Kong Hao, Han Jinru, Yang Ming, Lai Liangxue, Sun Yabing, Luan Xin, Ren Wenzhi, Wu Aiguo, Wei Gang
College of Chemistry and Chemical Engineering, Qingdao University, Qingdao 266071, China.
Cixi Institute of Biomedical Engineering, International Cooperation Base of Biomedical Materials Technology and Application, Chinese Academy of Science (CAS) Key Laboratory of Magnetic Materials and Devices and Zhejiang, Ningbo, China.
J Mater Chem B. 2023 Apr 12;11(15):3445-3452. doi: 10.1039/d3tb00074e.
Self-assembled peptide nanomaterials exhibit great potential for applications in materials science, energy storage, nanodevices, analytical science, biomedicine, tissue engineering, and others due to their tailorable ordered nanostructures and unique physical, chemical, and biological properties. Although one-dimensional peptide nanofibers and nanotubes have been widely used for biomedical applications, the design and synthesis of two-dimensional (2D) peptide nanostructures for cancer therapy remain challenging. In this work, we describe the creation of 2D biocompatible peptide nanosheets (PNSs) through molecular self-assembly, which can provide support matrixes for conjugating gold nanorods (AuNRs) to form high-performance 2D nanomaterials for photothermal conversion. After molecular modification, AuNRs can be chemically conjugated onto the surface of 2D PNSs, and the created PNS-AuNR nanohybrids serve as a potential nanoplatform for photothermal therapy of tumor cells. The obtained results indicate that both PNSs and AuNRs contribute to the improved efficiency of photothermal therapy (PTT) of tumors, in which 2D PNSs provide high biocompatibility and a large surface area for binding AuNRs, and AuNRs show a high PTT ability towards tumors. The strategies of molecular design and functional tailoring of self-assembled peptide nanomaterials shown in this study are valuable and inspire the synthesis of biomimetic nanomaterials for biomedicine and tissue engineering applications.
自组装肽纳米材料因其可定制的有序纳米结构以及独特的物理、化学和生物学特性,在材料科学、能量存储、纳米器件、分析科学、生物医学、组织工程等领域展现出巨大的应用潜力。尽管一维肽纳米纤维和纳米管已被广泛应用于生物医学领域,但用于癌症治疗的二维(2D)肽纳米结构的设计与合成仍然具有挑战性。在这项工作中,我们描述了通过分子自组装创建二维生物相容性肽纳米片(PNSs)的过程,这些纳米片可为共轭金纳米棒(AuNRs)提供支撑基质,以形成用于光热转换的高性能二维纳米材料。经过分子修饰后,AuNRs可化学共轭到二维PNSs的表面,所创建的PNS-AuNR纳米杂化物可作为肿瘤细胞光热治疗的潜在纳米平台。所得结果表明,PNSs和AuNRs均有助于提高肿瘤光热治疗(PTT)的效率,其中二维PNSs为结合AuNRs提供了高生物相容性和大表面积,而AuNRs对肿瘤显示出高PTT能力。本研究中展示的自组装肽纳米材料的分子设计和功能定制策略具有重要价值,并为生物医学和组织工程应用中仿生纳米材料的合成提供了灵感。