Title :
Nerve Growth Factor-Immobilized Electrically Conducting Fibrous Scaffolds for Potential Use in Neural Engineering Applications
Author :
Lee, Jae Y. ; Bashur, Chris A. ; Milroy, Craig A. ; Forciniti, Leandro ; Goldstein, Aaron S. ; Schmidt, Christine E.
Author_Institution :
Dept. of Chem. Eng., Univ. of Texas at Austin, Austin, TX, USA
fDate :
3/1/2012 12:00:00 AM
Abstract :
Engineered scaffolds simultaneously exhibiting multiple cues are highly desirable for neural tissue regeneration. To this end, we developed a neural tissue engineering scaffold that displays submicrometer-scale features, electrical conductivity, and neurotrophic activity. Specifically, electrospun poly(lactic acid-co-glycolic acid) (PLGA) nanofibers were layered with a nanometer thick coating of electrically conducting polypyrrole (PPy) presenting carboxylic groups. Then, nerve growth factor (NGF) was chemically immobilized onto the surface of the fibers. These NGF-immobilized PPy-coated PLGA (NGF-PPyPLGA) fibers supported PC12 neurite formation (28.0±3.0% of the cells) and neurite outgrowth (14.2 μm median length), which were comparable to that observed with NGF (50 ng/mL) in culture medium (29.Oil.3%, 14.4 μm). Electrical stimulation of PC12 cells on NGF-immobilized PPyPLGA fiber scaffolds was found to further improve neurite development and neurite length by 18% and 17%, respectively, compared to unstimulated cells on the NGF-immobilized fibers. Hence, submicrometer-scale fibrous scaffolds that incorporate neurotrophic and electroconducting activities may serve as promising neural tissue engineering scaffolds such as nerve guidance conduits.
Keywords :
bioelectric phenomena; cellular biophysics; coating techniques; nanofibres; nanomedicine; neurophysiology; polymer fibres; tissue engineering; PC12 neurite formation; carboxylic groups; electrical conductivity; electrical stimulation; electrically conducting fibrous scaffolds; electroconducting activities; electrospun poly(lactic acid-co-glycolic acid) nanofibers; nanometer thick coating; nerve growth factor; nerve growth factor-immobilisation; nerve guidance conduits; neural tissue engineering scaffold; neural tissue regeneration; neurotrophic activity; submicrometer-scale fibrous scaffolds; unstimulated cells; Cells (biology); Chemicals; Electrical stimulation; Substrates; Surface resistance; Surface treatment; Conducting fibers; electrical stimulation; nerve growth factor; neural tissue engineering; Animals; Electric Conductivity; Electric Stimulation; Immobilized Proteins; Microscopy, Fluorescence; Nanofibers; Nerve Growth Factor; Nerve Regeneration; Neurites; PC12 Cells; Polymers; Pyrroles; Rats; Tissue Engineering; Tissue Scaffolds;
Journal_Title :
NanoBioscience, IEEE Transactions on
DOI :
10.1109/TNB.2011.2159621