In vitro biocompatibility of hydroxyapatite-reinforced polymeric composites manufactured by selective laser sintering

被引:47
作者
Zhang, Y. [1 ]
Hao, L. [2 ]
Savalani, M. M. [2 ]
Harris, R. A. [2 ]
Di Silvio, L. [3 ,4 ]
Tanner, K. E. [1 ]
机构
[1] Queen Mary Univ London, Dept Mat, London E1 4NS, England
[2] Loughborough Univ Technol, Wolfson Sch Mech & Mfg Engn, Rapid Mfg Res Grp, Loughborough LE11 3TU, Leics, England
[3] Kings Coll London, Biomat Biomimet & Biophoton Grp, London WC2R 2LS, England
[4] St Thomas Med & Dent Inst, London SE1 9RT, England
关键词
biocompatibility; composite; hydroxyapatite; in vitro; osteoblast cells; polyethylene; polyamide; selective laser sintering; HIGH-DENSITY POLYETHYLENE; SCAFFOLDS; BIOCOMPOSITE; FABRICATION; IMPLANTS; ADHESION; BEHAVIOR;
D O I
10.1002/jbm.a.32298
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
The selective laser sintering (SLS) technique was used to manufacture hydroxyapatite-reinforced polyethylene and polyamide composites as potential customized maxillofacial implants. In vitro tests were carried Out to assess cellular responses, in terms of cell attachment, morphology, proliferation, differentiation, and mineralized nodule formation, using primary human osteoblast cells. This study showed that the SLS composite processed was biocompatible, with no adverse effects observed on cell viability and metabolic activity, supporting a normal metabolism and growth pattern for osteoblasts. Positive von Kossa staining demonstrated the presence of bone-like mineral on the SLS materials. Higher hydroxyapatite content composites enhanced cell proliferation, increased alkaline phosphatase activity, and produced more osteocalcin. The present findings showed that SLS materials have good in vitro biocompatibility and hence demonstrated biologically the potential of SLS for medical applications. (C) 2008 Wiley Periodicals, Inc. J Biomed Mater Res 91A: 1018-1027, 2009
引用
收藏
页码:1018 / 1027
页数:10
相关论文
共 37 条
[1]   In vitro biocompatibility of a novel membrane of the composite poly(vinylidene-trifluoroethylene)/barium titanate [J].
Beloti, Marcio M. ;
de Oliveira, Paulo T. ;
Gimenes, Rossano ;
Zaghete, Maria A. ;
Bertolini, Marcio J. ;
Rosa, Adalberto L. .
JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2006, 79A (02) :282-288
[2]   Effect of surface modification of high-density polyethylene by direct current and radio frequency glow discharge on wetting and adhesion characteristics [J].
Bhowmik, S ;
Chaki, TK ;
Ray, S ;
Hoffman, F ;
Dorn, L .
METALLURGICAL AND MATERIALS TRANSACTIONS A-PHYSICAL METALLURGY AND MATERIALS SCIENCE, 2004, 35A (03) :865-877
[3]  
Bonfield W., 1984, Biomaterials and Biomechanics, P421
[4]  
BURRIDGE K, 1997, J CELL SCI, V8, P211
[5]   Development of tissue scaffolds using selective laser sintering of polyvinyl alcohol/hydroxyapatite biocomposite for craniofacial and joint defects [J].
Chua, CK ;
Leong, KF ;
Tan, KH ;
Wiria, FE ;
Cheah, CM .
JOURNAL OF MATERIALS SCIENCE-MATERIALS IN MEDICINE, 2004, 15 (10) :1113-1121
[6]   Increasing hydroxyapatite incorporation into poly(methylmethacrylate) cement increases osteoblast adhesion and response [J].
Dalby, MJ ;
Di Silvio, L ;
Harper, EJ ;
Bonfield, W .
BIOMATERIALS, 2002, 23 (02) :569-576
[7]   Osteoblast behaviour on HA/PE composite surfaces with different HA volumes [J].
Di Silvio, L ;
Dalby, MJ ;
Bonfield, W .
BIOMATERIALS, 2002, 23 (01) :101-107
[8]  
Di Silvio L., 2001, HUMAN CELL CULTURE, P221
[9]   Hearing results with the Dornhoffer ossicular replacement prostheses [J].
Dornhoffer, JL .
LARYNGOSCOPE, 1998, 108 (04) :531-536
[10]  
Downes R.N., 1991, Bioceramics, P239