A Direct Electric Field-Aided Biomimetic Mineralization System for Inducing the Remineralization of Dentin Collagen Matrix

This in vitro study aimed to accelerate the remineralization of a completely demineralized dentine collagen block in order to regenerate the dentinal microstructure of calcified collagen fibrils by a novel electric field-aided biomimetic mineralization system in the absence of non-collagenous protei...

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Main Authors: Xiao-Ting Wu, May Lei Mei, Quan-Li Li, Chris Ying Cao, Jia-Long Chen, Rong Xia, Zhi-Hong Zhang, Chun Hung Chu
Format: Article
Language:English
Published: MDPI AG 2015-11-01
Series:Materials
Subjects:
Online Access:http://www.mdpi.com/1996-1944/8/11/5433
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spelling doaj-93dd57984c0d4df99d5abd7ac453bb9d2020-11-24T22:26:32ZengMDPI AGMaterials1996-19442015-11-018117889789910.3390/ma8115433ma8115433A Direct Electric Field-Aided Biomimetic Mineralization System for Inducing the Remineralization of Dentin Collagen MatrixXiao-Ting Wu0May Lei Mei1Quan-Li Li2Chris Ying Cao3Jia-Long Chen4Rong Xia5Zhi-Hong Zhang6Chun Hung Chu7College & Hospital of Stomatology, Anhui Medical University, Key Laboratory of Oral Diseases Research of Anhui Province, Hefei 230032, ChinaFaculty of Dentistry, The University of Hong Kong, Hong Kong 999077, ChinaCollege & Hospital of Stomatology, Anhui Medical University, Key Laboratory of Oral Diseases Research of Anhui Province, Hefei 230032, ChinaFaculty of Dentistry, The University of Hong Kong, Hong Kong 999077, ChinaCollege & Hospital of Stomatology, Anhui Medical University, Key Laboratory of Oral Diseases Research of Anhui Province, Hefei 230032, ChinaDepartment of Stomatology, The Second Hospital Affiliated to Anhui Medical University, Hefei 230601, ChinaDepartment of Stomatology, The Hospital of Anhui Province, Hefei 230001, ChinaFaculty of Dentistry, The University of Hong Kong, Hong Kong 999077, ChinaThis in vitro study aimed to accelerate the remineralization of a completely demineralized dentine collagen block in order to regenerate the dentinal microstructure of calcified collagen fibrils by a novel electric field-aided biomimetic mineralization system in the absence of non-collagenous proteins. Completely demineralized human dentine slices were prepared using ethylene diamine tetraacetic acid (EDTA) and treated with guanidine hydrochloride to extract the bound non-collagenous proteins. The completely demineralized dentine collagen blocks were then remineralized in a calcium chloride agarose hydrogel and a sodium hydrogen phosphate and fluoride agarose hydrogel. This process was accelerated by subjecting the hydrogels to electrophoresis at 20 mA for 4 and 12 h. X-ray diffraction (XRD), scanning electron microscopy (SEM), energy dispersive X-ray spectroscopy (EDX), and transmission electron microscopy (TEM) were used to evaluate the resultant calcification of the dentin collagen matrix. SEM indicated that mineral particles were precipitated on the intertubular dentin collagen matrix; these densely packed crystals mimicked the structure of the original mineralized dentin. However, the dentinal tubules were not occluded by the mineral crystals. XRD and EDX both confirmed that the deposited crystals were fluorinated hydroxyapatite. TEM revealed the existence of intrafibrillar and interfibrillar mineralization of the collagen fibrils. A novel electric field-aided biomimetic mineralization system was successfully developed to remineralize a completely demineralized dentine collagen matrix in the absence of non-collagenous proteins. This study developed an accelerated biomimetic mineralization system which can be a potential protocol for the biomineralization of dentinal defects.http://www.mdpi.com/1996-1944/8/11/5433dentindemineralizationcollagen matrixbiomimetic mineralizationelectric field
collection DOAJ
language English
format Article
sources DOAJ
author Xiao-Ting Wu
May Lei Mei
Quan-Li Li
Chris Ying Cao
Jia-Long Chen
Rong Xia
Zhi-Hong Zhang
Chun Hung Chu
spellingShingle Xiao-Ting Wu
May Lei Mei
Quan-Li Li
Chris Ying Cao
Jia-Long Chen
Rong Xia
Zhi-Hong Zhang
Chun Hung Chu
A Direct Electric Field-Aided Biomimetic Mineralization System for Inducing the Remineralization of Dentin Collagen Matrix
Materials
dentin
demineralization
collagen matrix
biomimetic mineralization
electric field
author_facet Xiao-Ting Wu
May Lei Mei
Quan-Li Li
Chris Ying Cao
Jia-Long Chen
Rong Xia
Zhi-Hong Zhang
Chun Hung Chu
author_sort Xiao-Ting Wu
title A Direct Electric Field-Aided Biomimetic Mineralization System for Inducing the Remineralization of Dentin Collagen Matrix
title_short A Direct Electric Field-Aided Biomimetic Mineralization System for Inducing the Remineralization of Dentin Collagen Matrix
title_full A Direct Electric Field-Aided Biomimetic Mineralization System for Inducing the Remineralization of Dentin Collagen Matrix
title_fullStr A Direct Electric Field-Aided Biomimetic Mineralization System for Inducing the Remineralization of Dentin Collagen Matrix
title_full_unstemmed A Direct Electric Field-Aided Biomimetic Mineralization System for Inducing the Remineralization of Dentin Collagen Matrix
title_sort direct electric field-aided biomimetic mineralization system for inducing the remineralization of dentin collagen matrix
publisher MDPI AG
series Materials
issn 1996-1944
publishDate 2015-11-01
description This in vitro study aimed to accelerate the remineralization of a completely demineralized dentine collagen block in order to regenerate the dentinal microstructure of calcified collagen fibrils by a novel electric field-aided biomimetic mineralization system in the absence of non-collagenous proteins. Completely demineralized human dentine slices were prepared using ethylene diamine tetraacetic acid (EDTA) and treated with guanidine hydrochloride to extract the bound non-collagenous proteins. The completely demineralized dentine collagen blocks were then remineralized in a calcium chloride agarose hydrogel and a sodium hydrogen phosphate and fluoride agarose hydrogel. This process was accelerated by subjecting the hydrogels to electrophoresis at 20 mA for 4 and 12 h. X-ray diffraction (XRD), scanning electron microscopy (SEM), energy dispersive X-ray spectroscopy (EDX), and transmission electron microscopy (TEM) were used to evaluate the resultant calcification of the dentin collagen matrix. SEM indicated that mineral particles were precipitated on the intertubular dentin collagen matrix; these densely packed crystals mimicked the structure of the original mineralized dentin. However, the dentinal tubules were not occluded by the mineral crystals. XRD and EDX both confirmed that the deposited crystals were fluorinated hydroxyapatite. TEM revealed the existence of intrafibrillar and interfibrillar mineralization of the collagen fibrils. A novel electric field-aided biomimetic mineralization system was successfully developed to remineralize a completely demineralized dentine collagen matrix in the absence of non-collagenous proteins. This study developed an accelerated biomimetic mineralization system which can be a potential protocol for the biomineralization of dentinal defects.
topic dentin
demineralization
collagen matrix
biomimetic mineralization
electric field
url http://www.mdpi.com/1996-1944/8/11/5433
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