Department of Bioinformatics, Faculty of Engineering & Technology, Marwadi University, Gujarat, 360003, India.
Department of Electronics, Electric, and Automatic Engineering, Rovira I Virgili University (URV), Tarragona, 43003, Spain.
J Mater Chem B. 2023 Aug 24;11(33):7834-7854. doi: 10.1039/d3tb01040f.
Biomaterials are omnipresent in today's healthcare services and are employed in various applications, including implants, sensors, healthcare accessories, and drug delivery systems. Unfavorable host immunological responses frequently jeopardize the efficacy of biomaterials. As a result, surface modification has received much attention in controlling inflammatory responses since it helps camouflage the biomaterial from the host immune system, influencing the foreign body response (FBR) from protein adsorption to fibrous capsule formation. Surfaces with controlled nanotopography and chemistry, among other surface modification methodologies, have effectively altered the immune response to biomaterials. However, the field is still in its early stages, with only a few studies showing a synergistic effect of surface chemistry and nanotopography on inflammatory and wound healing pathways. Therefore, this review will concentrate on the individual and synergistic effects of surface chemistry and nanotopography on FBR modulation and the molecular processes known to modulate these responses. This review will also provide insights into crucial research gaps and advancements in various tactics for modulating FBR, opening new paths for future research. This will further aid in improving our understanding of the immune response to biomaterials, developing advanced surface modification techniques, designing immunomodulatory biomaterials, and translating discoveries into clinical applications.
生物材料在当今的医疗保健服务中无处不在,广泛应用于植入物、传感器、医疗保健配件和药物输送系统等领域。生物材料常常会引发宿主免疫反应,从而影响其疗效。因此,控制炎症反应已成为表面修饰的重点,因为它可以帮助生物材料躲避宿主免疫系统,影响异物反应(FBR),从蛋白吸附到纤维囊形成。在众多表面修饰方法中,具有可控纳米形貌和化学特性的表面已经可以有效改变对生物材料的免疫反应。然而,该领域仍处于起步阶段,只有少数研究表明表面化学和纳米形貌对炎症和伤口愈合途径具有协同作用。因此,本综述将重点关注表面化学和纳米形貌对 FBR 调节的单独和协同作用,以及已知调节这些反应的分子过程。本综述还将深入探讨各种调节 FBR 的策略中的关键研究空白和进展,为未来的研究开辟新的途径。这将进一步帮助我们理解对生物材料的免疫反应,开发先进的表面修饰技术,设计免疫调节生物材料,并将发现转化为临床应用。