Investigation on Osteoblast Growth on the Modified Surface of Porous Titanium

Article Preview

Abstract:

Three methods have been used to modify the porous titanium surface, which is the alkali heat treatment, alkali heat treatment + SBF solution soak and alkali heat treatment + precalcidied + SBF solution soak. The morphology of different surfaces was observed by scanning electron microscopy (SEM). The MC3T3-E1 osteoblast cell was cultured on the modified and unmodified surface of porous titanium with 3days and 7days, the morphology of osteoblast adhesion and growth on different surface was observed. The results showed that osteoblast adhere on the modified and unmodified surface of the porous titanium. Osteoblast on AHS and HA modified surface can grow and spread, but it cannot grow and spread on unmodified and AH modified surface of the porous titanium. Osteoblast can grow across the different titanium fibers of on HA modified surface of porous titanium. Osteoblast on the HA surface has the very good biological suitability, which is beneficial to the combination of bone tissue and porous titanium.

You might also be interested in these eBooks

Info:

Periodical:

Pages:

98-103

Citation:

Online since:

January 2013

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2013 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

[1] M. Takemoto and S. Fujibayashi. Biomaterials. 2005, 26(30),: p.6014.

Google Scholar

[2] H. Li and S. M. Oppenheimer. Mater Trans . 2004, 45(4): 1124.

Google Scholar

[3] E. D. Spoerke and N. G. Murray. Acta Biomater. 2005, 1(5): 523.

Google Scholar

[4] M. Lerch. Inter Orthop. 2011. DOI 10. 1007/s00264-011-1361-0.

Google Scholar

[5] H. Yamada, Y. Yoshihara and O. Henmi. J Orthop Sci. 2009, 14: 228.

Google Scholar

[6] P. Siegkas, V. L. Tagarielli and N. Petrinic. J Mater Sci. 2011, 46(8): 2741.

Google Scholar

[7] K. L. Kipadi, P. L. Chang and S. L. Bellis. J Biomed Mater Res, 2001, 57(2): 258.

Google Scholar

[8] D. D. Deligaianni, N. D. Katsala and P. G. Koutsoukosl. Biomaterial, 2001, 22(1): 87.

Google Scholar

[9] K. Webb, V. Hlady and P. A. Tresco. J Biomed Mater Res, 1998, 41(3): 422.

Google Scholar

[10] Y.M. Zhang, Y.M. Zhao and Y. Han. Rare Metal Mat Eng, 2004, 33(5): 518.

Google Scholar

[11] Q. L. Feng, H. Wang and F. Z. Cui. J Crystal Growth, 1999, 200: 550.

Google Scholar

[12] Q. L. Feng. Introduction of Biomaterials. Beijing: Tsinghua University Press, 2009: 128.

Google Scholar

[13] Y. L. Wangl. Biomaterials: The Intersection of Biology and material Science. Beijing: Science Impress, 2009: 199.

Google Scholar