Issue 24, 2024

Phosphorylation of collagen fibrils enhances intrafibrillar mineralization and dentin remineralization

Abstract

The hierarchical assembly of nanoapatite within a type I collagen matrix was achieved through biomimetic mineralization in vitro, cooperatively regulated by non-collagenous proteins and small biomolecules. Here, we demonstrated that IP6 could significantly promote intrafibrillar mineralization in two- and three-dimensional collagen models through binding to collagen fibrils via hydrogen bonds (the interaction energy ∼10.21 kJ mol−1), as confirmed by the FTIR spectra and isothermal experimental results. In addition, we find that IP6 associated with dental collagen fibrils can also enhance the remineralization of calcium-depleted dentin and restore its mechanical properties similar to the natural dentin within 4 days. The promoting effect is mainly due to the chemical modification of IP6, which alters the interfacial physicochemical properties of collagen fibrils, strengthening the interaction of calcium phosphate minerals and mineral ions with collagen fibrils. This strategy of interfacial regulation to accelerate the mineralization of collagen fibrils is essential for dental repair and the development of a clinical product for the remineralization of hard tissue.

Graphical abstract: Phosphorylation of collagen fibrils enhances intrafibrillar mineralization and dentin remineralization

Associated articles

Supplementary files

Article information

Article type
Paper
Submitted
15 Feb 2024
Accepted
26 Mar 2024
First published
12 Apr 2024

Nanoscale, 2024,16, 11633-11641

Phosphorylation of collagen fibrils enhances intrafibrillar mineralization and dentin remineralization

B. Zheng, L. Zhao, L. Chen, H. Lai, C. Wang, Y. Chen, C. Shao, R. Tang and X. Gu, Nanoscale, 2024, 16, 11633 DOI: 10.1039/D4NR00652F

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