Fabrication and characterization of hydrophilized porous PLGA nerve guide conduits by a modified immersion precipitation method
- 18 January 2007
- journal article
- research article
- Published by Wiley in Journal of Biomedical Materials Research Part A
- Vol. 80A (3) , 530-538
- https://doi.org/10.1002/jbm.a.30937
Abstract
Nerve guide conduits (NGCs) with selective permeability and hydrophilicity were fabricated using poly(lactic-co-glycolic acid) (PLGA) and Pluronic F127 by a modified immersion precipitation method developed by our laboratory. The hydrophilized porous PLGA tubes as NGCs were fabricated by immersing a water-saturated rod-shape alginate hydrogel into PLGA/Pluronic F127 mixture solution (in tetraglycol). The PLGA/Pluronic F127 mixture was precipitated outside the alginate hydrogel rod by the diffusion of water from the hydrogel rod into PLGA/Pluronic F127 mixture solution. The inner diameter and wall thickness of tubes could be easily controlled by adjusting the diameter of alginate hydrogel rod and immersion time, respectively. It was observed that the tube wall has an asymmetric column-shape porous structure. The inner surface of the tube had nano-size pores (∼50 nm), which can effectively prevent from fibrous tissue infiltration but permeate nutrients and retain neurotrophic factors, while the outer surface had micro-size pores (∼50 μm), which can allow vascular ingrowth for effective supply of nutrients and oxygen into the tube. From the investigations of mechanical property, water absorbabiliy, and model nutrient permeability of the tubes, the hydrophilized PLGA/F127 (3 wt %) tube seems to be a good candidate as a NGC for the effective permeation of nutrients as well as the good mechanical strength to maintain a stable support structure for the nerve regeneration. © 2006 Wiley Periodicals, Inc. J Biomed Mater Res, 2007Keywords
This publication has 41 references indexed in Scilit:
- PCL microparticle-dispersed PLGA solution as a potential injectable urethral bulking agentBiomaterials, 2006
- The effect of high outflow permeability in asymmetric poly(dl-lactic acid-co-glycolic acid) conduits for peripheral nerve regenerationBiomaterials, 2005
- Manufacture of porous polymer nerve conduits through a lyophilizing and wire‐heating processJournal of Biomedical Materials Research Part B: Applied Biomaterials, 2005
- Peripheral nerve regeneration using acellular nerve graftsJournal of Biomedical Materials Research Part A, 2003
- Fabrication of poly(phosphoester) nerve guides by immersion precipitation and the control of porosityBiomaterials, 2001
- Determining the Maximal Length of a Vein Conduit Used as an Interposition Graft for Nerve RegenerationJournal of Reconstructive Microsurgery, 1996
- Bioresorbability and biocompatibility of aliphatic polyestersJournal of Materials Science: Materials in Medicine, 1992
- Two-ply biodegradable nerve guide: basic aspects of design, construction and biological performanceBiomaterials, 1990
- Experimental Improvements in the Use of Silastic Cuff for Peripheral Nerve RepairJournal of Neurosurgery, 1968