A Multifunctional Scaffold for Bone Infection Treatment by Delivery of microRNA Therapeutics Combined With Antimicrobial Nanoparticles

Author:

Sadowska Joanna M.1ORCID,Power Rachael. N.1,Genoud Katelyn J.12,Matheson Austyn12,González‐Vázquez Arlyng1,Costard Lara1,Eichholz Kian23,Pitacco Pierluca23,Hallegouet Tanguy14,Chen Gang5,Curtin Caroline M.123,Murphy Ciara M.123,Cavanagh Brenton6,Zhang Huijun7,Kelly Daniel J.123,Boccaccini Aldo R.7,O'Brien Fergal J.123ORCID

Affiliation:

1. Tissue Engineering Research Group Dept. of Anatomy and Regenerative Medicine Royal College of Surgeons in Ireland (RCSI) University of Medicine and Health Sciences Dublin D02 YN77 Ireland

2. Advanced Materials and Bioengineering Research Centre (AMBER) Royal College of Surgeons in Ireland (RCSI) University of Medicine and Health Sciences and Trinity College Dublin (TCD) Dublin D02 W085 Ireland

3. Trinity Centre for Biomedical Engineering Trinity College Dublin (TCD) Dublin D02 R590 Ireland

4. University of Strasbourg Strasbourg 67412 France

5. Microsurgical Research and Training Facility (MRTF) Royal College of Surgeons in Ireland (RCSI) University of Medicine and Health Sciences Dublin D02 YN77 Ireland

6. Cellular and Molecular Imaging Core Royal College of Surgeons in Ireland (RCSI) University of Medicine and Health Sciences Dublin D02 YN77 Ireland

7. Institute of Biomaterials Friedrich–Alexander University Erlangen–Nuremberg 91056 Erlangen Germany

Abstract

AbstractTreating bone infections and ensuring bone repair is one of the greatest global challenges of modern orthopedics, made complex by antimicrobial resistance (AMR) risks due to long‐term antibiotic treatment and debilitating large bone defects following infected tissue removal. An ideal multi‐faceted solution would will eradicate bacterial infection without long‐term antibiotic use, simultaneously stimulating osteogenesis and angiogenesis. Here, a multifunctional collagen‐based scaffold that addresses these needs by leveraging the potential of antibiotic‐free antimicrobial nanoparticles (copper‐doped bioactive glass, CuBG) to combat infection without contributing to AMR in conjunction with microRNA‐based gene therapy (utilizing an inhibitor of microRNA‐138) to stimulate both osteogenesis and angiogenesis, is developed. CuBG scaffolds reduce the attachment of gram‐positive bacteria by over 80%, showcasing antimicrobial functionality. The antagomiR‐138 nanoparticles induce osteogenesis of human mesenchymal stem cells in vitro and heal a large load‐bearing defect in a rat femur when delivered on the scaffold. Combining both promising technologies results in a multifunctional antagomiR‐138‐activated CuBG scaffold inducing hMSC‐mediated osteogenesis and stimulating vasculogenesis in an in vivo chick chorioallantoic membrane model. Overall, this multifunctional scaffold catalyzes killing mechanisms in bacteria while inducing bone repair through osteogenic and angiogenic coupling, making this platform a promising multi‐functional strategy for treating and repairing complex bone infections.

Funder

Science Foundation Ireland

H2020 Marie Skłodowska-Curie Actions

H2020 European Research Council

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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