欢迎登录材料期刊网

材料期刊网

高级检索

采用不同比例的氢氟酸(1%(质量分数)HF)与双氧水(30%(质量分数)H2O2)以及二者不同配比(1∶1、5∶1和1∶5)的混合溶液对钛金属表面进行处理,制备出具有不同拓扑结构的钛活性表面.用扫描电镜(SEM)、原子力显微镜(AFM)、接触角测试和X射线光电子能谱(XPS)等手段分别对各组样品的表面形貌、粗糙度、亲疏水性及表面化学组成变化等进行分析和表征.将各组样品分别与骨肉瘤细胞株(MG63)共培养,用SEM观察细胞形态变化,利用MTT比色法测定细胞增殖能力,通过体外细胞培养实验考察处理后的钛金属表面对MG63细胞形貌及增殖分化特性的影响.结果表明,经HF和H2O2混合溶液处理后的样品表面粗糙,并含有丰富的F-和OH-基团,促进了细胞的粘附、铺展、生长和增殖,大幅改善了钛表面的生物活性.其中,氢氟酸与双氧水按1∶5配比的混合溶液处理后的样品在细胞培养前期显示出更加优良的细胞相容性,这对促进钛种植体与周围骨组织间的快速整合具有积极意义.

参考文献

[1] Xiao S J;Kenausis G;Textor M.Titanium in Medicine[M].Berlin:Springer-Verlag,2001:417-530.
[2] Geetha M;Singh A K;Asokamani R et al.[J].Progress in Materials Science,2009,54(03):397-425.
[3] Schliephake H;Scharnweber D .[J].Journal of Materials Chemistry,2008,18(21):2404-2414.
[4] Stanford C M .[J].Australian Dental Journal,2008,53:S26-S33.
[5] Ismail F S M;Rohanizadeh R;Atwa S et al.[J].Journal of Materials Science:Materials in Medicine,2007,18(05):705-714.
[6] Coelho PG;Granjeiro JM;Romanos GE;Suzuki M;Silva NR;Cardaropoli G;Thompson VP;Lemons JE .Basic research methods and current trends of dental implant surfaces.[J].Journal of biomedical materials research, Part B. Applied biomaterials,2009(2):579-596.
[7] de Jonge LT;Leeuwenburgh SC;Wolke J .Organic-inorganic surface modifications for titanium implant surfaces.[J].Pharmaceutical research,2008(10):2357-2369.
[8] Fini M.;Savarino L.;Aldini NN.;Martini L.;Glavaresi G.;Rizzi G. Martini D.;Ruggeri A.;Giunti A.;Giardino R. .Biomechanical and histomorphometric investigations on two morphologically differing titanium surfaces with and without fluorohydroxyapatite coating: an experimental study in sheep tibiae[J].Biomaterials,2003(19):3183-3192.
[9] Lee B H;Kim Y D;Shin J H et al.[J].Journal of Biomedical Materials Research,2002,61:466-473.
[10] Wang XX;Hayakawa S;Tsuru K;Osaka A .Bioactive titania-gel layers formed by chemical treatment of Ti substrate with a H2O2/HCl solution.[J].Biomaterials,2002(5):1353-1357.
[11] Ferraris S;Spriano S;Pan G et al.[J].Journal of Materials Science:Materials in Medicine,2011,22(03):533-545.
[12] Lamolle SF;Monjo M;Rubert M;Haugen HJ;Lyngstadaas SP;Ellingsen JE .The effect of hydrofluoric acid treatment of titanium surface on nanostructural and chemical changes and the growth of MC3T3-E1 cells.[J].Biomaterials,2009(5):736-742.
[13] Sutter E M M;Goetz-Grandmont G J .[J].Corrision Science,1990,30:461-467.
[14] Mauno H O Kononen;Eeva T Lavonius .[J].Dental Materials,1995,11:269-272.
[15] Ponsonnet L;Reybier K;Martelet C et al.[J].Materials Science and Engineering C,2003,23:551-560.
[16] Taxt-Lamolle F;Rubert M;Monjo M et al.[J].Acta Biomaterialia,2010,6:1025-1032.
[17] Lamolle SF;Monjo M;Lyngstadaas SP;Ellingsen JE;Haugen HJ .Titanium implant surface modification by cathodic reduction in hydrofluoric acid: surface characterization and in vivo performance.[J].Journal of biomedical materials research, Part A,2009(3):581-588.
[18] Pattanayak Deepak K;Takahiro K;Tomiharu M et al.[J].Journal of Materials Science:Materials in Medicine,2009,20(12):2401-2411.
[19] Zhang E W;Wang Y B et al.[J].Biomedical Materials,2011,6(02):1530-1535.
[20] Aita H;Hori N;Takeuchi M;Suzuki T;Yamada M;Anpo M;Ogawa T .The effect of ultraviolet functionalization of titanium on integration with bone.[J].Biomaterials,2009(6):1015-1025.
上一张 下一张
上一张 下一张
计量
  • 下载量()
  • 访问量()
文章评分
  • 您的评分:
  • 1
    0%
  • 2
    0%
  • 3
    0%
  • 4
    0%
  • 5
    0%