Modulating Temporospatial Phosphate Equilibrium by Nanoparticulate Mineralized Collagen Materials Induces Osteogenesis via PiT‐1 and PiT‐2

Author:

Ren Xiaoyan1234,Zhou Qi1234,Bedar Meiwand1234,Foulad David1234,Huang Kelly X.1234ORCID,Dejam Dillon1234,Dahan Natalie J.1234,Kolliopoulos Vasiliki5,Harley Brendan A.C.567,Lee Justine C.1234ORCID

Affiliation:

1. Division of Plastic and Reconstructive Surgery Department of Surgery UCLA David Geffen School of Medicine Los Angeles CA 90095 USA

2. Department of Orthopaedic Surgery UCLA David Geffen School of Medicine Los Angeles CA 90095 USA

3. Surgery and Perioperative Care Greater Los Angeles VA Healthcare System Los Angeles CA 90073 USA

4. Molecular Biology Institute UCLA Los Angeles CA 90095 USA

5. Department of Chemical and Biomolecular Engineering Institute for Genomic Biology University of Illinois at Urbana‐Champaign Urbana IL 61801 USA

6. Department of Materials Science and Engineering Institute for Genomic Biology University of Illinois at Urbana‐Champaign Urbana IL 61801 USA

7. Carl R. Woese Institute for Genomic Biology University of Illinois at Urbana‐Champaign Urbana IL 61801 USA

Abstract

AbstractThe temporospatial equilibrium of phosphate contributes to physiological bone development and fracture healing, yet optimal control of phosphate content has not been explored in skeletal regenerative materials. Nanoparticulate mineralized collagen glycosaminoglycan (MC‐GAG) is a synthetic, tunable material that promotes in vivo skull regeneration. In this work, the effects of MC‐GAG phosphate content on the surrounding microenvironment and osteoprogenitor differentiation are investigated. This study finds that MC‐GAG exhibits a temporal relationship with soluble phosphate with elution early in culture shifting to absorption with or without differentiating primary bone marrow‐derived human mesenchymal stem cells (hMSCs). The intrinsic phosphate content of MC‐GAG is sufficient to stimulate osteogenic differentiation of hMSCs in basal growth media without the addition of exogenous phosphate in a manner that can be severely reduced, but not eliminated, by knockdown of the sodium phosphate transporters PiT‐1 or PiT‐2. The contributions of PiT‐1 and PiT‐2 to MC‐GAG‐mediated osteogenesis are nonredundant but also nonadditive, suggestive that the heterodimeric form is essential to its activity. These findings indicate that the mineral content of MC‐GAG alters phosphate concentrations within a local microenvironment resulting in osteogenic differentiation of progenitor cells via both PiT‐1 and PiT‐2.

Funder

Jean Perkins Foundation

Publisher

Wiley

Subject

Pharmaceutical Science,Biomedical Engineering,Biomaterials

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