| Literature DB >> 27816000 |
Greg A Foster1, Devon M Headen1, Cristina González-García2, Manuel Salmerón-Sánchez2, Haval Shirwan3, Andrés J García4.
Abstract
Degradable hydrogels to deliver bioactive proteins represent an emerging platform for promoting tissue repair and vascularization in various applications. However, implanting these biomaterials requires invasive surgery, which is associated with complications such as inflammation, scarring, and infection. To address these shortcomings, we applied microfluidics-based polymerization to engineer injectable poly(ethylene glycol) microgels of defined size and crosslinked with a protease degradable peptide to allow for triggered release of proteins. The release rate of proteins covalently tethered within the microgel network was tuned by modifying the ratio of degradable to non-degradable crosslinkers, and the released proteins retained full bioactivity. Microgels injected into the dorsum of mice were maintained in the subcutaneous space and degraded within 2 weeks in response to local proteases. Furthermore, controlled release of VEGF from degradable microgels promoted increased vascularization compared to empty microgels or bolus injection of VEGF. Collectively, this study motivates the use of microgels as a viable method for controlled protein delivery in regenerative medicine applications.Entities:
Keywords: Biomaterials; Hydrogels; Microfluidics; Protein delivery; VEGF
Mesh:
Substances:
Year: 2016 PMID: 27816000 PMCID: PMC5121008 DOI: 10.1016/j.biomaterials.2016.10.044
Source DB: PubMed Journal: Biomaterials ISSN: 0142-9612 Impact factor: 12.479