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控制肽酰胺键顺反异构的策略。

Strategies to Control the Cis-Trans Isomerization of Peptoid Amide Bonds.

机构信息

New Chemistry Unit, Jawaharlal Nehru Centre for Advanced Scientific Research (JNCASR), Jakkur P. O., Bengaluru, 560064, Karnataka, India.

出版信息

Chem Asian J. 2022 Jun 1;17(11):e202200149. doi: 10.1002/asia.202200149. Epub 2022 Apr 20.

Abstract

Peptoids are oligomers of N-substituted glycine units. They structurally resemble peptides but, unlike natural peptides, the side chains of peptoids are present on the amide nitrogen atoms instead of the α-carbons. The N-substitution improves cell-permeability of peptoids and enhance their proteolytic stability over natural peptides. Therefore, peptoids are ideal peptidomimetic candidates for drug discovery, especially for intracellular targets. Unfortunately, most peptoid ligands discovered so far possess moderate affinity towards their biological targets. The moderate affinity of peptoids for biomacromolecules is linked to their conformational flexibility, which causes substantial entropic loss during the peptoid-biomacromolecule binding process. The conformational flexibility of peptoids is caused by the lack of backbone chirality, absence of hydrogen bond donors (NH) in their backbone to form CO⋅⋅⋅HN hydrogen bonds and the facile cis-trans isomerization of their tertiary amide bonds. In recent years, many investigators have shown that the incorporation of specific side chains with unique steric and stereoelectronic features can favourably shift the cis-trans equilibria of peptoids towards one of the two isomeric forms. Such strategies are helpful to design homogenous peptoid oligomers having well defined secondary structures. Herein, we discuss the strategies developed over the years to control the cis-trans isomerization of peptoid amide bonds.

摘要

肽缩氨酸是 N-取代甘氨酸单元的低聚物。它们在结构上类似于肽,但与天然肽不同的是,肽缩氨酸的侧链存在于酰胺氮原子上,而不是α-碳原子上。N-取代提高了肽缩氨酸的细胞通透性,并增强了它们相对于天然肽的蛋白水解稳定性。因此,肽缩氨酸是药物发现的理想肽模拟候选物,特别是针对细胞内靶标。不幸的是,迄今为止发现的大多数肽缩氨酸配体对其生物靶标具有中等亲和力。肽缩氨酸与生物大分子的中等亲和力与其构象灵活性有关,这在肽缩氨酸-生物大分子结合过程中会导致大量的熵损失。肽缩氨酸的构象灵活性是由于缺乏骨架手性、其骨架中没有氢键供体 (NH) 来形成 CO⋅⋅⋅HN 氢键以及其叔酰胺键的易顺反异构化引起的。近年来,许多研究人员表明,引入具有独特空间和立体电子特征的特定侧链可以有利地将肽缩氨酸的顺反异构平衡向两种异构体形式之一转移。这些策略有助于设计具有明确二级结构的均一肽缩氨酸低聚物。在此,我们讨论了多年来开发的控制肽缩氨酸酰胺键顺反异构化的策略。

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