Synthesis, Characterization and Cytocompatibility of Polyurethaneurea Elastomers with Designed Elastase Sensitivity
- 28 July 2005
- journal article
- research article
- Published by American Chemical Society (ACS) in Biomacromolecules
- Vol. 6 (5) , 2833-2842
- https://doi.org/10.1021/bm0503322
Abstract
In designing a synthetic scaffold for engineering soft, mechanically active tissues, desirable properties include elasticity, support of cell adhesion and growth, ease of processability, and responsiveness to in vivo remodeling. To achieve these properties, we have developed a family of thermoplastic elastomers, polyurethaneureas (PUs), that possess enzymatic remodeling capabilities in addition to simple hydrolytic lability. PUs were synthesized using either polycaprolactone or triblock copolymer polycaprolactone-b-poly(ethylene glycol)-b-polycaprolactone as the soft segment, 1,4-butanediisocyanate as the hard segment, and the peptide Ala-Ala-Lys as a chain extender. The synthesized PUs had high molecular weights, low glass transition temperatures (<−54 °C), and were flexible with breaking strains of 670−890% and tensile strengths of 15−28 MPa. Incubation in buffered saline without elastase for 8 weeks resulted in mass loss from 12% to 18% depending on soft segment composition. The degradation significantly increased (p < 0.05) in the presence of elastase, ranging from 19% to 34% with degradation products showing no cytotoxicity. To encourage cell adhesion, PUs were surface-modified with radio frequency glow discharge followed by coupling of Arg-Gly-Asp-Ser (RGDS). Endothelial cell adhesion was >140% of tissue culture polystyrene on PU surfaces and >200% on RGDS-modified surfaces. The synthesized PUs thus combine mechanical, chemical, and bioresponsive properties that might be employed in soft-tissue engineering applications.Keywords
This publication has 33 references indexed in Scilit:
- Fabrication of biodegradable elastomeric scaffolds with sub‐micron morphologiesJournal of Biomedical Materials Research Part A, 2004
- Biodegradable poly(ethylene oxide)/poly(ϵ‐caprolactone) multiblock copolymersJournal of Biomedical Materials Research, 2001
- Hydrolytic Degradation of Phase-Segregated Multiblock Copoly(ester urethane)s Containing Weak LinksMacromolecular Chemistry and Physics, 2001
- Segmented poly(ether–ester–amide)s based on poly(l,l-lactide) macromersPolymer, 2001
- Fibroblast culture on surface-modified poly (glycolide-co-ε-caprolactone) scaffold for soft tissue regenerationJournal of Biomaterials Science, Polymer Edition, 2001
- Synthesis and characterization of hydroxy-terminated [RS]-poly(3-hydroxybutyrate) and its utilization to block copolymerization with l-lactide to obtain a biodegradable thermoplastic elastomerPolymer, 2000
- In vivo performance of a new biodegradable polyester urethane system used as a nerve guidance channelBiomaterials, 1998
- Regulation of Polyamine Synthesis and Transport by Fibroblast Growth Factor in Aortic Smooth Muscle CellsGrowth Factors, 1996
- Hydrolyzable poly(ester‐urethane) networks from L‐lysine diisocyanate and D,L‐lactide/ϵ‐caprolactone homo‐ and copolyester triolsJournal of Polymer Science Part A: Polymer Chemistry, 1994
- Degradable polyurethane networks based on d,l-lactide, glycolide, ε-caprolactone, and trimethylene carbonate homopolyester and copolyester triolsPolymer, 1994