Department of Pharmacy, Research Centre on Bioactive Peptides (CIRPeB), University of Naples "Federico II", Via Mezzocannone 16, 80134-Naples, Italy.
J Mater Chem B. 2019 Sep 14;7(34):5142-5155. doi: 10.1039/c9tb01043b. Epub 2019 Aug 5.
Due to its capability to self-assemble in self-supporting hydrogels (HG) under physiological conditions, Fmoc-FF is one of the most studied ultra-short peptide. The structural properties of the resulting hydrogel (mechanical rigidity, entanglement of the fibrillary network, and the thickness of the fibers) strictly depend on the experimental conditions used during the preparation. In the past few years, a broad range of applications in different fields, such as biomedical and industrial fields, have been proposed. However, the research on novel materials with enhanced mechanical properties, stability, and biocompatibility has brought about the development of novel Fmoc-FF-based hybrid systems, in which the ultra-short hydrogelator is combined with others entities such as polysaccharides, polymers, peptides, or organic molecules. The structural features and the potential applications of these novel hybrid materials, with particular attention to tissue engineering, drug delivery, and catalysis, are described here. The aim is to give the readers a tool to design new hybrid nanomaterials based on the Fmoc-FF dipeptide hydrogelator, with appropriate properties for specific applications.
由于其在生理条件下能够自组装成自支撑水凝胶(HG)的能力,Fmoc-FF 是研究最多的超短肽之一。所得水凝胶的结构特性(机械刚性、纤维状网络的缠结和纤维的厚度)严格取决于制备过程中使用的实验条件。在过去的几年中,已经提出了在不同领域(如生物医学和工业领域)的广泛应用。然而,对具有增强的机械性能、稳定性和生物相容性的新型材料的研究带来了基于新型 Fmoc-FF 的混合系统的发展,其中超短水凝胶与多糖、聚合物、肽或有机分子等其他实体结合。本文描述了这些新型混合材料的结构特征和潜在应用,特别关注组织工程、药物输送和催化。目的是为读者提供一种工具,用于根据 Fmoc-FF 二肽水凝胶设计具有特定应用的适当性能的新型混合纳米材料。