Characterization of compressive deformation behavior of multi-layer porous composite materials for articular tissue engineering

被引:0
作者
Sunghyen Hwang
Mitsugu Todo
机构
[1] Kyushu University,Interdisciplinary Graduate School of Engineering Sciences
[2] Kyushu University,Research Institute for Applied Mechanics
来源
Journal of Mechanical Science and Technology | 2012年 / 26卷
关键词
Multi-layer scaffold; Porous; PLLA; PCL; Hydroxyapatite (HAp);
D O I
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中图分类号
学科分类号
摘要
Regeneration of articular layered tissues consisting of cartilage and cancellous bone has been a critical issue in orthopedics. Tissue engineering technology for such large-scale damaged layered tissue may be developed by using layered scaffold with stem cells. In this study, therefore, a novel multi-layer scaffold consisting of a porous poly (ɛ-caprolactone) (PCL) layer for cartilage regeneration and a porous composite layer of poly (L-lactic acid) (PLLA) and hydroxyapatite (HAp) for bone regeneration was developed. The microstructure of the scaffold was characterized by a field emission scanning electron microscope (FE-SEM). Compression tests were also performed to understand the stress-strain behavior. FE-SEM observation clearly showed that an interlayer exists between the PCL and the composite layers. The compressive stress-strain relation is characterized by a stepwise behavior including the first and the second steps. The first modulus corresponding to the first step is mainly related to the deformation of the PCL layer; on the other hand, the second modulus is related to both solidified PCL layer and the composite layer and increases with increase of HAp content of the composite layer. It is also found that the classical mechanics theory and three-dimensional finite element model can predict the first modulus reasonably well.
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页码:1999 / 2004
页数:5
相关论文
共 119 条
[1]  
Frenkel S. T.(2004)Scaffolds for artilcular cartilage repair Annals of Biomedical Engineering 32 26-34
[2]  
Di Cesare P. E.(2009)A biomimetic three-dimensional woven composite scaffold for functional tissue engineering of cartilage Mesenchymal stem cell-based therapy for cartilage reapir: a review, Knee Surgery, Sports Traumatology, Arthroscopy 17 1289-1297
[3]  
Koga H.(2007)Design of a multiphase osteochondral scaffold III: Fabrication of layered scaffold with continuous interfaces Nature materials 6 162-167
[4]  
Engebretsen L.(2010)Polycaprolactone/hydroxyapatite composite scaffolds: Preparation, characterization, and in vitro and in vivo biological responses of human primary bone cells Journal of Biomedical Materials Research Part A 92A 1078-1093
[5]  
Brinchmann J. E.(2010)Review: Tissue engineering for regeneration of articular cartilage Journal of Biomedical Materials Research Part A 94A 241-251
[6]  
Muneta T.(2000)Mechanical properties of sintered hydroxyapatite for prosthetic application Biomaterials 21 431-440
[7]  
Sekiya I.(1981)Processing behavior of hydroxyapatite powder with contrasting morphology Journal of Materials Science 16 113-116
[8]  
Moutos F. T.(1994)Polymer-hydroxyapatite composites for biodegradable bone filler Journal Materials Science: Materials in Medicine 5 516-521
[9]  
Freed L. E.(1986)Analysis of a biodegradable composite for bone healing Biomaterials 7 183-187
[10]  
Guilak F.(1996)Long-term study of high-strength hydroxyapatite/poly(L-lactide) composite rods for the internal fixation of bone fractures: A 2–4-year follow-up study in rabbits Journal of biomedical Materials Research A 32 419-424