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Fabrication of MgCl2/PCL Biocomposite Scaffolds Using 3D Bio-Plotting System to Regenerate Long Bone Critical-Sized Defects

Authors
Xin, Yuan-ZhuQuan, MeilingYang, Seok-JoKim, Wan DooPark, Su A.Yu, JunjieKim, ByunggwanJung, Cho-RokLee, JunHeeKim, Young-Yul
Issue Date
Aug-2018
Publisher
AMER SCIENTIFIC PUBLISHERS
Keywords
Bone Defects; Biocomposite Scaffold; Tissue Engineering; 3D Bio-Plotting System; Regeneration
Citation
JOURNAL OF BIOMATERIALS AND TISSUE ENGINEERING, v.8, no.8, pp 1076 - 1083
Pages
8
Journal Title
JOURNAL OF BIOMATERIALS AND TISSUE ENGINEERING
Volume
8
Number
8
Start Page
1076
End Page
1083
URI
https://scholarworks.bwise.kr/cau/handle/2019.sw.cau/45221
DOI
10.1166/jbt.2018.1864
ISSN
2157-9083
2157-9091
Abstract
The regeneration of critical-sized bone defects is one of the key obstacles in bone tissue engineering. To address this issue, several methods have been proposed, including autologous bone grafts. However, each of these methods has its limitations. In this study, we fabricated a MgCl2/poly epsilon-caprolactone biocomposite scaffold for the regeneration of critical-sized bone defects. Bone regeneration tests were performed using 18 male New Zealand white rabbits aged >4 months (>3.5 kg). Bone defects were made on the radius of both front feet (defect length =10 mm) and fixed using a K-wire. The defect on the left radius was used as a control, whereas the right radius was filled with pure poly epsilon-caprolactone or MgCl2/poly epsilon-caprolactone composite scaffolds (n = 6 each). Our results demonstrated that bone regeneration rates of MgCl2/poly epsilon-caprolactone composite scaffolds were faster than those of the negative and positive controls.
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