Preparation of nanostructure hydroxyapatite scaffold for tissue engineering applications

被引:0
作者
H. Ghomi
M. H. Fathi
H. Edris
机构
[1] Isfahan University of Technology,Biomaterials Group, Department of Materials Engineering
来源
Journal of Sol-Gel Science and Technology | 2011年 / 58卷
关键词
Nanostructured materials; Porous bioceramic; Hydroxyapatite; Sol–gel processes; Gelcasting process;
D O I
暂无
中图分类号
学科分类号
摘要
Hydroxyapatite due to its good biocompatibility and similar chemical composition to the mineral part of bone has found various applications in tissue engineering. Porous hydroxyapatite has high surface area, which leads to excellent osteoconductivity and resorbability, providing fast bone ingrowth. In this study, highly porous body of nanostructure hydroxyapatite was successfully fabricated via gelcasting method. The pure phase of hydroxyapatite was confirmed by X-ray diffraction. The result of scanning electron microscopy analysis showed that the prepared scaffold has highly interconnected spherical pores with a size in the range 100–400 μm. The crystallite size of the hydroxyapatite scaffold was measured in the range 30–42 nm. The mean values of true (total) and apparent (interconnected) porosity were calculated in the range 84–91 and 70–78%, respectively. The maximum values of compressive strength and elastic modulus of the prepared scaffold were found to be about 1.5 MPa and 167 MPa, respectively, which were achieved after sintering at 1,000 °C for 4 h. Transmission electron microscopy analysis showed that the particle sizes are smaller than 80 nm. In vitro test showed good bioactivity of the prepared scaffold. The mentioned properties could make the hydroxyapatite scaffold a good candidate for tissue engineering applications, especially applications that did not need to stand any loading.
引用
收藏
页码:642 / 650
页数:8
相关论文
共 105 条
[1]  
Le Huec JC(1995)Influence of porosity on the mechanical resistance of hydroxyapatite under compressive stress Biomater 16 113-118
[2]  
Schaeverbeke T(1998)Macroporous biphasic calcium phosphate ceramics: influence of macropore diameter and macroporosity percentage on bone ingrowth Biomater 19 133-139
[3]  
Clement D(2005)Bone tissue engineering with porous hydroxyapatite ceramics J Artif Organs 8 131-136
[4]  
Faber J(1994)Bone and cartilage reconstruction with tissue engineering approaches Otolaryngol Clin North Am 27 263-276
[5]  
Le Rebeller A(1999)An overview of tissue engineered bone Clin Orthop 367 375-381
[6]  
Gauthier O(1997)Bone morphogenetic protein promotes vascularization and osteoinduction in preformed hydroxyapatite in the rabbit Ann Plastic Surg 39 258-268
[7]  
Bouler J(1998)Bone source hydroxyapatite cement: a novel biomaterial for craniofacial skeletal tissue engineering and reconstruction J Biomed Mater 43 428-432
[8]  
Aguado E(1994)New challenges in biomaterials Science 263 1715-1720
[9]  
Pilet P(2000)Autologous bone marrow stromal cells loaded onto porous hydroxyapatite ceramic accelerate bone repair in critical-size defects of sheep long bones J Biomed Mater 49 328-337
[10]  
Daculsi G(2002)Experimental study on stimulation of guided bone regeneration by autogenous bone marrow Chinese J Repar Reconst Surg 16 112-113