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两种构建模块的分子共组装将它们的特性整合到一种功能性超分子水凝胶中。

Molecular Co-Assembly of Two Building Blocks Harnesses Both their Attributes into a Functional Supramolecular Hydrogel.

作者信息

Chakraborty Priyadarshi, Aviv Moran, Netti Francesca, Cohen-Gerassi Dana, Adler-Abramovich Lihi

机构信息

Department of Oral Biology, The Goldschleger School of Dental Medicine, Sackler Faculty of Medicine, The Center for Nanoscience and Nanotechnology and The Center for the Physics and Chemistry of Living Systems, Tel Aviv University, Tel Aviv, 6997801, Israel.

School of Mechanical Engineering, Afeka Tel Aviv Academic College of Engineering, Tel Aviv, 6910717, Israel.

出版信息

Macromol Biosci. 2022 May;22(5):e2100439. doi: 10.1002/mabi.202100439. Epub 2022 Feb 17.

Abstract

Engineering ordered nanostructures through molecular self-assembly of simple building blocks constitutes the essence of modern nanotechnology to develop functional supramolecular biomaterials. However, the lack of adequate chemical and functional diversity often hinders the utilization of unimolecular self-assemblies for practical applications. Co-assembly of two different building blocks can essentially harness both of their attributes and produce nanostructured macro-scale objects with improved physical properties and desired functional complexity. Herein, the authors report the co-operative co-assembly of a modified amino acid, fluorenylmethoxycarbonyl-pentafluoro-phenylalanine (Fmoc-F -Phe), and a peptide, Fmoc-Lys(Fmoc)-Arg-Gly-Asp [Fmoc-K(Fmoc)-RGD] into a functional supramolecular hydrogel. A change in the morphology and fluorescence emission, as well as improvement of the mechanical properties in the mixed hydrogels compared to the pristine hydrogels, demonstrate the signature of co-operative co-assembly mechanism. Intriguingly, this approach harnesses the advantages of both components in a synergistic way, resulting in a single homogeneous biomaterial possessing the antimicrobial property of Fmoc-F -Phe and the biocompatibility and cell adhesive characteristics of Fmoc-K(Fmoc)-RGD. This work exemplifies the importance of the co-assembly process in nanotechnology and lays the foundation for future developments in supramolecular chemistry by harnessing the advantages of diverse functional building blocks into a mechanically stable functional biomaterial.

摘要

通过简单构建单元的分子自组装来构建有序纳米结构,是现代纳米技术开发功能性超分子生物材料的核心。然而,缺乏足够的化学和功能多样性常常阻碍单分子自组装在实际应用中的利用。两种不同构建单元的共组装基本上可以利用它们双方的特性,并产生具有改善物理性质和所需功能复杂性的纳米结构宏观物体。在此,作者报道了一种修饰氨基酸芴甲氧羰基 - 五氟苯丙氨酸(Fmoc - F - Phe)与一种肽芴甲氧羰基 - 赖氨酸(芴甲氧羰基) - 精氨酸 - 甘氨酸 - 天冬氨酸 [Fmoc - K(芴甲氧羰基) - RGD] 协同共组装形成功能性超分子水凝胶。与原始水凝胶相比,混合水凝胶在形态、荧光发射方面的变化以及机械性能的改善,证明了协同共组装机制的特征。有趣的是,这种方法以协同方式利用了两种组分的优势,产生了一种单一的均匀生物材料,它具有 Fmoc - F - Phe 的抗菌特性以及 Fmoc - K(芴甲氧羰基) - RGD 的生物相容性和细胞黏附特性。这项工作例证了共组装过程在纳米技术中的重要性,并通过将多种功能构建单元的优势整合到一种机械稳定的功能性生物材料中,为超分子化学的未来发展奠定了基础。

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