Issue 6, 2022, Issue in Progress

Tannic acid induces dentin biomineralization by crosslinking and surface modification

Abstract

It is currently known that crosslinking agents can effectively improve the mechanical properties of dentin by crosslinking type I collagen. However, few scholars have focused on the influence of crosslinking agents on the collagen-mineral interface after crosslinking. Analysis of the Fourier transform infrared spectroscopy (FTIR) results showed that hydrogen bonding occurs between the tannic acid (TA) molecule and the collagen. The crosslinking degree of TA to collagen reached a maximum 41.28 ± 1.52. This study used TA crosslinked collagen fibers to successfully induce dentin biomineralization, and the complete remineralization was achieved within 4 days. The crosslinking effect of TA can improve the mechanical properties and anti-enzyme properties of dentin. The elastic modulus (mean and standard deviation) and hardness values of the remineralized dentin pretreated with TA reached 19.1 ± 1.12 GPa and 0.68 ± 0.06 GPa, respectively, which were close to those of healthy dentin measurements, but significantly higher than those of dentin without crosslinking (8.91 ± 1.82 GPa and 0.16 ± 0.01 GPa). The interface energy between the surface of collagen fibers and minerals decreased from 10.59 mJ m−2 to 4.19 mJ m−2 with the influence of TA. The current work reveals the importance of tannic acid crosslinking for dentin remineralization while providing profound insights into the interfacial control of biomolecules in collagen mineralization.

Graphical abstract: Tannic acid induces dentin biomineralization by crosslinking and surface modification

Supplementary files

Article information

Article type
Paper
Submitted
26 Oct 2021
Accepted
16 Jan 2022
First published
26 Jan 2022
This article is Open Access
Creative Commons BY-NC license

RSC Adv., 2022,12, 3454-3464

Tannic acid induces dentin biomineralization by crosslinking and surface modification

W. Kong, Q. Du, Y. Qu, C. Shao, C. Chen, J. Sun, C. Mao, R. Tang and X. Gu, RSC Adv., 2022, 12, 3454 DOI: 10.1039/D1RA07887A

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