831
Views
12
CrossRef citations to date
0
Altmetric
Original

In Vitro and In Vivo Degradation of Oxidized Acetyl- and Ethyl-Cellulose Sponges

Pages 407-418 | Published online: 11 Jul 2009

REFERENCES

  • Vacanti, J.P., Langer, R. (1999). Tissue engineering: The design and fabrication of living replacement devices for surgical reconstruction and transplantation. Lancet 354(sI): 32–34. [CSA]
  • Elçin, Y.M. (2003). Tissue Engineering, Stem Cells and Gene Therapies. AEMB Series, 534 Kluwer Academic-Plenum Publishers: , NY, 1st Ed.
  • Mikos, A.G., Thorsen, A.J., Czerwonka, L.A., Bao, Y., Langer, R. (1994). Preparation and characterization of poly (L-lactic acid) foams. Polymer 35: 1068–1077. [CSA], [CROSSREF]
  • Elçin, A.E., Elçin, Y.M., Pappas, G.D. (1998). Neural tissue engineering: Adrenal chromaffin cell attachment and viability on chitosan scaffolds. Neurol. Res. 20: 648–654. [CSA]
  • Elçin, Y.M., Dixit, V., Lewin, K., Gitnick, G. (1999). Xenotransplantation of fetal porcine hepatocytes in rats using a tissue engineering approach. Artif. Organs 23: 146–152. [CSA], [CROSSREF]
  • Elçin, Y.M., Elçin, A.E., Pappas, G.D. (2003). Functional and morphological characteristics of bovine adrenal chromaffin cells on macroporous poly (DL-lactide-co-glycolide) scaffolds. Tissue Eng. 9(5): 1047–1056. [CSA], [CROSSREF]
  • Inanç, B., Elçin, A.E., Elçin, Y.M. (2006). Osteogenic induction of human periodontal ligament fibroblasts under two and three-dimensional culture conditions. Tissue Eng. 12(2): 257–266. [CSA], [CROSSREF]
  • Elçin, Y.M., Dixit, V., Gitnick, G. (2001). Extensive in vivo angiogenesis following controlled release of human vascular endothelial cell growth factor: Implications for tissue engineering and wound healing. Artif. Organs 25(7): 558–565. [CSA], [CROSSREF]
  • Elçin, A.E., Elçin, Y.M. (2006). Localized angiogenesis induced by human vascular endothelial growth factor-activated PLGA sponge. Tissue Eng. 12(4): 959–968. [CSA], [CROSSREF]
  • Stamatialis, D.F., Dias, C.R., de Pinho, M.N. (2001). Structure and permeation properties of cellulose esters asymmetric membranes. Biomacromolecules 1(4): 564–570. [CSA], [CROSSREF]
  • Riekerink, M.B., Engbers, G.H., Wessling, M., Feijen, J. (2002). Tailoring the properties of asymmetric cellulose acetate membranes by gas plasma etching. J. Colloid Interface Sci. 245: 338–348. [CSA], [CROSSREF]
  • Raccuia, J.S., Simonian, G., Dardik, M., Hallac, D., Raccuia, S.V., Stahl, R., Dardik, H. (1992). Comparative efficacy of topical hemostatic agents in a rat kidney model. Am. J. Surg. 163: 234–238. [INFOTRIEVE], [CSA], [CROSSREF]
  • Fricain, J.C., Granja, P.L., Barbosa, M.A., de Jeso, B., Barthe, N., Baquey, C. (2002). Cellulose phosphates as biomaterials. In vivo biocompatibility studies. Biomaterials 23: 971–980. [INFOTRIEVE], [CSA], [CROSSREF]
  • Märtson, M., Viljanto, J., Hurme, T., Laippala, P., Saukko, P. (1999). Is cellulose sponge degradable or stable as implantation material? An in vivo subcutaneous study in the rat. Biomaterials 20: 1989–1995. [CSA], [CROSSREF]
  • Miyamoto, T., Takahashi, S., Hiraku, I., Hiroshi, I., Noishiki, Y. (1989). Tissue biocompatibility of cellulose and its derivatives. J. Biomed. Mater. Res. 23: 125–133. [INFOTRIEVE], [CSA], [CROSSREF]
  • Märtson, M., Viljanto, J., Hurme, T., Laippala, P., Saukko, P. (1998). Biocompatibility of cellulose sponge with bone. Eur. Surg. Res. 30: 426–432. [CSA], [CROSSREF]
  • Laurence, S., Bareille, R., Baquey, C., Fricain, J.C. (2005). Development of a resorbable macroporous cellulosic material used as hemostatic in an osseous environment. J. Biomed. Mater. Res. 73A: 422–429. [CSA], [CROSSREF]
  • Nevell, T.P. (1985). Oxidation of cellulose, in Cellulose Chemistry and its Applications, T.P. Nevell, S. Haig-Zeronian, Eds., John Wiley & Sons: New York, pp. 243–263.
  • Daniels, A.U., Chang, M.K.O., Andriano, K.P. (1990). Mechanical properties of biodegradable polymers and composites proposed for internal fixation of bone. J. Appl. Biomat. 1: 57–78. [CSA], [CROSSREF]
  • Dimitrijevich, S.D., Tatarko, M., Gracy, R.W., Linsky, C.B., Olsen, C. (1990). Biodegradation of oxidized regenerated cellulose. Carbohydr. Res. 195: 247–256. [INFOTRIEVE], [CSA], [CROSSREF]
  • Durkut, S., Elçin, A.E., Elçin, Y.M. (2006). Biodegradation of chitosan-tripolyphosphate beads: In vitro and in vivo studies. Artif. Cells Blood Substit. Immobil. Biotechnol. 34(2): 263–276. [INFOTRIEVE], [CSA], [CROSSREF]
  • Göpferich, A. (1996). Mechanism of polymer degradation and erosion. Biomaterials 17: 103–114. [CSA], [CROSSREF]
  • Pajulo, O., Viljanto, J., Lönnberg, B., Hurme, T., Lönnqvist, K., Saukko, P. (1996). Viscose cellulose sponge as an implantable matrix: Changes in the structure increase the production of granulation tissue. J. Biomed. Mater. Res. 32: 439–446. [INFOTRIEVE], [CSA], [CROSSREF]

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.