Department of Functional Materials in Medicine and Dentistry at the Institute of Functional Materials and Biofabrication (IFB), University of Würzburg and KeyLab Polymers for Medicine of the Bavarian Polymer Institute (BPI), Pleicherwall 2, Würzburg, 97070, Germany.
Small. 2021 Apr;17(13):e2007551. doi: 10.1002/smll.202007551. Epub 2021 Mar 9.
Biointerface engineering is a wide-spread strategy to improve the healing process and subsequent tissue integration of biomaterials. Especially the integration of specific peptides is one promising strategy to promote the regenerative capacity of implants and 3D scaffolds. In vivo, these tailored interfaces are, however, first confronted with the innate immune response. Neutrophils are cells with pronounced proteolytic potential and the first recruited immune cells at the implant site; nonetheless, they have so far been underappreciated in the design of biomaterial interfaces. Herein, an in vitro approach is introduced to model and analyze the neutrophil interaction with bioactivated materials at the example of nano-bioinspired electrospun surfaces that reveals the vulnerability of a given biointerface design to the contact with neutrophils. A sacrificial, transient hydrogel coating that demonstrates optimal protection for peptide-modified surfaces and thus alleviates the immediate cleavage by neutrophil elastase is further introduced.
生物界面工程是一种广泛应用的策略,用于改善生物材料的愈合过程和随后的组织整合。特别是特定肽的整合是一种有前途的策略,可以促进植入物和 3D 支架的再生能力。然而,在体内,这些定制的界面首先要面对先天免疫反应。中性粒细胞是具有显著蛋白水解潜能的细胞,也是植入部位首先招募的免疫细胞;尽管如此,它们在生物材料界面的设计中一直被低估。本文介绍了一种体外方法,通过示例纳米仿生电纺表面来模拟和分析中性粒细胞与生物活性材料的相互作用,该方法揭示了给定生物界面设计在与中性粒细胞接触时的脆弱性。进一步介绍了一种牺牲性的、短暂的水凝胶涂层,该涂层可对肽修饰表面提供最佳保护,从而减轻中性粒细胞弹性蛋白酶的即刻切割。