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Triple Function of Amelogenin Peptide-Chitosan Hydrogel for Dentin Repair

Overview
Journal J Dent Res
Specialty Dentistry
Date 2023 Oct 26
PMID 37880947
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Abstract

Biomimetic strategies like peptide-guided collagen mineralization promise to enhance the effectiveness of dentin remineralization. We recently reported that rationally designed amelogenin-derived peptides P26 and P32 promoted apatite nucleation, mineralized collagen, and showed potential in enamel regrowth and dentin remineralization. To facilitate the clinical application of amelogenin-derived peptides and to uncover their effectiveness in repairing dentin, we have now implemented a chitosan (CS) hydrogel for peptide delivery and have investigated the effects of P26-CS and P32-CS hydrogels on dentin remineralization using 2 in situ experimental models that exhibited different levels of demineralization. The efficacy of the peptide-CS hydrogels in dentin repair was evaluated by characterizing the microstructure, mineral density, mineral phase, and nanomechanical properties of the remineralized samples. The new strategy of atomic force microscopy PeakForce quantitative nanomechanical mapping was used for direct visualization and nanomechanical analysis of repaired dentin lesions across the lesion depth. Results from the 2 models indicated the potential triple functions of peptide-CS hydrogels for dentin repair: building a highly organized protective mineralized layer on dentin, occluding dentinal tubules by peptide-guided in situ mineralization, and promoting biomimetic dentinal collagen remineralization. Importantly, peptides released from the CS hydrogel could diffuse into the dentinal matrix and penetrate the dentinal tubules, leading to both surface and subsurface remineralization and tubule occlusion. Given our previous findings on peptide-CS hydrogels' potential for remineralizing enamel, we see further promise for hydrogels to treat tooth defects involving multiple hard tissues, as in the case of noncarious cervical lesions.

Citing Articles

Treating White Spot Lesions and Non-Carious Cervical Lesions with Amelogenin Peptide-Based Hydrogel.

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PMID: 39997143 PMC: 11853660. DOI: 10.3390/biomimetics10020120.


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References
1.
Dowell P, Addy M . Dentine hypersensitivity--a review. Aetiology, symptoms and theories of pain production. J Clin Periodontol. 1983; 10(4):341-50. DOI: 10.1111/j.1600-051x.1983.tb01283.x. View

2.
Liang K, Xiao S, Shi W, Li J, Yang X, Gao Y . 8DSS-promoted remineralization of demineralized dentin in vitro. J Mater Chem B. 2020; 3(33):6763-6772. DOI: 10.1039/c5tb00764j. View

3.
Niu L, Zhang W, Pashley D, Breschi L, Mao J, Chen J . Biomimetic remineralization of dentin. Dent Mater. 2013; 30(1):77-96. PMC: 3867526. DOI: 10.1016/j.dental.2013.07.013. View

4.
Cao Y, Liu W, Ning T, Mei M, Li Q, Lo E . A novel oligopeptide simulating dentine matrix protein 1 for biomimetic mineralization of dentine. Clin Oral Investig. 2013; 18(3):873-81. DOI: 10.1007/s00784-013-1035-y. View

5.
Bartlett D, Shah P . A critical review of non-carious cervical (wear) lesions and the role of abfraction, erosion, and abrasion. J Dent Res. 2006; 85(4):306-12. DOI: 10.1177/154405910608500405. View