Department of Molecular Biology and Genetics, Istanbul Technical University, Istanbul, Turkey.
Department of Biomedical Engineering, Yildiz Technical University, Istanbul, Turkey.
J Biomed Mater Res A. 2024 Oct;112(10):1793-1802. doi: 10.1002/jbm.a.37722. Epub 2024 Apr 20.
The osseointegration of titanium implants within the host tissue holds crucial importance. The introduction of functional coatings at tissue-implant interface enhances the bioactivity of titanium implants, improves their therapeutic outcomes, and enhances the effectiveness of treatments. In this study, we focused on enhancing the bioactivity of titanium-based implant materials by coating the titanium surfaces with chitosan microspheres, which are loaded with osseointegration-promoting agent dexamethasone (DEX). Initially, chitosan microspheres were successfully produced, followed by DEX loading through diffusion, resulting in a drug loading efficiency of around 50.2 (wt %). The subsequent drug release profile displayed a 24-hour duration, releasing approximately 32.6 (wt %) of the loaded DEX. In cell proliferation assays using human osteosarcoma (SAOS-2) cells, Ti surfaces coated with DEX-loaded chitosan microspheres initially exhibited lower cell numbers compared with DEX-free ones. This observation was attributed to transient osteogenic differentiation effects of DEX, since a notable increase in cell proliferation was observed on the 7th day. Von Kossa staining revealed mineralization beginning on the 14th day, particularly evident in DEX-loaded samples. Moreover, alkaline phosphatase (ALP) activity displayed a pattern of initial increase and subsequent decrease, with DEX release from chitosan microspheres showing a clear influence on the osteogenic differentiation, especially on the 7th day. These findings align with literature, highlighting DEX's potential to enhance osteogenic differentiation and cellular behavior on chitosan microsphere-coated titanium surfaces. This study emphasizes the promising implications for functionalizing surfaces of implant materials with DEX-loaded chitosan microspheres to improve their biocompatibility and bioactivity.
钛植入物在宿主组织中的骨整合具有重要意义。在组织-植入物界面引入功能性涂层可以提高钛植入物的生物活性,改善其治疗效果,并提高治疗效果。在这项研究中,我们专注于通过在钛表面涂覆负载骨整合促进剂地塞米松(DEX)的壳聚糖微球来提高基于钛的植入材料的生物活性。首先,成功制备了壳聚糖微球,然后通过扩散加载 DEX,得到了约 50.2(wt%)的载药效率。随后的药物释放曲线显示持续 24 小时,释放了约 32.6(wt%)的负载 DEX。在使用人骨肉瘤(SAOS-2)细胞的细胞增殖实验中,涂有负载 DEX 的壳聚糖微球的 Ti 表面最初显示出比无 DEX 的表面更低的细胞数量。这一观察结果归因于 DEX 的瞬时成骨分化效应,因为在第 7 天观察到细胞增殖明显增加。Von Kossa 染色显示第 14 天开始矿化,负载 DEX 的样品尤为明显。此外,碱性磷酸酶(ALP)活性表现出先增加后减少的模式,壳聚糖微球中 DEX 的释放对成骨分化有明显影响,尤其是在第 7 天。这些发现与文献一致,强调了 DEX 增强壳聚糖微球涂层钛表面成骨分化和细胞行为的潜力。本研究强调了用负载 DEX 的壳聚糖微球对植入材料表面进行功能化以提高其生物相容性和生物活性的有前途的意义。