Correlating Material Properties to Osteoprotegerin Expression on Nanoparticulate Mineralized Collagen Glycosaminoglycan Scaffolds

Author:

Chen Wei1234ORCID,Bedar Meiwand1234ORCID,Zhou Qi1234,Ren Xiaoyan1234,Kang Youngnam1234,Huang Kelly X.1234ORCID,Rubino Grace5,Kolliopoulos Vasiliki5,Moghadam Shahrzad1234,Cascavita Catherine T.1234,Taylor Jeremiah M.1234ORCID,Chevalier Jose M.1234,Harley Brendan A.C.56,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. UCLA Molecular Biology Institute Los Angeles CA 90095 USA

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

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

Abstract

AbstractPrecision material design directed by cell biological processes represents a frontier in developing clinically translatable regenerative technologies. While understanding cell‐material interactions on multipotent progenitor cells yields insights on target tissue differentiation, equally if not more important is the quantification of indirect multicellular interactions. In this work, the relationship of two material properties, phosphate content and stiffness, of a nanoparticulate mineralized collagen glycosaminoglycan scaffold (MC‐GAG) in the expression of an endogenous anti‐osteoclastogenic secreted protein, osteoprotegerin (OPG) by primary human mesenchymal stem cells (hMSCs) is evaluated. The phosphate content of MC‐GAG requires the type III sodium phosphate symporter PiT‐1/SLC20A1 for OPG expression, correlating with β‐catenin downregulation, but is independent of the effects of phosphate ion on osteogenic differentiation. Using three stiffness MC‐GAG variants that do not differ significantly by osteogenic differentiation, it is observed that the softest material elicited ≈1.6–2 times higher OPG expression than the stiffer materials. Knockdown of the mechanosensitive signaling axis of YAP, TAZ, β‐catenin and combinations thereof in hMSCs on MC‐GAG demonstrates that β‐catenin downregulation increases OPG expression by 1.5‐fold. Taken together, these data constitute a roadmap for material properties that can used to suppress osteoclast activation via osteoprotegerin expression separately from the anabolic processes of osteogenesis.

Funder

Jean Perkins Foundation

National Institute of Dental and Craniofacial Research

Plastic Surgery Foundation

National Institute of Arthritis and Musculoskeletal and Skin Diseases

National Science Foundation Graduate Research Fellowship Program

Publisher

Wiley

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