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Journal of Veterinary Medical Science. pp 851-854.
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polymorphonuclear cells after surgical stress. Journal of Veterinary Medical Science. pp 963-967.
[98]UENO et al. (1999). Accelerating effects of chitosan for healing at early phase of experimental open
wound in dogs. Biomaterials. pp 1407-1414.
[99]ZHANG et al. (2006). Sandwich tubular scaffold derived from chitosan for blood vessel tissue
engineering. J Biomed Mater Res. pp 277-284.
[100]FUJITA et al. (2005). Efficacy of photo cross linkable chitosan hydrogel containing fibroblast
growth factor-2 in a rabbit model of chronic myocardial infarction. J SurgRes. pp 27-33.
[101]HAMIDI, M. AZADI, A. RAFIEI, P. (2008). Hydrogel nanoparticles in drug delivery.
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[102]BACAKOVA et al. (2004) Cell adhesion on artificial materials for tissue engineering. Physiol Res.
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[103]CHO, et al. (2005). Vascular patches tissue-engineered with autologous bone marrow-derived cells
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[105]STEENDAM, R. VAN DER, LAANA. HISSINK, D. (2006). Bioresorbable drug-eluting stent
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[106]WHELAN et al. (2000). Biocompatibility of phosphorylcholine coated stents in normal porcine
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nanofibers: potential vascular graft for blood vessel tissue engineering. Tissue Eng. Tom 11. pp 15741588.
~ 45 ~
[90]SIL. Et al. (1998). Identification spectromètrique de composés organiques, De Boeck et Larcier,
Paris et Bruxelles.
[91]JAMES, S. P. BURT, P. (1995). Viscosity of Solutions of Macromolecules.Chem. pp 303- 51.
[92]KEDDOU, M. (2008). Élaboration, caractérisation et application de membranes polymères à base
de chitosane. Université M’hamed Bouguera, faculté des sciences, Boumerdès, Algérie.
[93]DUPASQUIER, F. (2011). Hydrogels physiques de chitosane pour la reégénération in vivo du tissu
cutané après brulures du troisième degré. Université Claude Bernard Lyon 1. pp 52,56, 57.
[94]YOSHIOKA et al. (1995). Chitosan-derived polymer-surfactant and their micellar properties.
Bioscience, biotechnologie and biochemistry. pp 1901-1904.
[95]AURELIE, C. JULIE, L.S. (2007). Les matériaux issus de ressources renouvelables : application
aux non-tissés. Ecole Normale Supérieur des Arts et Industries Textiles. 4 p.
[96]OKAMOTO et al. (1995). Evaluation of Chitin and Chitosan on Open Wound-Heating in Dogs.
Journal of Veterinary Medical Science. pp 851-854.
[97]KOSAKA et al. (1996). Effect of chitosan implantation on activation of canine macrophages and
polymorphonuclear cells after surgical stress. Journal of Veterinary Medical Science. pp 963-967.
[98]UENO et al. (1999). Accelerating effects of chitosan for healing at early phase of experimental open
wound in dogs. Biomaterials. pp 1407-1414.
[99]ZHANG et al. (2006). Sandwich tubular scaffold derived from chitosan for blood vessel tissue
engineering. J Biomed Mater Res. pp 277-284.
[100]FUJITA et al. (2005). Efficacy of photo cross linkable chitosan hydrogel containing fibroblast
growth factor-2 in a rabbit model of chronic myocardial infarction. J SurgRes. pp 27-33.
[101]HAMIDI, M. AZADI, A. RAFIEI, P. (2008). Hydrogel nanoparticles in drug delivery.
AdvDrugDeliv Rev. pp 1638-1649.
[102]BACAKOVA et al. (2004) Cell adhesion on artificial materials for tissue engineering. Physiol Res.
53Suppl 1. pp 35-45.
[103]CHO, et al. (2005). Vascular patches tissue-engineered with autologous bone marrow-derived cells
and decellularized tissue matrices. Biomaterials. Tom 26. pp 1915-1924.
[104]LAUTO et al. (2001) Self-expandable chitosan stent: design and preparation. Biomaterials. Tom
22. pp 1869-1874.
[105]STEENDAM, R. VAN DER, LAANA. HISSINK, D. (2006). Bioresorbable drug-eluting stent
coating formulations based on SynBiosys biodegradable multi-block copolymers. J Control Release. pp
94-95.
[106]WHELAN et al. (2000). Biocompatibility of phosphorylcholine coated stents in normal porcine
coronary arteries. Heart. pp 338-345.
[107]HE et al. (2005). Fabrication and endothelialization of collagen blended biodegradable polymer
nanofibers: potential vascular graft for blood vessel tissue engineering. Tissue Eng. Tom 11. pp 15741588.
