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Introducing diversity into 12-helical beta-peptides: Toward biologically active foldamers.

机译:将多样性引入12螺旋β肽:迈向具有生物活性的折叠剂。

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摘要

The design and characterization of unnatural foldamers, oligomers that adopt specific secondary structures in solution, has emerged as an exciting new sub-field of physical organic chemistry. Several potential applications provide impetus for the discovery and characterization of novel oligomers that mimic the sequence-specific folding and organization of natural biopolymers, such as proteins, in solution. Stable secondary structures composed of non-natural monomers would allow the rational design of a new class of pharmaceuticals, capable of interacting with large binding surface areas to disrupt deleterious biomolecular interactions. In a complementary application, efforts directed towards the design of biomimetic polymers will test our understanding of the forces responsible for secondary and tertiary structures found in natural biopolymers. Finally, foldamers should provide novel substrates for study by the materials science community.; The most thoroughly investigated foldamers to date are oligomers of beta-amino acids, or beta-peptides. Short beta-peptides have been shown to adopt all regular secondary structure types displayed by alpha-peptides (i.e. turns, sheets, and helices). In addition, beta-peptides have been shown to display biological activity. That beta-peptides can adopt discrete secondary structures with as few as six residues in aqueous solution and the unnatural backbone is resistant to proteases suggests that beta-peptides might be useful as medicinal agents.; Medicinal applications of beta-peptides require site-specific introduction of diverse functionality along the beta-peptide backbone. This Thesis reports the results of initial investigations into strategies to introduce such diverse functionality into the 12-helix, one helical conformation displayed by beta-peptides. After a brief review of beta-peptides, Chapter Two describes an optimized synthesis of the ACPC residue, which facilitates further studies of 12-helical beta-peptides. Chapter Three demonstrates one method of introducing diversity into 12-helical beta-peptides. This strategy involves incorporation of acyclic beta3-homoamino acid residues into oligomers that adopt 12-helical conformations. Chapter Three also includes the results of antimicrobial studies of a beta-peptide that incorporates hydrophobic functionality via acyclic beta3-homoleucine residues while maintaining a 12-helical conformation in aqueous solution. Finally, Chapter Four applies the strategy developed in Chapter Three to investigate the aggregation properties of amphiphilic 12-helical beta-peptides in which hydrophobicity is introduced via acyclic beta3-homoleucine residues.
机译:非天然折叠剂(在溶液中采用特定二级结构的低聚物)的设计和表征已成为物理有机化学的一个令人兴奋的新领域。几种潜在的应用为新型寡聚物的发现和表征提供了动力,这些寡聚物模仿了溶液中天然生物聚合物(如蛋白质)的序列特异性折叠和组织。由非天然单体组成的稳定二级结构将允许合理设计新型药物,该药物能够与较大的结合表面积相互作用,从而破坏有害的生物分子相互作用。在一个补充应用中,致力于仿生聚合物设计的努力将检验我们对天然生物聚合物中二级结构和三级结构的作用力的理解。最后,折叠器应提供新颖的底物,供材料科学界研究。迄今为止,最深入研究的折叠剂是β-氨基酸或β-肽的寡聚体。短的β-肽已经显示出采用α-肽显示的所有规则的二级结构类型(即,匝,片和螺旋)。另外,已经显示出β-肽显示出生物学活性。 β-肽可以采用离散的二级结构,在水溶液中具有少至六个残基,并且非天然骨架对蛋白酶具有抗性,这表明β-肽可能可用作药物。 β肽的药物应用需要沿着β肽骨架的特定位置引入多种功能。本论文报告了将这种多样化的功能引入12螺旋(一种由β肽显示的螺旋构象)的策略的初步研究结果。在简要回顾了β肽后,第二章介绍了ACPC残基的优化合成方法,这有助于进一步研究12螺旋β肽。第三章演示了一种将多样性引入12螺旋β肽的方法。该策略涉及将无环β3-同氨基酸残基掺入采用12-螺旋构象的寡聚物中。第三章还包括对β肽进行抗菌研究的结果,该β肽通过无环的β3同色氨酸残基结合了疏水功能,同时在水溶液中保持12螺旋构象。最后,第四章运用在第三章中开发的策略来研究两亲性12螺旋β肽的聚集特性,其中疏水性是通过无环β3-高亮氨酸残基引入的。

著录项

  • 作者

    LePlae, Paul Rene.;

  • 作者单位

    The University of Wisconsin - Madison.;

  • 授予单位 The University of Wisconsin - Madison.;
  • 学科 Chemistry Organic.
  • 学位 Ph.D.
  • 年度 2002
  • 页码 189 p.
  • 总页数 189
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 有机化学;
  • 关键词

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