Nunome Shoko, Kanetaka Hiroyasu, Kudo Tada-aki, Endoh Kazuki, Hosoda Hideki, Igarashi Kaoru
Division of Oral Dysfunction Science, Graduate School of Density, Tohoku University, Sendai, Japan.
Liaison Center for Innovative Dentistry, Graduate School of Density, Tohoku University, Sendai, Japan Division Biomedical Engineering for Diagnosis and Treatment, Graduate School of Biomedical Engineering, Tohoku University, Sendai, Japan
J Biomater Appl. 2015 Jul;30(1):119-30. doi: 10.1177/0885328215569892. Epub 2015 Feb 6.
Shape memory alloys (SMAs) including superelastic alloys have unique properties such as shape memory and superelasticity, thus they are recognized as very useful biomaterials. These properties are very advantageous for medical use, and actually the SMA wires have been widely used in medical field. However, biocompatibility of nickel-titanium (Ni-Ti) alloy, which is the only practical SMA at present, has been questioned because of its high nickel content. The aim of this study was to evaluate the biocompatibility of a newly developed Ni-free Ti-based SMA for medical use. The newly developed SMA made of Ti-Mo-Sn-Zr system was processed into a disk of 15.1 mm in diameter. Pure titanium of the same shape was prepared as control. All the disk surfaces were polished using emery papers, #120, #400, and #600. Scanning electron microscopy and a 3D optics profiler were used to evaluate the surface of the materials. In vitro evaluations included colony examination for evaluation of the cell cytotoxicity, DNA quantification for the cell proliferation, Alamar blue assay for metabolic activity, FDA staining for the live cell imaging, and cell cycle analysis, using Chinese hamster fibroblastic V-79 cells and mouse osteoblastic MC3T3-E1 cells. In colony examination and DNA quantification, there was no significant difference between the Ti-Mo-Sn-Zr and the pure titanium. In FDA staining, cultured cells on the Ti-Mo-Sn-Zr alloy showed the same biocompatibility as those on the pure titanium. The present results suggest that the newly developed Ti-Mo-Sn-Zr alloy showed the high biocompatibility comparable to pure titanium and can be used as efficient biomaterial for medical use.
形状记忆合金(SMAs),包括超弹性合金,具有形状记忆和超弹性等独特性能,因此它们被认为是非常有用的生物材料。这些性能在医学应用中非常有利,实际上形状记忆合金丝已在医学领域广泛使用。然而,镍钛(Ni-Ti)合金作为目前唯一实用的形状记忆合金,因其高镍含量,其生物相容性受到质疑。本研究的目的是评估一种新开发的用于医学用途的无镍钛基形状记忆合金的生物相容性。新开发的由Ti-Mo-Sn-Zr系统制成的形状记忆合金被加工成直径为15.1毫米的圆盘。制备相同形状的纯钛作为对照。所有圆盘表面均使用120号、400号和600号砂纸进行抛光。使用扫描电子显微镜和三维光学轮廓仪评估材料表面。体外评估包括使用中国仓鼠成纤维细胞V-79和小鼠成骨细胞MC3T3-E1细胞进行的集落检查以评估细胞毒性、DNA定量以评估细胞增殖、Alamar蓝测定以评估代谢活性、FDA染色以进行活细胞成像以及细胞周期分析。在集落检查和DNA定量中,Ti-Mo-Sn-Zr合金与纯钛之间没有显著差异。在FDA染色中,在Ti-Mo-Sn-Zr合金上培养的细胞显示出与在纯钛上培养的细胞相同的生物相容性。目前的结果表明,新开发的Ti-Mo-Sn-Zr合金显示出与纯钛相当的高生物相容性,可作为高效的医用生物材料使用。