Enhancing orthopaedic implant efficacy: the development of cerium-doped bioactive glass and polyvinylpyrrolidone composite coatings via MAPLE technique.

Gratiela Gradișteanu-Pircalabioru, Irina Negut, Mihaela Dinu, Anca Constantina Parau, Bogdan Bita, Liviu Duta, Carmen Ristoscu, Bogdan Sava
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Abstract

This study investigates the potential of combining Cerium-doped bioactive glass (BBGi) with Polyvinylpyrrolidone (PVP) to enhance the properties of titanium (Ti) implant surfaces using the Matrix-Assisted Pulsed Laser Evaporation (MAPLE) technique. The primary focus is on improving osseointegration, corrosion resistance, and evaluating the cytotoxicity of the developed thin films towards host cells. The innovative approach involves synthesizing a composite thin film comprising BBGi and PVP, leveraging the distinct benefits of both materials: BBGi's biocompatibility and osteoinductive capabilities, and PVP's film-forming and biocompatible properties. Results demonstrate that the BBGi + PVP coatings significantly enhance hydrophilicity, indicating improved cell-material interaction potential. The electrochemical analysis reveals superior corrosion resistance of the BBGi + PVP films compared to BBGi alone, which is critical for long-term implant stability. The mechanical adherence tests confirm the robust attachment of the coatings to Ti substrates, surpassing the ISO standards for implant materials. Biocompatibility tests show promising cell viability and negligible cytotoxic effects, with a controlled inflammatory response, underscoring the potential of BBGi + PVP coatings for orthopedic applications. The study concludes that the synergistic combination of BBGi and PVP, applied through the MAPLE technique, offers a promising route to fabricate bioactive and corrosion-resistant coatings for Ti implants, potentially enhancing osseointegration and longevity in clinical settings.

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提高骨科植入物的疗效:利用MAPLE技术开发掺铈生物活性玻璃和聚乙烯吡咯烷酮复合涂层。
本研究利用基质辅助脉冲激光蒸发(MAPLE)技术,研究了将掺铈生物活性玻璃(BBGi)与聚乙烯吡咯烷酮(PVP)结合,增强钛(Ti)植入物表面性能的潜力。主要的焦点是改善骨整合,耐腐蚀性,并评估所开发的薄膜对宿主细胞的细胞毒性。该创新方法包括合成由BBGi和PVP组成的复合薄膜,利用两种材料的独特优势:BBGi的生物相容性和骨诱导能力,PVP的成膜性和生物相容性。结果表明,BBGi+PVP涂层显著增强了亲水性,表明细胞-物质相互作用潜力的提高。电化学分析表明,与单独使用BBGi相比,BBGi+PVP膜具有更好的耐腐蚀性,这对植入物的长期稳定性至关重要。机械附着力测试证实了涂层与Ti基板的牢固附着力,超过了ISO植入材料标准。生物相容性测试显示,BBGi+PVP涂层具有良好的细胞活力和可忽略不计的细胞毒性作用,炎症反应可控,强调了其在骨科应用中的潜力。该研究得出结论,通过MAPLE技术应用BBGi和PVP的协同组合,为Ti种植体制造生物活性和耐腐蚀涂层提供了一条有前途的途径,可能会增强临床环境中的骨整合和寿命。
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