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“桥接”n→π* 相互作用可以稳定肽螺旋。

"Bridged" n→π* interactions can stabilize peptoid helices.

机构信息

Department of Chemistry, Bowdoin College , 6600 College Station, Brunswick, Maine 04011-8466, United States.

出版信息

J Org Chem. 2013 Nov 15;78(22):11172-83. doi: 10.1021/jo4014113. Epub 2013 Nov 4.

DOI:10.1021/jo4014113
PMID:24050840
Abstract

Peptoids are an increasingly important class of peptidomimetic foldamers comprised of N-alkylglycine units that have been successfully developed as antimicrobial agents, lung surfactant replacements, enzyme inhibitors, and catalysts, among many other applications. Since peptoid secondary structures can be crucial to their desired functions, significant efforts have been devoted to developing means of modularly controlling peptoid backbone amide cis-trans isomerism using side chains. Strategic engineering of interactions between side chain aromatic rings and backbone cis-amides (n→π*(Ar) interactions) is an attractive strategy for stabilizing helical structures in N-a-chiral aromatic peptoids, which are among the most utilized classes of structured peptoids. Herein, we report the first detailed computational and experimental study of n→π*(Ar) interactions in models of peptoids containing backbone thioamides, which we term "thiopeptoids". Our work has revealed that these interactions significantly affect amide rotamerism in both peptoid and thiopeptoid models via a newly characterized "bridged" mode of interaction mediated by the N-α-C-H σ orbitals. Overall, this work elucidates new strategies for controlling both peptoid and thiopeptoid folding and suggests that thiopeptoids will be highly structured and therefore potentially useful as therapeutics, biological probes, and nanostructural engineering elements.

摘要

肽拟物是一类日益重要的类肽折叠物,由 N-烷基甘氨酸单元组成,已成功开发为抗菌剂、肺表面活性剂替代品、酶抑制剂和催化剂等多种应用。由于肽拟物的二级结构对其预期功能至关重要,因此人们投入了大量精力来开发使用侧链模块化控制肽拟物主链酰胺顺反异构的方法。通过侧链芳香环与主链顺式酰胺之间的相互作用(n→π*(Ar) 相互作用)进行策略性工程设计,是稳定 N-a-手性芳香肽拟物中螺旋结构的一种有吸引力的策略,N-a-手性芳香肽拟物是最常用的结构化肽拟物之一。在此,我们报告了对含有主链硫代酰胺的肽拟物模型中 n→π*(Ar) 相互作用的首次详细计算和实验研究,我们将这些模型称为“硫代肽拟物”。我们的工作表明,这些相互作用通过新表征的 N-α-C-H σ 轨道介导的“桥接”相互作用模式,显著影响肽拟物和硫代肽拟物模型中的酰胺构象。总的来说,这项工作阐明了控制肽拟物和硫代肽拟物折叠的新策略,并表明硫代肽拟物将具有高度结构化,因此可能作为治疗剂、生物探针和纳米结构工程元件具有潜在用途。

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