Cryogel-PCL combination scaffolds for bone tissue repair

被引:0
|
作者
Jonas Van Rie
Heidi Declercq
Jasper Van Hoorick
Manuel Dierick
Luc Van Hoorebeke
Ria Cornelissen
Hugo Thienpont
Peter Dubruel
Sandra Van Vlierberghe
机构
[1] Ghent University,Polymer Chemistry & Biomaterials Group
[2] Ghent University,Department of Basic Medical Sciences
[3] Ghent University,Department of Physics and Astronomy
[4] Vrije Universiteit Brussel,Brussels Photonics Team, Department of Applied Physics and Photonics
来源
Journal of Materials Science: Materials in Medicine | 2015年 / 26卷
关键词
Poly Lactic Acid; Cryogenic Treatment; Cellular Ingrowth; Entire Scaffold; Pore Size Gradient;
D O I
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中图分类号
学科分类号
摘要
The present work describes the development and the evaluation of cryogel-poly-ε-caprolactone combinatory scaffolds for bone tissue engineering. Gelatin was selected as cell-interactive biopolymer to enable the adhesion and the proliferation of mouse calvaria pre-osteoblasts while poly-ε-caprolactone was applied for its mechanical strength required for the envisaged application. In order to realize suitable osteoblast carriers, methacrylamide-functionalized gelatin was introduced into 3D printed poly-ε-caprolactone scaffolds created using the Bioplotter technology, followed by performing a cryogenic treatment which was concomitant with the redox-initiated, covalent crosslinking of the gelatin derivative (i.e. cryogelation). In a first part, the efficiency of the cryogelation process was determined using gel fraction experiments and by correlating the results with conventional hydrogel formation at room temperature. Next, the optimal cryogelation parameters were fed into the combinatory approach and the scaffolds developed were characterized for their structural and mechanical properties using scanning electron microscopy, micro-computed tomography and compression tests respectively. In a final part, in vitro biocompatibility assays indicated a good colonization of the pre-osteoblasts and the attachment of viable cells onto the cryogenic network. However, the results also show that the cellular infiltration throughout the entire scaffold is suboptimal, which implies that the scaffold design should be optimized by reducing the cryogel density.
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