São Paulo State University, Regenerative Medicine Lab, Department of Veterinary Surgery and Animal Reproduction, School of Veterinary Medicine and Animal Science, UNESP, Botucatu, SP, Brazil.
Materials Science and Technology Centre, Nuclear and Energy Research Institute (IPEN) and Technological Research Institute (IPT), São Paulo, SP, Brazil.
J Mech Behav Biomed Mater. 2021 Mar;115:104260. doi: 10.1016/j.jmbbm.2020.104260. Epub 2020 Dec 17.
Titanium scaffolds with non-toxic β stabilizing elements (Nb and Sn), Ti-34Nb-6Sn (TNS), and with magnesium as spacer (TNS/M), were processed by powder metallurgy, and sintered at 800 °C. The X-ray diffraction (XRD) pattern showed that materials are biphasic alloys, presenting 45 to 42% (wt %) in hcp (α-phase) and the rest is bcc (β-phase), and the presence of a slight peak relating to TiO in both materials. Pores of approximately 50 μm for TNS and 300 μm to TNS/M were observed in the micrographic analysis by scanning electron microscopy (SEM). The wettability was higher for TNS/M compared to TNS. The elastic modulus was higher for TNS compared to TNS/M. Stem cells derived from equine bone marrow (BMMSCs) were used for in vitro assays. The morphologic and adhesion evaluation after 72 h, carried out by direct contact assay with the materials showed that the BMMSCs were anchored and adhered to the porous scaffolds, in the way the cytoplasmic extension was observed. The cellular migration, using the "wound healing" method, was significant for the groups treated with conditioned medium with materials in 24 h. Osteogenic differentiation of BMMSCs, assessed by calcium deposition and staining with Alizarin Red, was greater in the conditioned medium with TNS/M in 10 days of culture. Since the biological effects was good and the elastic modulus decreased in the system with magnesium is a promising new content titanium alloy for biomedical application.
具有无毒β稳定元素(Nb 和 Sn)的钛支架、Ti-34Nb-6Sn(TNS)和以镁为间隔物的 Ti-34Nb-6Sn(TNS/M),通过粉末冶金加工,并在 800°C 下烧结。X 射线衍射(XRD)图谱表明,这些材料是双相合金,具有 45 至 42%(wt%)的 hcp(α 相),其余为 bcc(β 相),并且两种材料中都存在与 TiO 相关的轻微峰。通过扫描电子显微镜(SEM)的微观分析观察到 TNS 的孔径约为 50μm,TNS/M 的孔径约为 300μm。与 TNS 相比,TNS/M 的润湿性更高。与 TNS/M 相比,TNS 的弹性模量更高。从马骨髓(BMMSCs)中分离出的干细胞用于体外分析。通过与材料直接接触进行 72 小时后的形态和粘附评估,结果表明 BMMSCs 锚定并粘附在多孔支架上,观察到细胞质延伸。使用“伤口愈合”方法进行的细胞迁移,对于用材料处理的条件培养基在 24 小时的组中是显著的。通过钙沉积和茜素红染色评估 BMMSCs 的成骨分化,在 10 天的培养中,TNS/M 中的条件培养基中的成骨分化更大。由于生物效应良好,并且镁体系中的弹性模量降低,因此该系统是一种有前途的新型生物医学应用钛合金。