STMP and PVPA as Templating Analogs of Noncollagenous Proteins Induce Intrafibrillar Mineralization of Type I Collagen via PCCP Process

Author:

Wang Yiru1ORCID,Zhang Yizhou1,Shen Zhe2,Qiu Yuan1,Wang Chaoyang1,Wu Zhifang1,Shen Minjuan1,Shao Changyu1,Tang Ruikang3,Hannig Matthias4,Fu Baiping1ORCID,Zhou Zihuai1

Affiliation:

1. Stomatology Hospital School of Stomatology Zhejiang University School of Medicine Zhejiang Provincial Clinical Research Center for Oral Diseases Key Laboratory of Oral Biomedical Research of Zhejiang Province Cancer Center of Zhejiang University Engineering Research Center of Oral Biomaterials and Devices of Zhejiang Province Hangzhou Zhejiang 310000 China

2. School of Stomatology Hangzhou Normal University Hangzhou Zhejiang Province 310000 China

3. Center for Biomaterials and Biopathways Department of Chemistry Zhejiang University Hangzhou Zhejiang Province 310000 China

4. Clinic of Operative Dentistry Periodontology and Preventive Dentistry Saarland University 66424 Homburg Saar Germany

Abstract

AbstractThe phosphorylated noncollagenous proteins (NCPs) play a vital role in manipulating biomineralization, while the mechanism of phosphorylation of NCPs in intrafibrillar mineralization of collagen fibril has not been completely deciphered. Poly(vinylphosphonic acid) (PVPA) and sodium trimetaphosphate (STMP) as templating analogs of NCPs induce hierarchical mineralization in cooperation with indispensable sequestration analogs such as polyacrylic acid (PAA) via polymer‐induced liquid‐like precursor (PILP) process. Herein, STMP‐Ca and PVPA‐Ca complexes are proposed to achieve rapid intrafibrillar mineralization through polyelectrolyte‐Ca complexes pre‐precursor (PCCP) process. This strategy is further verified effectively for remineralization of demineralized dentin matrix both in vitro and in vivo. Although STMP micromolecule fails to stabilize amorphous calcium phosphate (ACP) precursor, STMP‐Ca complexes facilely permeate into intrafibrillar interstices and trigger phase transition of ACP to hydroxyapatite within collagen. In contrast, PVPA‐stabilized ACP precursors lack liquid‐like characteristic and crystallize outside collagen due to rigid conformation of PVPA macromolecule, while PVPA‐Ca complexes infiltrate into partial intrafibrillar intervals under electrostatic attraction and osmotic pressure as evidenced by intuitionistic 3D stochastic optical reconstruction microscopy (3D‐STORM). The study not only extends the variety and size range of polyelectrolyte for PCCP process but also sheds light on the role of phosphorylation for NCPs in biomineralization.

Funder

National Natural Science Foundation of China

Publisher

Wiley

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