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An enamel-inspired bioactive material with multiscale structure and antibacterial adhesion property
- Source :
- Bioactive Materials, Bioactive Materials, Vol 7, Iss, Pp 491-503 (2022)
- Publication Year :
- 2021
- Publisher :
- KeAi Publishing, 2021.
-
Abstract
- Conventional dental materials lack of the hierarchical architecture of enamel that exhibits excellent intrinsic-extrinsic mechanical properties. Moreover, restorative failures frequently occur due to physical and chemical mismatch between artificial materials and native dental hard tissue followed by recurrent caries which is caused by sugar-fermenting, acidogenic bacteria invasion of the defective cite. In order to resolve the limitations of the conventional dental materials, the aim of this study was to establish a non-cell-based biomimetic strategy to fabricate a novel bioactive material with enamel-like structure and antibacterial adhesion property. The evaporation-based, bottom-up and self-assembly method with layer-by-layer technique were used to form a large-area fluorapatite crystal layer containing antibacterial components. The multilayered structure was constructed by hydrothermal growth of the fluorapatite crystal layer and highly conformal adsorption to the crystal surface of a polyelectrolyte matrix film. Characterization and mechanical assessment demonstrated that the synthesized bioactive material resembled the native enamel in chemical components, mechanical properties and crystallographic structure. Antibacterial and cytocompatibility evaluation demonstrated that this material had the antibacterial adhesion property and biocompatibility. In combination with the molecular dynamics simulations to reveal the effects of variables on the crystallization mechanism, this study brings new prospects for the synthesis of enamel-inspired materials.<br />Graphical abstract Image 1<br />Highlights • A simple chemistry approach was offered to synthesize a enamel-like material without using cells or proteins. • A macroscopic bioactive material resembled the native enamel with the antibacterial adhension propery was fabricated. • Combining experiments and molecular dynamics simulations revealed effects of variables on the crystallization mechanism.
- Subjects :
- Materials science
Biocompatibility
QH301-705.5
0206 medical engineering
Biomedical Engineering
Bioactive material
02 engineering and technology
Article
law.invention
Biomaterials
Crystal
Adsorption
law
Enamel-inspired material
Enamel-like structure
Crystallization
Biology (General)
Materials of engineering and construction. Mechanics of materials
Graphene oxide
Enamel paint
Fluorapatite
Adhesion
021001 nanoscience & nanotechnology
020601 biomedical engineering
Characterization (materials science)
Biomimetic mineralization
Chemical engineering
visual_art
visual_art.visual_art_medium
TA401-492
0210 nano-technology
Biotechnology
Subjects
Details
- Language :
- English
- ISSN :
- 2452199X
- Volume :
- 7
- Database :
- OpenAIRE
- Journal :
- Bioactive Materials
- Accession number :
- edsair.doi.dedup.....17e97b9aea8756fb25ca78a6331124db