Rau Julietta V, Cacciotti Ilaria, Laureti Sara, Fosca Marco, Varvaro Gaspare, Latini Alessandro
Istituto di Struttura della Materia, Consiglio Nazionale delle Ricerche, Via del Fosso del Cavaliere, 100-00133, Rome, Italy.
Università di Roma "Niccolò Cusano", Via Don Carlo Gnocchi, 3-00166, Rome, Italy.
J Biomed Mater Res B Appl Biomater. 2015 Nov;103(8):1621-31. doi: 10.1002/jbm.b.33344. Epub 2014 Dec 30.
The aim of this work was to deposit silicon-substituted hydroxyapatite (Si-HAp) coatings on titanium for biomedical applications, since it is known that Si-HAp is able to promote osteoblastic cells activity, resulting in the enhanced bone ingrowth.
Pulsed laser deposition (PLD) method was used for coatings preparation. For depositions, Si-HAp targets (1.4 wt % of Si), made up from nanopowders synthesized by wet method, were used.
Microstructural and mechanical properties of the produced coatings, as a function of substrate temperature, were investigated by scanning electron and atomic force microscopies, X-ray diffraction, Fourier transform infrared spectroscopy, and Vickers microhardness. In the temperature range of 400-600°C, 1.4-1.5 µm thick Si-HAp films, presenting composition similar to that of the used target, were deposited. The prepared coatings were dense, crystalline, and nanostructured, characterized by nanotopography of surface and enhanced hardness. Whereas the substrate temperature of 750°C was too high and led to the HAp decomposition. Moreover, the bioactivity of coatings was evaluated by in vitro tests in an osteoblastic/osteoclastic culture medium (α-Modified Eagle's Medium).
The prepared bioactive Si-HAp coatings could be considered for applications in orthopedics and dentistry to improve the osteointegration of bone implants.
本研究旨在在钛表面沉积硅取代羟基磷灰石(Si-HAp)涂层用于生物医学应用,因为已知Si-HAp能够促进成骨细胞活性,从而增强骨向内生长。
采用脉冲激光沉积(PLD)法制备涂层。沉积时使用由湿法合成的纳米粉末制成的Si-HAp靶材(硅含量为1.4 wt%)。
通过扫描电子显微镜、原子力显微镜、X射线衍射、傅里叶变换红外光谱和维氏显微硬度测试,研究了所制备涂层的微观结构和力学性能与基底温度的关系。在400-600°C的温度范围内,沉积了厚度为1.4-1.5 µm的Si-HAp薄膜,其成分与所用靶材相似。所制备的涂层致密、结晶且具有纳米结构,其特征在于表面的纳米形貌和硬度增强。而750°C的基底温度过高,导致HAp分解。此外,通过在成骨细胞/破骨细胞培养基(α-改良伊格尔培养基)中的体外试验评估了涂层的生物活性。
所制备的生物活性Si-HAp涂层可考虑用于骨科和牙科应用,以改善骨植入物的骨整合。