Chitosan—L- lactic acid scaffold for the regeneration of peripheral nerve and its NGF release properties

Haixing Xu , Yuhua Yan , Shipu Li

Journal of Wuhan University of Technology Materials Science Edition ›› 2009, Vol. 24 ›› Issue (6) : 961 -964.

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Journal of Wuhan University of Technology Materials Science Edition ›› 2009, Vol. 24 ›› Issue (6) : 961 -964. DOI: 10.1007/s11595-009-6961-9
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Chitosan—L- lactic acid scaffold for the regeneration of peripheral nerve and its NGF release properties

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Abstract

Chitosan—L-lactic acid composite scaffold for the regeneration of peripheral nerve is obtained by grafting L-lactic acid onto the amino groups in chitosan with combined vacuum freezer drier. The composite scaffold was characterized by ATR-FTIR and SEM. The scaffold has a better graft efficiency and has a dense inner layer and a loose outer layer with porous structure, and the pore size is about 100 µm. The NGF release properties of the scaffold were investigated. The experimental results showed that, at the 1st day, 15.2 ng of NGF on average was released from the scaffold. From day 2 to day 10, the release rate obviously slowed down and 1.64 ng of NGF was released on average every day. After 10 days, the release rate was slower and 10.3 ng of NGF was released on average every day. After 60 days, NGF could also maintained a certain concentration. These properties show that the scaffold is a better carrier for NGF which can be more advantageous to the regeneration of the damaged peripheral nerve. As a result, this composite scaffold would be an ideal candidate for the regeneration of damaged peripheral nerve.

Keywords

chitosan / L-lactic acid / peripheral nerve / NGF release properties

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Haixing Xu, Yuhua Yan, Shipu Li. Chitosan—L- lactic acid scaffold for the regeneration of peripheral nerve and its NGF release properties. Journal of Wuhan University of Technology Materials Science Edition, 2009, 24(6): 961-964 DOI:10.1007/s11595-009-6961-9

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References

[1]

Rücker M., Laschke M. W., Junke D., . Angiogenic and Inflammatory Response to Biodegradable Scaffolds in Dorsal Skinfold Chambers of Mice[J]. Biomaterials, 2006, 27(29): 5027-5038.

[2]

Tao J., Abdel F. W. I., Laurencin C. T. In vitro Evaluation of Chitosan/Poly (lactic acid-glycolic acid) Sintered Microsphere Scaffolds for BoneTissue Engineering[J]. Biomaterials, 2006, 27(28): 4894-4903.

[3]

Duan B., Yuan X. Y., Zhu Y. Y., . A Nanofibrous Composite Membrane of PLGA-chitosan/PVA Prepared by Electrospinning[J]. European Polymer Journal, 2006, 42(9): 2013-2022.

[4]

Guo T., Zhao J. N., Chang J. B., . Porous Chitosan-gelatin Scaffold Containing Plasmid DNA Encoding Transforming Growth factor-β1 for Chondrocytes Proliferation[J]. Biomaterials, 2006, 27(7): 1095-1103.

[5]

Liu X. H., Won Y. J., Ma P. X. Progeny-induced Surface Modification of Nano-fibrous Poly (l-lactic acid) Scaffolds for Ttissue Engineering[J]. Biomaterials, 2006, 27(21): 3980-3987.

[6]

Sarazin P., Roy X., Basil D. Controlled Preparation and Properties of Porous poly (L-lactide) Obtained from a C-continuous Blend of Two Biodegradable Polymers[J]. Biomaterials, 2004, 25(28): 5965-5978.

[7]

Yang F., Murugan R., Ramakrishna S., . Fabrication of Nano-structured Porous PLLA Scaffold Intended for Nerve Tissue Engineering[J]. Biomaterials, 2004, 25(10): 1891-1900.

[8]

Suh J. K. F., Matthew H. W. T. Application of Chitosan-based Polysaccharide Biomaterials in Cartilage Tissue Engineering: A Review[J]. Biomaterials, 2000, 21(24): 2589-2598.

[9]

Shanmugasundaram N., Ravichandran P., Reddy P. N. Collagen-chitosan Polymeric Scaffolds for the in Vitro Culture of Human Epidermoid Carcinoma Cells[J]. Biomaterials, 2001, 22(14): 1943-1951.

[10]

Merle M., Dellon A. L., Campbell J. N. Complications from Silicon-polymer Intubulation of Nerves[J]. Microsurgery, 1989, 10(2): 130-133.

[11]

Mackinnon S. E., Dellon A. L. Clinical Nerve Reconstruction with a Bioabsorbable Polyglycolic Acid Tube[J]. Plast Reconstr Surg., 1990, 85(3): 419-424.

[12]

Agrawal C. M., Athannasion K. A. Technique to Control pH in Vicinity of Biodegrading PLA-PGA Implants[J]. J. Appl. Biomater., 1997, 38(2): 105-114.

[13]

Suganuma J., Alexander H. Biological Response of Intramedullary Bone to Poly L-lactic acid[J]. J. Appl. Biomater., 1993, 4(1): 13-27.

[14]

Zhu H. G., Ji J., Shen J. C. Osteoblast Growth Promotion by Protein Electrostatic Self-assembly on Biodegradable Poly (lactide)[J]. J. Biomater. Sci. Polymer Edn., 2005, 16(6): 761-774.

[15]

Fu J.H., Jian J., Yuan W.Y., . Construction of Anti-adhesive and Antibacterial Multilayer Films via Layer-by-layer Assembly of Heparin and Chitosan[J]. Biomaterials, 2005, 26(33): 6684-6692.

[16]

Zhu Y. B., Gao C. Y., Liu Y. X., . LBL Self-assembly of Chondroitin Sulfate and Collagen onto Poly (L-lactic acid)for Improving Its Cytocompatibility with Endothelial Cells[J]. Chem. J. Chinese University, 2004, 25(7): 1347-1350.

[17]

Zhu H G, Ji J, Shen J C. Surface Engineering of Poly (DL-lactic acid) by Entrapment of Biomacromolecules[J]. Macromol. Rapid Commun., 2003, (23): 819–823

[18]

Chen P. R., Chen M. H., Sun J. S., . Biocompatibility of NGF-grafted GTG Membranes for Peripheral Nerve Repair Using Cultured Schwann Cells[J]. Biomaterials, 2004, 25(25): 5667-5673.

[19]

Dong H. R., Xu Y. N., Huang J. F., . Experimental Study of Bridging Peripheral Nerve Defect with Biodegradable PDLLA/NGF Controlled Release Conduit[J]. Chinese Journal of Clinical Anatomy, 2003, 21(5): 482-485.

[20]

Li Q. F., Xu J. H., Luo M., Gan J. L. Experimental Study on Peripheral Nerve Regeneration Through Composite Biomembrane-chitosan Conduits with Different Permeabilities[J]. Shanghai Medicine, 2000, 23(7): 390-392.

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