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揭示封端基团在萘 N 封端脱氢二肽水凝胶中的作用。

Unveiling the Role of Capping Groups in Naphthalene N-Capped Dehydrodipeptide Hydrogels.

作者信息

Vilaça Helena, Carvalho André, Castro Tarsila, Castanheira Elisabete M S, Hilliou Loic, Hamley Ian, Melle-Franco Manuel, Ferreira Paula M T, Martins José A

机构信息

Centre of Chemistry, University of Minho, Campus de Gualtar, 4710-057 Braga, Portugal.

Department of Chemistry and Biotechnology, Technological Centre for the Textile and Clothing Industries of Portugal, 4760-034 Vila Nova de Famalicão, Portugal.

出版信息

Gels. 2023 Jun 6;9(6):464. doi: 10.3390/gels9060464.

Abstract

Self-assembled peptide-based hydrogels are archetypical nanostructured materials with a plethora of foreseeable applications in nanomedicine and as biomaterials. N-protected di- and tri-peptides are effective minimalist (molecular) hydrogelators. Independent variation of the capping group, peptide sequence and side chain modifications allows a wide chemical space to be explored and hydrogel properties to be tuned. In this work, we report the synthesis of a focused library of dehydrodipeptides N-protected with 1-naphthoyl and 2-naphthylacetyl groups. The 2-naphthylacetyl group was extensively reported for preparation of peptide-based self-assembled hydrogels, whereas the 1-naphthaloyl group was largely overlooked, owing presumably to the lack of a methylene linker between the naphthalene aromatic ring and the peptide backbone. Interestingly, dehydrodipeptides N-capped with the 1-naphthyl moiety afford stronger gels, at lower concentrations, than the 2-naphthylacetyl-capped dehydrodipeptides. Fluorescence and circular dichroism spectroscopy showed that the self-assembly of the dehydrodipeptides is driven by intermolecular aromatic π-π stacking interactions. Molecular dynamics simulations revealed that the 1-naphthoyl group allows higher order aromatic π-π stacking of the peptide molecules than the 2-naphthylacetyl group, together with hydrogen bonding of the peptide scaffold. The nanostructure of the gel networks was studied by TEM and STEM microscopy and was found to correlate well with the elasticity of the gels. This study contributes to understanding the interplay between peptide and capping group structure on the formation of self-assembled low-molecular-weight peptide hydrogels. Moreover, the results presented here add the 1-naphthoyl group to the palette of capping groups available for the preparation of efficacious low-molecular-weight peptide-based hydrogels.

摘要

基于自组装肽的水凝胶是典型的纳米结构材料,在纳米医学和生物材料领域有大量可预见的应用。N-保护的二肽和三肽是有效的极简主义(分子)水凝胶剂。封端基团、肽序列和侧链修饰的独立变化使得可以探索广阔的化学空间并调节水凝胶的性质。在这项工作中,我们报告了用1-萘甲酰基和2-萘乙酰基保护的脱氢二肽聚焦文库的合成。2-萘乙酰基被广泛报道用于制备基于肽的自组装水凝胶,而1-萘甲酰基在很大程度上被忽视了,这可能是由于萘芳香环与肽主链之间缺乏亚甲基连接基。有趣的是,用1-萘基封端的脱氢二肽在较低浓度下比用2-萘乙酰基封端的脱氢二肽能形成更强的凝胶。荧光和圆二色光谱表明,脱氢二肽的自组装是由分子间芳香π-π堆积相互作用驱动的。分子动力学模拟表明,与2-萘乙酰基相比,1-萘甲酰基能使肽分子形成更高阶的芳香π-π堆积,同时肽支架还存在氢键作用。通过透射电子显微镜(TEM)和扫描透射电子显微镜(STEM)对凝胶网络的纳米结构进行了研究,发现其与凝胶的弹性密切相关。这项研究有助于理解肽和封端基团结构在自组装低分子量肽水凝胶形成过程中的相互作用。此外,本文的结果将1-萘甲酰基添加到了可用于制备高效低分子量肽基水凝胶的封端基团库中。

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