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Cited 39 time in webofscience Cited 44 time in scopus
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3D-Printed Poly(epsilon-Caprolactone)/Hydroxyapatite Scaffolds Modified with Alkaline Hydrolysis Enhance Osteogenesis In Vitroopen access

Authors
Park, SangbaeKim, Jae EunHan, JinsubJeong, SeungLim, Jae WoonLee, Myung ChulSon, HyunmokKim, Hong BaeChoung, Yun-HoonSeonwoo, HoonChung, Jong HoonJang, Kyoung-Je
Issue Date
Jan-2021
Publisher
MDPI
Keywords
surface modification; alkaline hydrolysis; oxygen plasma; 3D printing; hydroxyapatite; 3D scaffold
Citation
POLYMERS, v.13, no.2, pp 1 - 11
Pages
11
Indexed
SCIE
SCOPUS
Journal Title
POLYMERS
Volume
13
Number
2
Start Page
1
End Page
11
URI
https://scholarworks.gnu.ac.kr/handle/sw.gnu/4324
DOI
10.3390/polym13020257
ISSN
2073-4360
2073-4360
Abstract
The 3D-printed bioactive ceramic incorporated Poly(epsilon-caprolactone) (PCL) scaffolds show great promise as synthetic bone graft substitutes. However, 3D-printed scaffolds still lack adequate surface properties for cells to be attached to them. In this study, we modified the surface characteristics of 3D-printed poly(epsilon-caprolactone)/hydroxyapatite scaffolds using O2 plasma and sodium hydroxide. The surface property of the alkaline hydrolyzed and O2 plasma-treated PCL/HA scaffolds were evaluated using field-emission scanning microscopy (FE-SEM), Alizarin Red S (ARS) staining, and water contact angle analysis, respectively. The in vitro behavior of the scaffolds was investigated using human dental pulp-derived stem cells (hDPSCs). Cell proliferation of hDPSCs on the scaffolds was evaluated via immunocytochemistry (ICC) and water-soluble tetrazolium salt (WST-1) assay. Osteogenic differentiation of hDPSCs on the scaffolds was further investigated using ARS staining and Western blot analysis. The result of this study shows that alkaline treatment is beneficial for exposing hydroxyapatite particles embedded in the scaffolds compared to O2 plasma treatment, which promotes cell proliferation and differentiation of hDPSCs.
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Jang, Kyung Je
농업생명과학대학 (생물산업기계공학과)
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