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基于肽的纳米材料及其多样的应用。

Peptide-based nanomaterials and their diverse applications.

作者信息

Das Tarak Nath, Ramesh Aparna, Ghosh Arghya, Moyra Sourav, Maji Tapas Kumar, Ghosh Goutam

机构信息

Molecular Materials Laboratory, New Chemistry Unit (NCU), Jawaharlal Nehru Centre for Advanced Scientific Research (JNCASR), Jakkur, Bangalore 560064, India.

Centre for Nano and Soft Matter Sciences (CeNS), Shivanapura, Dasanapura Hobli, Bengaluru, 562162, India.

出版信息

Nanoscale Horiz. 2025 Jan 27;10(2):279-313. doi: 10.1039/d4nh00371c.

Abstract

The supramolecular self-assembly of peptides offers a promising avenue for both materials science and biological applications. Peptides have garnered significant attention in molecular self-assembly, forming diverse nanostructures with α-helix, β-sheet, and random coil conformations. These self-assembly processes are primarily driven by the amphiphilic nature of peptides and stabilized by non-covalent interactions, leading to complex nanoarchitectures responsive to environmental stimuli. While extensively studied in biomedical applications, including drug delivery and tissue engineering, their potential applications in the fields of piezoresponsive materials, conducting materials, catalysis and energy harvesting remain underexplored. This review comprehensively elucidates the diverse material characteristics and applications of self-assembled peptides. We discuss the multi-stimuli-responsiveness of peptide self-assemblies and their roles as energy harvesters, catalysts, liquid crystalline materials, glass materials and contributors to electrical conductivity. Additionally, we address the challenges and present future perspectives associated with peptide nanomaterials. This review aims to provide insights into the versatile applications of peptide self-assemblies while concisely summarizing their well-established biomedical roles that have previously been extensively reviewed by various research groups, including our group.

摘要

肽的超分子自组装为材料科学和生物应用提供了一条充满前景的途径。肽在分子自组装方面已引起了广泛关注,能形成具有α-螺旋、β-折叠和无规卷曲构象的各种纳米结构。这些自组装过程主要由肽的两亲性驱动,并通过非共价相互作用得以稳定,从而形成对环境刺激有响应的复杂纳米结构。虽然肽在生物医学应用(包括药物递送和组织工程)中已得到广泛研究,但其在压敏材料、导电材料、催化和能量收集等领域的潜在应用仍未得到充分探索。本综述全面阐明了自组装肽的各种材料特性及应用。我们讨论了肽自组装体的多刺激响应性及其作为能量收集器、催化剂、液晶材料、玻璃材料以及电导率贡献者的作用。此外,我们还探讨了肽纳米材料面临的挑战并展望了其未来前景。本综述旨在深入了解肽自组装体的多种应用,同时简要总结其已被包括我们团队在内的各个研究小组广泛综述过的、成熟的生物医学作用。

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