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Nanoscale coatings for ultralow dose BMP‐2‐driven regeneration of critical‐sized bone defects

Cheng, Z. A. et al. (2019) Nanoscale coatings for ultralow dose BMP‐2‐driven regeneration of critical‐sized bone defects. Advanced Science, 6(2), 1800361. (doi: 10.1002/advs.201800361) (PMID:30693176) (PMCID:PMC6343071)

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Abstract

While new biomaterials for regenerative therapies are being reported in the literature, clinical translation is slow. Some existing regenerative approaches rely on high doses of growth factors, such as bone morphogenetic protein‐2 (BMP‐2) in bone regeneration, which can cause serious side effects. An ultralow‐dose growth factor technology is described yielding high bioactivity based on a simple polymer, poly(ethyl acrylate) (PEA), and mechanisms to drive stem cell differentiation and bone regeneration in a critical‐sized murine defect model with translation to a clinical veterinary setting are reported. This material‐based technology triggers spontaneous fibronectin organization and stimulates growth factor signalling, enabling synergistic integrin and BMP‐2 receptor activation in mesenchymal stem cells. To translate this technology, plasma‐polymerized PEA is used on 2D and 3D substrates to enhance cell signalling in vitro, showing the complete healing of a critical‐sized bone injury in mice in vivo. Efficacy is demonstrated in a Münsterländer dog with a nonhealing humerus fracture, establishing the clinical translation of advanced ultralow‐dose growth factor treatment.

Item Type:Articles
Additional Information:μCT work was supported by the European Research Council (ERC) under the European Union's Seventh Framework Programme (FP7/2007-2013) (grant agreement No. [615030]).
Status:Published
Refereed:Yes
Glasgow Author(s) Enlighten ID:Marshall, Mr William and Corr, Sandra and Salmeron-Sanchez, Professor Manuel and Dalby, Professor Matthew and Addison, Miss Elena and Gonzalez Garcia, Dr Cristina and Llopis-Hernandez, Dr Virginia and Jayawarna, Dr Vineetha and Childs, Dr Peter and Donnelly, Dr Hannah and Cantini, Dr Marco and Shields, Mr David and Cheng, Dr Zhe and Alba Perez, Dr Andres
Authors: Cheng, Z. A., Alba-Perez, A., Gonzalez-Garcia, C., Donnelly, H., Llopis-Hernandez, V., Jayawarna, V., Childs, P., Shields, D. W., Cantini, M., Ruiz-Cantu, L., Reid, A., Windmill, J. F.C., Addison, E. S., Corr, S., Marshall, W. G., Dalby, M. J., and Salmeron-Sanchez, M.
College/School:College of Medical Veterinary and Life Sciences > School of Molecular Biosciences
College of Medical Veterinary and Life Sciences > School of Medicine, Dentistry & Nursing
College of Medical Veterinary and Life Sciences > School of Biodiversity, One Health & Veterinary Medicine
College of Science and Engineering > School of Engineering > Biomedical Engineering
Journal Name:Advanced Science
Publisher:Wiley
ISSN:2198-3844
ISSN (Online):2198-3844
Published Online:19 November 2018
Copyright Holders:Copyright © 2018 The Authors
First Published:First published in Advanced Science 6(2):1800361
Publisher Policy:Reproduced under a Creative Commons License

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Project Code
Award No
Project Name
Principal Investigator
Funder's Name
Funder Ref
Lead Dept
1
HEALINSYNERGY - Material-driven fibronectin fibrillogenesis to engineer synergisticgrowth factor microenvironments
Manuel Salmeron-Sanchez
306990
ENG - BIOMEDICAL ENGINEERING
1
Synergistic microenvironments for non-union bone defects
Matthew Dalby
MR/L022710/1
RI MOLECULAR CELL & SYSTEMS BIOLOGY
1
Engineering growth factor microenvironments- a new therapeutic paradigm for regenerative medicine
Manuel Salmeron-Sanchez
EP/P001114/1
ENG - BIOMEDICAL ENGINEERING

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