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基于 SARS-CoV E 蛋白衍生五肽自组装的多尺度材料工程。

Multiscale Materials Engineering via Self-Assembly of Pentapeptide Derivatives from SARS CoV E Protein.

机构信息

Department of Chemical Sciences, Bose Institute, Unified Academic Campus, Salt Lake, EN 80, Kolkata, 700 091, India.

School of Biological Sciences, Indian Association for the Cultivation of Science, 2A&B Raja S C Mullick Road, Kolkata, 700 032, India.

出版信息

Small. 2024 Nov;20(45):e2404373. doi: 10.1002/smll.202404373. Epub 2024 Jul 16.

Abstract

Short peptide-based supramolecular hydrogels hold enormous potential for a wide range of applications. However, the gelation of these systems is very challenging to control. Minor changes in the peptide sequence can significantly influence the self-assembly mechanism and thereby the gelation propensity. The involvement of SARS CoV E protein in the assembly and release of the virus suggests that it may have inherent self-assembling properties that can contribute to the development of hydrogels. Here, three pentapeptide sequences derived from C-terminal of SARS CoV E protein are explored with same amino acid residues but different sequence distributions and discovered a drastic difference in the gelation propensity. By combining spectroscopic and microscopic techniques, the relationship between peptide sequence arrangement and molecular assembly structure are demonstrated, and how these influence the mechanical properties of the hydrogel. The present study expands the variety of secondary structures for generating supramolecular hydrogels by introducing the 3-helix as the primary building block for gelation, facilitated by a water-mediated structural transition into β-sheet conformation. Moreover, these Fmoc-modified pentapeptide hydrogels/supramolecular assemblies with tunable morphology and mechanical properties are suitable for tissue engineering, injectable delivery, and 3D bio-printing applications.

摘要

短肽基超分子水凝胶在广泛的应用中具有巨大的潜力。然而,这些系统的凝胶化非常难以控制。肽序列的微小变化会显著影响自组装机制,从而影响凝胶倾向。SARS CoV E 蛋白参与病毒的组装和释放表明,它可能具有固有自组装特性,有助于水凝胶的发展。在这里,探索了三个源自 SARS CoV E 蛋白 C 端的五肽序列,它们具有相同的氨基酸残基,但序列分布不同,并发现凝胶倾向有很大差异。通过结合光谱和显微镜技术,证明了肽序列排列与分子组装结构之间的关系,以及这些如何影响水凝胶的机械性能。本研究通过引入 3 螺旋作为凝胶形成的主要构建块,扩展了产生超分子水凝胶的二级结构的多样性,这得益于水介导的结构转变为β-折叠构象。此外,这些 Fmoc 修饰的五肽水凝胶/超分子组装具有可调节的形态和机械性能,适用于组织工程、可注射递送和 3D 生物打印应用。

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