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Translation of a solution-based biomineralization concept into a carrier-based delivery system via the use of expanded-pore mesoporous silica

  • Xiao Juan Luo
    ,
  • Hong Ye Yang
    ,
  • Li Na Niu
    ,
  • Jing Mao(corresponding author)
    ,
  • Cui Huang
    ,
  • David H. Pashley
*Corresponding author for this work
Scholary Output:
Contribution to journal
Article
Peer-review

Open access

Abstract

Mineralization of collagen fibrils using solution-based systems containing biomimetic analogs of matrix proteins to stabilize supersaturated calcium phosphate solutions have been predictably achieved in vitro. Solution-based systems have limitations when used for in-situ remineralization of human hypomineralized tissues because periodic replenishment of the mineralizing solution is infeasible. A carrier-based platform designed for delivering mineral precursors would be highly desirable. In the present work, mesoporous silica nanoparticles with expanded pores (eMSN; 14.8 nm) were synthesized. Polyacrylic acid-stabilized amorphous calcium phosphate (PA-ACP) was generated from a supersaturated calcium and phosphate ion-containing solution, and chosen as the model mineralizing phase. After amine functionalization (AF) of the eMSN through a post-grafting method, the positively-charged AF-eMSN enabled loading of PA-ACP by electrostatic interaction. In-vitro cytotoxicity testing indicated that PA-ACP@AF-eMSN was highly biocompatible. The release kinetics of mineralization precursors from PA-ACP@AF-eMSN was characterized by an initial period of rapid calcium and phosphate release that reached a plateau after 120 h. Intrafibrillar mineralization was examined using a 2-D fibrillar collagen model; successful mineralization was confirmed using transmission electron microscopy. To date, this is the first endeavor that employs expanded-pore mesoporous silica to deliver polymer-stabilized intermediate precursors of calcium phosphate for intrafibrillar mineralization of collagen. The carrier-based delivery system bridges the gap between contemporary solution-based biomineralization concepts and clinical practice, and is useful for in-situ remineralization of bone and teeth. Statement of significance Concepts of collagen biomineralization have been reasonably well established in the past few years and intrafibrillar mineralization of collagen fibrils can be predictably achieved with analogs of matrix proteins using solution-based systems. However, solution-based systems have their limitations in clinical applications that require direct application of mineralization precursors in-situ because periodic replenishment of the mineralizing solution is impossible. The present work presents for the first time, the use of amine-functionalized mesoporous silica with expanded pores for loading and release of polyacid-stabilized amorphous calcium phosphate mineralization precursors, and for intrafibrillar mineralization of type I collagen fibrils. This strategy represents an important step in the translational application of contemporary biomineralization concepts for in-situ remineralization of bone and teeth.

Publication Information

Output type

Scholary Output:
Contribution to journal
Article
Peer-review

Original language

English (US)

Pages from-to (Number of pages)

Pages 378-387 (10 pages)

Journal (Volume, Issue Number)

Acta biomaterialia (Volume 31)

Publication milestones

  • Published - 02/01/2016

Publication status

Published - 02/01/2016

ISSN

1742-7061

Publication IDs

  • Scopus: 84957647519
  • PubMed: 26657191

Publication metrics

Metrics

SciVal
FWCI
1.15
SciVal
Author count
7
SciVal
citations
14
SciVal
Paper percentile
79
Scopus
citations
Fractional count
2
Fractional count
0.29
Fractional count
5
Fractional count
0.71
Fractional count
2
Fractional count
1

PlumX, opens in new tab

Captures
43
Citation count
33

Funding Details

This work was supported by Grant R01 DE015306-06 from NIDCR (D. H. Pashley) and National High Technology Research and Development Program of China Grant 2015AA020942 (L-N. Niu), National Nature Science Foundation of China Grant 81400555 (L-N. Niu) and Natural Science Basic Research Plan in Shaanxi Province of China Grant 2015JM8383 (L-N. Niu).
FundersFunding numbers
NIH
-
NIAAA
R21AA020941
NIDCR
-
NSFC
81400555
Natural Science Foundation of Shaanxi Province
2015JM8383
National High-tech Research and Development Program
2015AA020942