Biocorrosion and osteoconductivity of PCL/nHAp composite porous film-based coating of magnesium alloy

被引:65
作者
Abdal-hay, Abdalla [1 ,2 ]
Amna, Touseef [3 ]
Lim, Jae Kyoo [2 ]
机构
[1] Chonbuk Natl Univ, Coll Engn, Dept Bionano Syst Engn, Jeonju 561756, South Korea
[2] Chonbuk Natl Univ, Adv Wind Power Syst Res Inst, Dept Mech Design Engn, Jeonju 561756, South Korea
[3] Chonbuk Natl Univ, Dept Anim Resources & Biotechnol, Jeonju 561756, South Korea
基金
新加坡国家研究基金会;
关键词
Hydroxyapatite; PCL; Biocorrosion; Dip-coating; Magnesium alloys; Tissue engineering scaffold; IN-VITRO DEGRADATION; MECHANICAL-PROPERTIES; HYDROXYAPATITE; FABRICATION; DEGRADABILITY; NANOFIBERS; SCAFFOLDS; CHEMISTRY; TITANIUM; BEHAVIOR;
D O I
10.1016/j.solidstatesciences.2012.11.017
中图分类号
O61 [无机化学];
学科分类号
070301 [无机化学];
摘要
The present study was aimed at designing a novel porous hydroxyapatite/poly(epsilon-caprolactone) (nHAp/PCL) hybrid nanocomposite matrix on a magnesium substrate with high and low porosity. The coated samples were prepared using a dip-coating technique in order to enhance the bioactivity and biocompatibility of the implant and to control the degradation rate of magnesium alloys. The mechanical and biocompatible properties of the coated and uncoated samples were investigated and an in vitro test for corrosion was conducted by electrochemical polarization and measurement of weight loss. The corrosion test results demonstrated that both the pristine PCL and nHAp/PCL composites showed good corrosion resistance in SBF. However, during the extended incubation time, the composite coatings exhibited more uniform and superior resistance to corrosion attack than pristine PCL, and were able to survive severe localized corrosion in physiological solution. Furthermore, the bioactivity of the composite film was determined by the rapid formation of uniform CaP nanoparticles on the sample surfaces during immersion in SBF. The mechanical integrity of the composite coatings displayed better performance (similar to 34% higher) than the uncoated samples. Finally, our results suggest that the nHAp incorporated with novel PCL composite membranes on magnesium substrates may serve as an excellent 3-D platform for cell attachment, proliferation, migration, and growth in bone tissue. This novel as-synthesized nHAp/PCL membrane on magnesium implants could be used as a potential material for orthopedic applications in the future. (C) 2012 Elsevier Masson SAS. All rights reserved.
引用
收藏
页码:131 / 140
页数:10
相关论文
共 40 条
[1]
Fabrication of chitosan/magnesium phosphate composite coating and the in vitro degradation properties of coated magnesium alloy [J].
Bai, Kuifeng ;
Zhang, Yi ;
Fu, Zhenya ;
Zhang, Caili ;
Cui, Xinzhan ;
Meng, Erchao ;
Guan, Shaokang ;
Hu, Junhua .
MATERIALS LETTERS, 2012, 73 :59-61
[2]
Characterization and corrosion properties of Ti-O/HA composite coatings on Mg-Zn alloy [J].
Chen, Shuai ;
Guan, Shaokang ;
Hou, Shusen ;
Wang, Liguo ;
Zhu, Shijie ;
Wang, Jun ;
Li, Wen .
SURFACE AND INTERFACE ANALYSIS, 2011, 43 (13) :1575-1580
[3]
Study on biodegradability of PCL/SAN blend using composting method [J].
Choi, EJ ;
Park, JK .
POLYMER DEGRADATION AND STABILITY, 1996, 52 (03) :321-326
[4]
Quantitative assessment of the response of osteoblast- and macrophage-like cells to particles of Ni-free Fe-base alloys [J].
Ciapetti, G ;
González-Carrasco, JL ;
Savarino, L ;
Montealegre, MA ;
Pagani, S ;
Baldini, N .
BIOMATERIALS, 2005, 26 (08) :849-859
[5]
Corrosion protection of magnesium alloy AZ31 sheets by spin coating process with poly(ether imide) [PEI] [J].
Conceicao, Thiago F. ;
Scharnagl, N. ;
Blawert, C. ;
Dietzel, W. ;
Kainer, K. U. .
CORROSION SCIENCE, 2010, 52 (06) :2066-2079
[6]
Structural and catalytic chemistry of magnesium-dependent enzymes [J].
Cowan, JA .
BIOMETALS, 2002, 15 (03) :225-235
[7]
Degradability of radiation crosslinked PCL in the supercooled state under various environments [J].
Darwis, D ;
Mitomo, H ;
Yoshii, F .
POLYMER DEGRADATION AND STABILITY, 1999, 65 (02) :279-285
[8]
Preparation and properties of nano-hydroxyapatite/PCL-PEG-PCL composite membranes for tissue engineering applications [J].
Fu, Shao Zhi ;
Wang, Xiu Hong ;
Guo, Gang ;
Shi, Shuai ;
Fan, Min ;
Liang, Hang ;
Luo, Feng ;
Qian, Zhi Yong .
JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART B-APPLIED BIOMATERIALS, 2011, 97B (01) :74-83
[9]
Surface modification of an Mg-1Ca alloy to slow down its biocorrosion by chitosan [J].
Gu, X. N. ;
Zheng, Y. F. ;
Lan, Q. X. ;
Cheng, Y. ;
Zhang, Z. X. ;
Xi, T. F. ;
Zhang, D. Y. .
BIOMEDICAL MATERIALS, 2009, 4 (04)
[10]
A composite of hydroxyapatite with electrospun biodegradable nanofibers as a tissue engineering material [J].
Ito, Y ;
Hasuda, H ;
Kamitakahara, M ;
Ohtsuki, C ;
Tanihara, M ;
Kang, IK ;
Kwon, OH .
JOURNAL OF BIOSCIENCE AND BIOENGINEERING, 2005, 100 (01) :43-49