Novel biomimetic hydroxyapatite/alginate nanocomposite fibrous scaffolds for bone tissue regeneration

被引:80
作者
Chae, Taesik [1 ]
Yang, Heejae [1 ]
Leung, Victor [1 ]
Ko, Frank [1 ]
Troczynski, Tom [1 ]
机构
[1] Univ British Columbia, Dept Mat Engn, Vancouver, BC V6T 1Z4, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
COMPOSITE SCAFFOLDS; CALCIUM-PHOSPHATE; CELL-SHAPE; SODIUM ALGINATE; IN-VITRO; DIFFERENTIATION; ATTACHMENT; PEPTIDES; DELIVERY; VIVO;
D O I
10.1007/s10856-013-4957-7
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Hydroxyapatite/alginate nanocomposite fibrous scaffolds were fabricated via electrospinning and a novel in situ synthesis of hydroxyapatite (HAp) that mimics mineralized collagen fibrils in bone tissue. Poorly crystalline HAp nanocrystals, as confirmed by X-ray diffractometer peak approximately at 2 theta = 32A degrees and Fourier transform infrared spectroscopy spectrum with double split bands of PO4(v (4)) at 564 and 602 cm(-1), were induced to nucleate and grow at the [-COO-]-Ca2+-[-COO-] linkage sites on electrospun alginate nanofibers impregnated with PO4 (3-) ions. This novel process resulted in a uniform deposition of HAp nanocrystals on the nanofibers, overcoming the severe agglomeration of HAp nanoparticles processed by the conventional mechanical blending/electrospinning method. Preliminary in vitro cell study showed that rat calvarial osteoblasts attached more stably on the surface of the HAp/alginate scaffolds than on the pure alginate scaffold. In general, the osteoblasts were stretched and elongated into a spindle-shape on the HAp/alginate scaffolds, whereas the cells had a round-shaped morphology on the alginate scaffold. The unique nanofibrous topography combined with the hybridization of HAp and alginate can be advantageous in bone tissue regenerative medicine applications.
引用
收藏
页码:1885 / 1894
页数:10
相关论文
共 42 条
[1]   Cell-interactive alginate hydrogels for bone tissue engineering [J].
Alsberg, E ;
Anderson, KW ;
Albeiruti, A ;
Franceschi, RT ;
Mooney, DJ .
JOURNAL OF DENTAL RESEARCH, 2001, 80 (11) :2025-2029
[2]   Osteoblast adhesion on biomaterials [J].
Anselme, K .
BIOMATERIALS, 2000, 21 (07) :667-681
[3]   Nanofiber technology: Designing the next generation of tissue engineering scaffolds [J].
Barnes, Catherine P. ;
Sell, Scott A. ;
Boland, Eugene D. ;
Simpson, David G. ;
Bowlin, Gary L. .
ADVANCED DRUG DELIVERY REVIEWS, 2007, 59 (14) :1413-1433
[4]   Preparation of hydroxyapatite-gelatin nanocomposite [J].
Chang, MC ;
Ko, CC ;
Douglas, WH .
BIOMATERIALS, 2003, 24 (17) :2853-2862
[5]   Effects of hydroxylapatite coating crystallinity on biosolubility, cell attachment efficiency and proliferation in vitro [J].
Chou, L ;
Marek, B ;
Wagner, WR .
BIOMATERIALS, 1999, 20 (10) :977-985
[6]  
CHOU LS, 1995, J CELL SCI, V108, P1563
[7]   Characterization of an alginate-based drug delivery system for neurological applications [J].
Ciofani, Gianni ;
Raffa, Vittoria ;
Pizzorusso, Tommaso ;
Menciassi, Arianna ;
Dario, Paolo .
MEDICAL ENGINEERING & PHYSICS, 2008, 30 (07) :848-855
[8]   Bone bonding at natural and biomaterial surfaces [J].
Davies, John E. .
BIOMATERIALS, 2007, 28 (34) :5058-5067
[9]   ROLE OF CELL-SHAPE IN GROWTH-CONTROL [J].
FOLKMAN, J ;
MOSCONA, A .
NATURE, 1978, 273 (5661) :345-349
[10]   Synthesis of chitosan/hydroxyapatite membranes coated with hydroxycarbonate apatite for guided tissue regeneration purposes [J].
Fraga, Alexandre Felix ;
de Almeida Filho, Edson ;
da Silva Rigo, Eliana Cristina ;
Boschi, Anselmo Ortega .
APPLIED SURFACE SCIENCE, 2011, 257 (09) :3888-3892