Title :
Electrospun Blends of Natural and Synthetic Polymers as Scaffolds for Tissue Engineering
Author :
Li, Mengyan ; Mondrinos, Mark J. ; Chen, Xuesi ; Lelkes, Peter I.
Author_Institution :
Sch. of Biomed. Eng., Drexel Univ., Philadelphia, PA
Abstract :
Engineering functional three-dimensional (3-D) tissue constructs for the replacement and/or repair of damaged native tissues using cells and scaffolds is one of the ultimate goals of tissue engineering. In this study, non-woven fibrous scaffolds were electrospun from the synthetic biodegradable polymer poly(lactic-co-glycolic acid) (PLGA) and natural proteins, gelatin (denatured collagen) and elastin. In the absence of cross-linking agent, the average PGE fiber diameter increased from 347 plusmn 103 nm to 999 plusmn 123 nm upon wetting as measured by scanning electron microscopy. Rat bone marrow stromal cells (rBMSC) were used paradigmatically to study the 3-D cell culture properties of PGE scaffolds. Consistent with the observed properties of the individual fibers, PGE scaffolds initially swelled in aqueous culture medium, however rBMSC seeded PGE scaffolds contracted to < 50% of original size. Time course histological analysis demonstrated uniform seeding of rBMSC into PGE scaffolds and complete cell penetration into the fibrous architecture over 4 weeks of in vitro culture
Keywords :
biomedical materials; bone; cellular biophysics; gelatin; molecular biophysics; polymer blends; polymer fibres; scanning electron microscopy; tissue engineering; wetting; 244 to 550 nm; 4 week; 876 to 1122 nm; cell penetration; cross-linking agent; denatured collagen; elastin; electrospun polymers blends; gelatin; natural polymers; natural proteins; nonwoven fibrous scaffolds; poly(lactic-co-glycolic acid); rat bone marrow stromal cells; scanning electron microscopy; synthetic polymers; three-dimensional tissue constructs; time course histological analysis; tissue engineering scaffolds; tissue repair; tissue replacement; Biological materials; Biomedical engineering; Bones; Chemistry; In vitro; Laboratories; Physics; Polymer gels; Protein engineering; Tissue engineering; Elastin; Electrospinning; Gelatin; Nanofibrous scaffold; PLGA; Tissue Engineering;
Conference_Titel :
Engineering in Medicine and Biology Society, 2005. IEEE-EMBS 2005. 27th Annual International Conference of the
Conference_Location :
Shanghai
Print_ISBN :
0-7803-8741-4
DOI :
10.1109/IEMBS.2005.1615822