The Development of Non-Viral Gene-Activated Matrices for Bone Regeneration Using Polyethyleneimine (PEI) and Collagen-Based Scaffolds
Citation:
Erica G. Tierney, Garry P. Duffy, Alan J. Hibbitts, Sally-Ann Cryan, Fergal J. O'Brien, The Development of Non-Viral Gene-Activated Matrices for Bone Regeneration Using Polyethyleneimine (PEI) and Collagen-Based Scaffolds, Journal of Controlled Release, 2012Download Item:

Abstract:
The healing potential of scaffolds for tissue engineering can be enhanced by combining them with genes to produce gene-activated matrices (GAMs) for tissue regeneration. We examined the potential of using polyethyleneimine (PEI) as a vector for transfection of mesenchymal stem cells (MSCs) in monolayer culture and in 3D collagen-based GAMs. PEI-pDNA polyplexes were fabricated at a range of N/P ratios and their optimal transfection parameters (N/P 7 ratio, 2 ?g dose) and transfection efficiencies (45 ? 3%) determined in monolayer culture. The polyplexes were then loaded onto collagen, collagen-glycosaminoglycan and collagen-nanohydroxyapatite scaffolds where gene expression was observed up to 21 days with a polyplex dose as low as 2 ?g. Transient expression profiles indicated that the GAMs act as a polyplex depot system whereby infiltrating cells become transfected over time as they migrate throughout the scaffold. The collagen-nHa GAM exhibited the most prolonged and elevated levels of transgene expression. This research has thus demonstrated that PEI is a highly efficient pDNA transfection agent for both MSC monolayer cultures and in the 3D GAM environment. By combining therapeutic gene therapy with highly engineered scaffolds, it is proposed that these GAMs might have immense capability to promote tissue regeneration.
Sponsor
Grant Number
European Research Council (ERC)
239685
European Commission
2007-2013
Science Foundation Ireland (SFI)
04/Yl1/B531
Author's Homepage:
http://people.tcd.ie/fobrienhttp://people.tcd.ie/gaduffy
Description:
IN_PRESS
Author: O'BRIEN, FERGAL; DUFFY, GARRY
Type of material:
Journal ArticleSeries/Report no:
Journal of Controlled ReleaseAvailability:
Full text availableKeywords:
Bioengineering, scaffoldsSubject (TCD):
Next Generation Medical DevicesLicences: