RRC ID 42361
Author Zhang K, Simon CG Jr, Washburn NR, Antonucci JM, Lin-Gibson S.
Title In situ formation of blends by photopolymerization of poly(ethylene glycol) dimethacrylate and polylactide.
Journal Biomacromolecules
Abstract Blends of cross-linked poly(ethylene glycol) dimethacrylate (PEGDMA) and poly(d,l-lactide) (PLA) were prepared by mixing photoactive PEGDMA (molecular mass: 875 g/mol) and PLA, and subsequently photopolymerizing the mixture with visible light. The effects of PLA molecular mass and mass fraction on the rheological properties of the PEGDMA/PLA mixtures, and on the degree of methacrylate vinyl conversion (DC), as well as blend miscibility, microstructure, mechanical properties, in vitro swelling behavior, and cell responses were studied. PLA-2K (molecular mass: 2096 g/mol) and PLA-63K (molecular mass: 63 000 g/mol) formed miscible and partially miscible blends with cross-linked PEGDMA, respectively. The addition of the PLA-2K did not affect the immediate or post-cure (>24 h) DC of the PEGDMA upon photopolymerization. However, the addition of PLA-63K decreased the immediate DC of the PEGDMA, which can be increased through extending the curing time or post-curing period. Compared to the cross-linked neat PEGDMA and PLA-2K/PEGDMA blends, PLA-63K/PEGDMA blends were significantly stronger, stiffer, and tougher. Both types of blends and the cross-linked PEGDMA swelled when soaked in a phosphate buffered saline (PBS) solution. The attachment and spreading of MCT3-E1 cells increased with increasing PLA-63K content in the blends. The facile and rapid formation of PEGDMA/PLA blends by photopolymerization represents a simple and efficient approach to a class of biomaterials with a broad spectrum of properties.
Volume 6(3)
Pages 1615-22
Published 2005-1-1
DOI 10.1021/bm0500648
PMID 15877385
MeSH Acrylates / chemical synthesis* Acrylates / pharmacology Animals Cells, Cultured Mice Photic Stimulation / methods* Polyesters / chemical synthesis* Polyesters / pharmacology Polyethylene Glycols / chemical synthesis* Polyethylene Glycols / pharmacology Polyethylene Glycols / radiation effects Polymers / chemical synthesis* Polymers / pharmacology Polymers / radiation effects Tensile Strength / drug effects Tensile Strength / radiation effects
IF 6.092
Times Cited 18
WOS Category POLYMER SCIENCE CHEMISTRY, ORGANIC BIOCHEMISTRY & MOLECULAR BIOLOGY
Resource
Human and Animal Cells MC3T3-E1(RCB1126)