Voinarovych Sergii, Maksimov Serhiy, Kaliuzhnyi Sergii, Kyslytsia Oleksandr, Safarova Yantsen Yuliya, Alontseva Darya
E.O. Paton Electric Welding Institute, National Academy of Sciences of Ukraine, 11 Kazymyr Malevych Str., 03150 Kyiv, Ukraine.
LLC Paton Innovations, Kyiv 03150, Ukraine.
Materials (Basel). 2025 Jul 21;18(14):3405. doi: 10.3390/ma18143405.
Hydroxyapatite (HA) has become a widely used material for bone grafting and surface modification of titanium-based orthopedic implants due to its excellent biocompatibility. Among various coating techniques, microplasma spraying (MPS) has gained significant industrial relevance. However, the clinical success of HA coatings also depends on their adhesion to the implant substrate. Achieving durable fixation and reliable biological integration of orthopedic implants remains a major challenge due to insufficient coating adhesion and limited osseointegration. This study addresses challenges in dental and orthopedic implantology by evaluating the microstructure, mechanical properties, and biological behavior of bilayer coatings composed of a zirconium (Zr) sublayer and an HA top layer, applied via MPS onto titanium alloy. Surface roughness, porosity, and adhesion were characterized, and pull-off and shear tests were used to assess mechanical performance. In vitro biocompatibility was tested using rat mesenchymal stem cells (MSCs) to model osteointegration. The results showed that the MPS-fabricated Zr-HA bilayer coatings achieved a pull-off strength of 28.0 ± 4.2 MPa and a shear strength of 32.3 ± 3.2 MPa, exceeding standard requirements. Biologically, the HA top layer promoted a 45% increase in MSC proliferation over three days compared to the uncoated titanium substrate. Antibacterial testing also revealed suppression of growth after 14 h. These findings support the potential of MPS-applied Zr-HA coatings to enhance both the mechanical integrity and biological performance of titanium-based orthopedic implants.
由于具有优异的生物相容性,羟基磷灰石(HA)已成为一种广泛用于骨移植和钛基骨科植入物表面改性的材料。在各种涂层技术中,微等离子体喷涂(MPS)已具有重要的工业应用价值。然而,HA涂层的临床成功还取决于其与植入物基体的附着力。由于涂层附着力不足和骨整合有限,实现骨科植入物的持久固定和可靠的生物整合仍然是一项重大挑战。本研究通过评估由锆(Zr)底层和HA顶层组成的双层涂层的微观结构、力学性能和生物学行为,来应对牙科和骨科植入学中的挑战,该双层涂层通过MPS涂覆在钛合金上。对表面粗糙度、孔隙率和附着力进行了表征,并使用拉伸和剪切试验来评估力学性能。使用大鼠间充质干细胞(MSCs)进行体外生物相容性测试以模拟骨整合。结果表明,MPS制备的Zr-HA双层涂层的拉伸强度达到28.0±4.2MPa,剪切强度达到32.3±3.2MPa,超过了标准要求。在生物学方面,与未涂层的钛基体相比,HA顶层在三天内促进MSC增殖提高了45%。抗菌测试还显示14小时后细菌生长受到抑制。这些发现支持了MPS应用的Zr-HA涂层在增强钛基骨科植入物的机械完整性和生物学性能方面的潜力。