In vitro and in vivo analysis reveals improved osteogenesis and biocompatibility in tantalum-coated implants, suggesting enhanced bone integration.
Ti6Al4V (TC4) widely used in bone implants, has good mechanical properties but unremarkable bone-forming capacity. Tantalum (Ta) features excellent biocompatibility and suitability for osteogenesis, albeit with a significantly higher elastic-modulus. In this study, we combined the strengths of both materials to optimize implant materials. Magnetron sputtering was applied to deposit a Ta coating onto the TC4 surface (Ta-C-TC4). Surface characteristics were assessed via scanning electron microscope (SEM). Cell adhesion was assessed using SEM and cytoskeletal staining, while live/dead staining was used to evaluate cell viability and biocompatibility on the material surfaces. For proliferation analysis, fluorescence transfection and CCK-8 assay were utilized, while quantification of substance and qRT-PCR were employed to assess the osteogenic differentiation. In vivo, fluorescence labelling, VG, and Goldner staining were employed to evaluate bone integration. A 550 nm-thick Ta coating was successfully achieved on Ta-C-TC4, and its elements and morphology closely resembled Ta. Cells exhibited more pronounced proliferation and differentiation on Ta and Ta-C-TC4. More extensive encasement of new bone was observed around Ta and Ta-C-TC4. Ta-C-TC4 exhibits biocompatibility on par with Ta and demonstrates superior bone integration compared to TC4. Magnetron sputtering represents a promising strategy to harness the mechanical attributes of TC4 with the biological characteristics of Ta, thereby holding potential for the advancement of bone implant.
No takes yet. Share an insight, caveat, or question.
Li et al. (2025) studied this question.
Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context: