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  4. Biomimetic synthesis of nanocrystalline hydroxyapatite composites: Therapeutic potential and effects on bone regeneration
 
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Biomimetic synthesis of nanocrystalline hydroxyapatite composites: Therapeutic potential and effects on bone regeneration

Journal
International Journal of Molecular Sciences
Journal Volume
20
Journal Issue
23
Date Issued
2019
Author(s)
Fang, C.-H.
Lin, Y.-W.
Lin, Feng-Huei  
JUI-SHENG SUN  
HUNG-YING LIN  
YUAN-HUNG CHAO  
JENNY ZWEI-CHIENG CHANG  
DOI
10.3390/ijms20236002
URI
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85075754603&doi=10.3390%2fijms20236002&partnerID=40&md5=fa5e5fcb86679ce9f785997daf816ccf
https://scholars.lib.ntu.edu.tw/handle/123456789/455288
Abstract
The development of a novel alloplastic graft with both osteoinductive and osteoconductive properties is still necessary. In this study, we tried to synthesize a biomimetic hydroxyapatite microspheres (gelatin/nano-hydroxyapatite microsphere embedded with stromal cell-derived factor-1: GHM-S) from nanocrystalline hydroxyapatites and to investigate their therapeutic potential and effects on bone regeneration. In this study, hydroxyapatite was synthesized by co-precipitation of calcium hydroxide and orthophosphoric acid to gelatin solution. The microbial transglutaminase was used as the agent to crosslink the microspheres. The morphology, characterization, and thermal gravimetric analysis of microspheres were performed. SDF-1 release profile and in vitro biocompatibility and relative osteogenic gene expression were analyzed, followed by in vivo micro-computed tomography study and histological analysis. The synthesized hydroxyapatite was found to be similar to hydroxyapatite of natural bone tissue. The stromal cell-derived factor-1 was embedded into gelatin/hydroxyapatite microsphere to form the biomimetic hydroxyapatite microsphere. The stromal cell-derived factor-1 protein could be released in a controlled manner from the biomimetic hydroxyapatite microsphere and form a concentration gradient in the culture environment to attract the migration of stem cells. Gene expression and protein expression indicated that stem cells could differentiate or develop into pre-osteoblasts. The effect of bone formation by the biomimetic hydroxyapatite microsphere was assessed by an in vivo rats' alveolar bone defects model and confirmed by micro-CT imaging and histological examination. Our findings demonstrated that the biomimetic hydroxyapatite microsphere can enhance the alveolar bone regeneration. This design has potential be applied to other bone defects.
SDGs

[SDGs]SDG3

Publisher
MDPI AG
Type
journal article

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