Electrospinning biomedical nanocomposite fibers of hydroxyapaite/poly(lactic acid) for bone regeneration

被引:287
作者
Kim, Hae-Won [1 ]
Lee, Hae-Hyoung
Knowles, J. C.
机构
[1] Dankook Univ, Sch Dent, Dept Dent Biomat, Cheonan 330714, South Korea
[2] UCL, Eastman Dent Inst, Div Biomat & Tissue Engn, London WC1X 8LD, England
关键词
electrospun fiber; bioceramic/biopolymer; nanocomposite; surfactant; bone regeneration; tissue engineering;
D O I
10.1002/jbm.a.30866
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Development of fibrous matrices of bioceramic-biopolymer nanocomposite offers great potential in the field of bone regeneration and tissue engineering. However, in order to produce electrospun fibers with homogeneous structure, it is essential for the ceramic powder to be fine and to remain stable in suspension. Herein, we developed a novel method whereby the bioceramic hydroxyapatite (HA) was kept in suspension in biopolymer poly(lactic acid) (PLA). The strategy was to introduce a surfactant hydroxysteric acid (HSA) between the hydrophilic HA powder and the hydrophobic chloroform-dissolved PLA. The HA nanopowder was dispersed effectively in HSA and mixed homogeneously with PLA. Continuous and uniform fibers were generated successfully with diameters of similar to 1-2 mu m, and featured a well-developed nanocomposite structure of HA nanopowder-dispersed PLA. Initial cellular assays showed excellent cell attachment and proliferation and also enhanced expression of alkaline phosphatase at 7 days of culturing. The HA-PLA nanocomposite fibers may be potentially useful in tissue engineering applications, particularly as three-dimensional substrates for bone growth. (c) 2006 Wiley Periodicals, Inc.
引用
收藏
页码:643 / 649
页数:7
相关论文
共 27 条
[1]   COMPOSITES FOR BONE-REPLACEMENT [J].
BONFIELD, W .
JOURNAL OF BIOMEDICAL ENGINEERING, 1988, 10 (06) :522-526
[2]  
Brown P.W., 1994, Hydroxyapatite and Related Materials
[3]   Spinning continuous fibers for nanotechnology [J].
Dzenis, Y .
SCIENCE, 2004, 304 (5679) :1917-1919
[4]   Third-generation biomedical materials [J].
Hench, LL ;
Polak, JM .
SCIENCE, 2002, 295 (5557) :1014-+
[5]  
HENCH LL, 1991, J AM CERAM SOC, V74, P1485
[6]  
JOHNSON RE, 1987, ADV CERAM, V21, P323
[7]   Development of guided bone regeneration membrane composed of β-tricalcium phosphate and poly (L-lactide-co-glycolide-ε-caprolactone) composites [J].
Kikuchi, M ;
Koyama, Y ;
Yamada, T ;
Imamura, Y ;
Okada, T ;
Shirahama, N ;
Akita, K ;
Takakuda, K ;
Tanaka, J .
BIOMATERIALS, 2004, 25 (28) :5979-5986
[8]   Stimulation of osteoblast responses to biomimetic nanocomposites of gelatin-hydroxyapatite for tissue engineering scaffolds [J].
Kim, HW ;
Kim, HE ;
Salih, V .
BIOMATERIALS, 2005, 26 (25) :5221-5230
[9]   Nanoriber generation of gelatin-hydroxyapatite biomimetics for guided tissue regeneration [J].
Kim, HW ;
Song, JH ;
Kim, HE .
ADVANCED FUNCTIONAL MATERIALS, 2005, 15 (12) :1988-1994
[10]   Hydroxyapatite and gelatin composite foams processed via novel freeze-drying and crosslinking for use as temporary hard tissue scaffolds [J].
Kim, HW ;
Knowles, JC ;
Kim, HE .
JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2005, 72A (02) :136-145