Bakhtiary Negar, Ghalandari Behafarid, Ghorbani Farnaz, Varma Swastina Nath, Liu Chaozong
Institute of Orthopaedic & Musculoskeletal Science, University College London, Royal National Orthopaedic Hospital, Stanmore HA7 4LP, UK.
State Key Laboratory of Oncogenes and Related Genes, Institute for Personalized Medicine, School of Biomedical Engineering, Shanghai Jiao Tong University, Shanghai 200030, China.
Polymers (Basel). 2023 Feb 21;15(5):1068. doi: 10.3390/polym15051068.
The development of peptide-based materials has emerged as one of the most challenging aspects of biomaterials in recent years. It has been widely acknowledged that peptide-based materials can be used in a broad range of biomedical applications, particularly in tissue engineering. Among them, hydrogels have been attracting considerable interest in tissue engineering because they mimic tissue formation conditions by providing a three-dimensional environment and a high water content. It has been found that peptide-based hydrogels have received more attention due to mimicking proteins, particularly extracellular matrix proteins, as well as the wide variety of applications they are capable of serving. It is without a doubt that peptide-based hydrogels have become the leading biomaterials of today owing to their tunable mechanical stability, high water content, and high biocompatibility. Here, we discuss in detail various types of peptide-based materials, emphasizing peptide-based hydrogels, and then we examine in detail how hydrogels are formed, paying particular attention to the peptide structures that are incorporated into the final structure. Following that, we discuss the self-assembly and formation of hydrogels under various conditions, as well as the parameters to be considered as critical factors, which include pH, amino acid composi- tion within the sequence, and cross-linking techniques. Further, recent studies on the development of peptide-based hydrogels and their applications in tissue engineering are reviewed.
近年来,基于肽的材料的发展已成为生物材料领域最具挑战性的方面之一。人们普遍认为,基于肽的材料可用于广泛的生物医学应用,特别是在组织工程中。其中,水凝胶在组织工程中引起了相当大的兴趣,因为它们通过提供三维环境和高含水量来模拟组织形成条件。已经发现,基于肽的水凝胶由于模仿蛋白质,特别是细胞外基质蛋白,以及它们能够服务的广泛应用而受到更多关注。毫无疑问,基于肽的水凝胶因其可调谐的机械稳定性、高含水量和高生物相容性而成为当今领先的生物材料。在这里,我们详细讨论各种类型的基于肽的材料,重点是基于肽的水凝胶,然后我们详细研究水凝胶是如何形成的,特别关注纳入最终结构的肽结构。在此之后,我们讨论在各种条件下水凝胶的自组装和形成,以及作为关键因素需要考虑的参数,包括pH值、序列中的氨基酸组成和交联技术。此外,还综述了基于肽的水凝胶的最新研究进展及其在组织工程中的应用。