Wolfson School of Mechanical, Electrical and Manufacturing Engineering, Loughborough University, LE11 3TU, UK.
Wolfson School of Mechanical, Electrical and Manufacturing Engineering, Loughborough University, LE11 3TU, UK.
Mater Sci Eng C Mater Biol Appl. 2020 Oct;115:110839. doi: 10.1016/j.msec.2020.110839. Epub 2020 Mar 12.
Titanium (Ti) alloys with Niobium (Nb) and Tin (Sn) were prepared in order to conduct a systematic study on the bulk and surface properties of as-cast c.p.Ti, binary Ti-40Nb and Ti-10Sn, and ternary Ti-10Nb-5Sn (at.%) to ascertain whether Sn content can be used as an enhancer for cell activity. From a metallurgy viewpoint, a range of binary and ternary alloys displaying distinctive Ti phases (i.e. β, α', α") were achieved at room temperature. Their surface (oxide thickness and composition, roughness, contact angle) and bulk (compressive stiffness, strength, elongation, microhardness, electrical resistance) features were characterised. The same surface roughness was imparted on all the alloys, therefore substrate-cell interactions were evaluated independently from this variable. The physico-mechanical properties of the ternary alloy presented the highest strength to stiffness ratio and thereby proved the most suitable for load-bearing orthopaedic applications. From a cellular response viewpoint, their cytotoxicity, ability to adsorb proteins, to support cell growth and to promote proliferation were studied. Metabolic activity using a mouse model was monitored for a period of 12 days to elucidate the mechanism behind an enhanced proliferation rate observed in the Sn-containing alloys. It was hypothesised that the complex passivating surface oxide layer and the bulk inhomogeneity with two dominant Ti phases were responsible for this phenomenon.
为了系统研究铸态 cpTi、二元 Ti-40Nb 和 Ti-10Sn 以及三元 Ti-10Nb-5Sn(原子%)的整体和表面性能,制备了含铌(Nb)和锡(Sn)的钛(Ti)合金,以确定 Sn 含量是否可用作提高细胞活性的增强剂。从冶金学的角度来看,在室温下获得了一系列显示独特 Ti 相(即β、α'、α")的二元和三元合金。对它们的表面(氧化层厚度和组成、粗糙度、接触角)和整体(压缩刚度、强度、伸长率、显微硬度、电阻)特性进行了表征。所有合金的表面粗糙度相同,因此独立于该变量评估了基底-细胞相互作用。三元合金的物理力学性能具有最高的强度与刚度比,因此最适合用于承重的骨科应用。从细胞反应的角度来看,研究了它们的细胞毒性、吸附蛋白质的能力、支持细胞生长和促进增殖的能力。使用小鼠模型监测代谢活性 12 天,以阐明在含 Sn 合金中观察到的增殖率提高的机制。假设复杂的钝化表面氧化层和具有两个主导 Ti 相的整体非均质性是造成这种现象的原因。