chemistry community. Synthetic routes towards these biologically interesting compounds are constantly being sought after and improved upon by synthetic chemists, because efficient synthetic routes yield not only the compound in question in mass quantitites, but also allow for the formation of a library of compounds bearing small changes in structure that are not found in the originally isolated compound. These small changes can potentially have dramatic effects on the biological activity of the compounds in question.;Nitrogen containing heterocycles appear in a wide variety of these aforementioned biologically active compounds, and for this reason have long been an attractive target to the synthetic community. Heterocyclic scaffolds such as substituted pyrrolidines are present in compounds that display a wide variety of biological activity, such as antifungal, antibiotic, and antitumor properties. Cyclic guanidines are also present in a large number of biologically interesting molecules, such as compounds that display antibiotic, immunosuppressive, and neurotoxic properties. While synthetic methodologies to access the scaffolds in question currently exist, the majority of them rely on preexisting substitution present in the substrate to afford the desired substituted products. This precludes the ability to rapidly synthesize a library of compounds with various substitution patterns that can then be assayed for changes in biological activity.;The research described in this dissertation details the development of a methodology to synthesize substituted, nitrogen containing heterocycles in a palladium catalyzed, modular coupling reaction. Chapter 1 outlines the biological relevance of nitrogen containing heterocycles, and it details the previous efforts of the Wolfe group to synthesize the molecular scaffolds in question. Chapter 2 describes the synthesis of substituted pyrrolidines via a newly developed, anti-aminopalladation methodology. Substituted pyrrolidine products bearing previously unusable N-tosyl and N-trifluoroacetyl protecting groups were afforded in good yield. Chapters 3 and 4 detail the synthesis of substituted, cyclic guanidines from acyclic N-allyl guanidine substrates. Chapter 3 focuses on coupling said guanidine substrates with aryl halides/triflates, in which substrates bearing cleavable N-cyano and N-tosyl protecting groups were utilized. Finally, Chapter 4 describes the successful coupling of guanidine substrates bearing N-cyano and N-tosyl protectin groups with OBz-protected amine electrophiles in a variation on a 1,2-diamination reaction.
机译:长期以来,合成化学界一直对生物活性化合物(例如从自然资源(如植物和海洋海绵)中分离的分子)感兴趣。合成化学家一直在寻求并寻求针对这些生物学上令人感兴趣的化合物的合成路线,因为有效的合成路线不仅会在质量方面产生所讨论的化合物,而且还允许形成结构变化很小的化合物库在最初分离的化合物中找不到的那些。这些小的变化可能会对所讨论的化合物的生物学活性产生巨大影响。含氮杂环出现在各种上述生物活性化合物中,因此长期以来一直是合成界关注的目标。杂环支架(例如取代的吡咯烷)存在于具有多种生物活性(例如抗真菌,抗生素和抗肿瘤特性)的化合物中。环状胍也存在于许多生物学上有意义的分子中,例如具有抗生素,免疫抑制和神经毒性特性的化合物。尽管目前存在用于研究所述支架的合成方法,但是它们中的大多数依赖于基质中存在的预先存在的取代来提供所需的取代产物。这排除了快速合成具有各种取代模式的化合物的库的能力,该库随后可用于分析生物活性的变化。本论文中描述的研究详细介绍了在钯催化下合成取代的含氮杂环的方法的开发。 ,模块化偶联反应。第一章概述了含氮杂环的生物学相关性,并详细介绍了沃尔夫(Wolfe)小组先前为合成所讨论的分子支架所做的努力。第2章介绍了通过新开发的抗氨基palpalation方法合成取代的吡咯烷。以良好的产率提供了带有先前无法使用的N-甲苯磺酰基和N-三氟乙酰基保护基的取代的吡咯烷产物。第3章和第4章详细介绍了从无环N-烯丙基胍底物上合成取代的环状胍的方法。第三章着重于将所述胍底物与芳基卤化物/三氟甲磺酸酯偶联,其中利用了带有可裂解的N-氰基和N-甲苯磺酰基保护基的底物。最后,第4章描述了在1,2-胺化反应中,带有N-氰基和N-甲苯磺酰基保护素基团的胍底物与OBz保护的胺亲电试剂的成功偶联。

著录项

  • 作者

    Peterson, Luke J.;

  • 作者单位

    University of Michigan.;

  • 授予单位 University of Michigan.;
  • 学科 Organic chemistry.
  • 学位 Ph.D.
  • 年度 2017
  • 页码 185 p.
  • 总页数 185
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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