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肽超分子聚合物和共价聚合物的复合材料构成了一种新的多功能、仿生软材料。

Composite of Peptide-Supramolecular Polymer and Covalent Polymer Comprises a New Multifunctional, Bio-Inspired Soft Material.

机构信息

Department of Molecular Microbiology and Biotechnology, George S. Wise Faculty of Life Sciences, Tel Aviv University, Tel Aviv, 6997801, Israel.

Department of Oral Biology, The Goldschleger School of Dental Medicine, Sackler Faculty of Medicine, Tel Aviv University, Tel Aviv, 6997801, Israel.

出版信息

Macromol Rapid Commun. 2019 Sep;40(18):e1900175. doi: 10.1002/marc.201900175. Epub 2019 Jul 26.

Abstract

Peptide-based supramolecular hydrogels are utilized as functional materials in tissue engineering, axonal regeneration, and controlled drug delivery. The Arg-Gly-Asp (RGD) ligand based supramolecular gels have immense potential in this respect, as this tripeptide is known to promote cell adhesion. Although several RGD-based supramolecular hydrogels have been reported, most of them are devoid of adequate resilience and long-range stability for in vitro cell culture. In a quest to improve the mechanical properties of these tripeptide-based gels and their durability in cell culture media, the Fmoc-RGD hydrogelator is non-covalently functionalized with a biocompatible and biodegradable polymer, chitosan, resulting in a composite hydrogel with enhanced gelation rate, mechanical properties and cell media durability. Interestingly, both Fmoc-RGD and Fmoc-RGD/chitosan composite hydrogels exhibit thixotropic properties. The utilization of the Fmoc-RGD/chitosan composite hydrogel as a scaffold for 2D and 3D cell cultures is demonstrated. The composite hydrogel is found to have notable antibacterial activity, which stems from the inherent antibacterial properties of chitosan. Furthermore, the composite hydrogels are able to produce ultra-small, mono-dispersed, silver nanoparticles (AgNPs) arranged on the fiber axis. Therefore, the authors' approach harnesses the attributes of both the supramolecular-polymer (Fmoc-RGD) and the covalent-polymer (chitosan) component, resulting in a composite hydrogel with excellent potential.

摘要

基于肽的超分子水凝胶被用作组织工程、轴突再生和控制药物输送的功能材料。Arg-Gly-Asp(RGD)配体基超分子凝胶在这方面具有巨大的潜力,因为已知这种三肽能促进细胞黏附。尽管已经报道了几种基于 RGD 的超分子水凝胶,但它们大多数缺乏体外细胞培养所需的足够弹性和长程稳定性。为了改善这些三肽基水凝胶的机械性能及其在细胞培养基中的耐久性,将 Fmoc-RGD 水凝胶剂与生物相容性和可生物降解的聚合物壳聚糖非共价功能化,得到一种复合水凝胶,其凝胶化速率、机械性能和细胞培养基耐久性得到提高。有趣的是,Fmoc-RGD 和 Fmoc-RGD/壳聚糖复合水凝胶都表现出触变性。证明了 Fmoc-RGD/壳聚糖复合水凝胶作为二维和三维细胞培养的支架的用途。发现复合水凝胶具有显著的抗菌活性,这源于壳聚糖固有的抗菌特性。此外,复合水凝胶能够在纤维轴上生成排列整齐的超小、单分散的银纳米粒子(AgNPs)。因此,作者的方法利用了超分子聚合物(Fmoc-RGD)和共价聚合物(壳聚糖)的属性,得到了一种具有优异潜力的复合水凝胶。

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