Witzdam Lena, Garay-Sarmiento Manuela, Gagliardi Mick, Meurer Yannick L, Rutsch Yannik, Englert Jenny, Philipsen Sandra, Janem Anisa, Alsheghri Rawan, Jakob Felix, Molin Daniël G M, Schwaneberg Ulrich, van den Akker Nynke M S, Rodriguez-Emmenegger Cesar
DWI - Leibniz Institute for Interactive Materials e.V., Forckenbeckstraße 50, 52074, Aachen, Germany.
Institute for Bioengineering of Catalonia (IBEC), Carrer de Baldiri Reixac, 10, 12, Barcelona, 08028, Spain.
Macromol Biosci. 2024 Apr;24(4):e2300434. doi: 10.1002/mabi.202300434. Epub 2023 Nov 30.
Orthopedic implants such as knee and hip implants are one of the most important types of medical devices. Currently, the surface of the most advanced implants consists of titanium or titanium-alloys with high porosity at the bone-contacting surface leading to superior mechanical properties, excellent biocompatibility, and the capability of inducing osseointegration. However, the increased surface area of porous titanium provides a nidus for bacteria colonization leading to implant-related infections, one of the main reasons for implant failure. Here, two readily applicable titanium-coatings based on hydrophilic carboxybetaine polymers that turn the surface stealth thereby preventing bacterial adhesion and colonization are developed. These coatings are biocompatible, do not affect cell functionality, exhibit great antifouling properties, and do not cause additional inflammation during the healing process. In this way, the coatings can prevent implant-related infections, while at the same time being completely innocuous to its biological environment. Thus, these coating strategies are a promising route to enhance the biocompatibility of orthopedic implants and have a high potential for clinical use, while being easy to implement in the implant manufacturing process.
诸如膝关节和髋关节植入物之类的骨科植入物是最重要的医疗器械类型之一。目前,最先进的植入物表面由钛或钛合金构成,在与骨接触的表面具有高孔隙率,从而具有卓越的机械性能、出色的生物相容性以及诱导骨整合的能力。然而,多孔钛表面积的增加为细菌定植提供了温床,导致植入物相关感染,这是植入物失败的主要原因之一。在此,开发了两种基于亲水性羧基甜菜碱聚合物的易于应用的钛涂层,这些涂层使表面具有隐形性,从而防止细菌粘附和定植。这些涂层具有生物相容性,不影响细胞功能,具有出色的防污性能,并且在愈合过程中不会引起额外的炎症。通过这种方式,这些涂层可以预防植入物相关感染,同时对其生物环境完全无害。因此,这些涂层策略是增强骨科植入物生物相容性的一条有前景的途径,具有很高的临床应用潜力,同时易于在植入物制造过程中实施。