Azzaoui, K., A. Lamhamdi, E. M. Mejdoubi, M. Berrabah, B. Hammouti, A. Elidrissi, M. M. G. Fouda, and S. S. Al-Deyab. Synthesis and characterization of composite based on cellulose acetate and hydroxyapatite application to the absorption of harmful substances. Carbohydr. Polym. 111:41–46, 2014.
Bacakova, L., E. Filova, M. Parizek, T. Ruml, and V. Svorcik. Modulation of cell adhesion, proliferation and differentiation on materials designed for body implants. Biotech. Adv. 29:739–767, 2011.
Bose, S., and S. Tarafder. Calcium phosphate ceramic systems in growth factor and drug delivery for bone tissue engineering: a review. Acta Biomater. 8:1401–1421, 2012.
[+]
Azzaoui, K., A. Lamhamdi, E. M. Mejdoubi, M. Berrabah, B. Hammouti, A. Elidrissi, M. M. G. Fouda, and S. S. Al-Deyab. Synthesis and characterization of composite based on cellulose acetate and hydroxyapatite application to the absorption of harmful substances. Carbohydr. Polym. 111:41–46, 2014.
Bacakova, L., E. Filova, M. Parizek, T. Ruml, and V. Svorcik. Modulation of cell adhesion, proliferation and differentiation on materials designed for body implants. Biotech. Adv. 29:739–767, 2011.
Bose, S., and S. Tarafder. Calcium phosphate ceramic systems in growth factor and drug delivery for bone tissue engineering: a review. Acta Biomater. 8:1401–1421, 2012.
Chan, B. P., and K. W. Leong. Scaffolding in tissue engineering: general approaches and tissue-specific considerations. Eur. Spine J. 17:467–479, 2008.
Dhandayuthapani, B., Y. Yoshida, T. Maekawa, and D. S. Kumar. Polymeric scaffolds in tissue engineering application: a review. Int. J. Polym. Sci. 1–19:2011, 2011.
Dorozhkin, S. V. Calcium orthophosphate-based bioceramics. Materials 6:3840–3942, 2013.
Frohbergh, M. E., A. Katsman, G. P. Botta, P. Lazarovici, C. L. Schauer, U. G. K. Wegst, and P. I. Lelkes. Electrospun hydroxyapatite-containing chitosan nanofibers crosslinked with genipin for bone tissue engineering. Biomaterials 33:9167–9178, 2012.
Gerstenfeld, L. C., C. M. Edgar, S. Kakar, K. A. Jacobsen, and T. A. Einhorn. Osteogenic growth factors and cytokines and their role in bone repair. In: Engineering of Functional Skeletal Tissues, in Topics in Bone Biology, edited by M. C. Farach-Carson, A. G. Mikos, and F. Bronner. London: Springer, 2005, pp. 17–44.
Harada, S.-I., and G. A. Rodan. Control of osteoblast function and regulation of bone mass. Nature 423:349–355, 2003.
Ishihara, S., T. Matsumoto, T. Onoki, T. Sohmura, and A. Nakahira. New concept bioceramics composed of octacalcium phosphate (OCP) and dicarboxylic acid-intercalated OCP via hydrothermal hot-pressing. Mater. Sci. Eng. C 29:1885–1888, 2009.
Karageorgiou, V., and D. Kaplan. Porosity of 3D biomaterial scaffolds and osteogenesis. Biomaterials 26:5474–5491, 2005.
Kirkham, G.R., Cartmell, S.H. Genes and proteins involved in the regulation of osteogenesis. In: Topics in Tissue Engineering, edited by N. Ashammakhi, R.L. Reis, and E. Chiellini, R.R.E.C., 2007. pp. 1–22.
Lee, H., and G. H. Kim. Cryogenically fabricated three-dimensional chitosan scaffolds with pore size-controlled structures for biomedical applications. Carbohydr. Polym. 85:817–823, 2010.
Lewandowska, K. Miscibility and interactions in chitosan acetate/poly(Nvinylpyrrolidone) blends. Thermochim. Acta 517:90–97, 2011.
Li, J., D. Zhu, J. Yin, Y. Liu, F. Yao, and K. Yao. Formation of nano-hydroxyapatite cristal in situ in chitosan-pectin polyelectrolyte complex network. Mater. Sci. Eng. C 30:795–803, 2010.
Martel-Estrada, S. A., C. A. Martínez-Pérez, J. G. Chacón-Nava, P. E. García-Casillas, and I. Olivas-Armendariz. Synthesis and thermo-physical properties of chitosan/poly(dl-lactide-co-glycolide) composites prepared by thermally induced phase separation. Carbohydr. Polym. 81:775–783, 2010.
Martins, A. M., R. C. Pereira, I. B. Leonor, H. S. Azevedo, and R. L. Reis. Chitosan scaffolds incorporating lysozyme into CaP coatings produced by a biomimetic route: a novel concept for tissue engineering combining a self-regulated degradation system with in situ pore formation. Acta Biomater. 5:3328–3336, 2009.
Martins, A. M., M. I. Santos, H. S. Azevedo, P. B. Malafaya, and R. L. Reis. Natural origin scaffolds with in situ pore forming capability for bone tissue engineering applications. Acta Biomater. 5:1637–1645, 2008.
Mohamed, K. R., Z. M. El-Rashidy, and A. A. Salama. In vitro properties of nanohydroxyapatite/chitosan biocomposites. Ceram. Int. 37:3265–3271, 2011.
O’Brien, F. J. Biomaterials & scaffolds for tissue engineering. Mater. Today 14:88–95, 2011.
Osborn, J. F., and H. Newesely. The material science of calcium phosphate ceramics. Biomaterials 1:108–111, 1980.
Rogina, A., M. Ivanković, and H. Ivanković. Preparation and characterization of nano-hydroxyapatite within chitosan matrix. Mater. Sci. Eng. C 33:4539–4544, 2013.
Rogina, A., P. Rico, G. Gallego Ferrer, M. Ivanković, and H. Ivanković. Effect of in situ formed hydroxyapatite on microstructure of freeze-gelled chitosan-based biocomposite scaffolds. Eur. Polym. J. 68:278–287, 2015.
Sarem, M., F. Moztarzadeh, and M. Mozafari. How can genipin assist gelatin/carbohydrate chitosan scaffolds to act as replacements of load-bearing soft tissues? Carbohydr. Polym. 93:635–643, 2013.
Seibel, M. J. Biochemical markers of bone turnover part I: biochemistry and variability. Clin. Biochem. Rev 26:97–122, 2005.
Shaltout, A. A., M. A. Allam, and M. A. Moharram. FTIR spectroscopic, thermal and XRD characterization of hydroxyapatite from new natural sources. Spectrochim. Acta A 83:56–60, 2011.
Silva, S. S., S. M. Luna, M. E. Gomes, J. Benesch, I. Paskuleva, J. F. Mano, and R. L. Reis. Plasma surface modification of chitosan membranes: characterization and preliminary cell response studies. Macromol. Biosci. 8:568–576, 2007.
Stein, G. S., J. B. Lian, A. J. van Wijnen, J. L. Stein, M. Montecino, A. Javed, A. K. Zaidi, D. W. Young, J.-Y. Choi, and S. M. Pockwinse. Runx2 control of organization, assembly and activity of the regulatory machinery for skeletal gene expression. Oncogene 23:4315–4329, 2004.
Suvorova, E. I., F. Christensson, H. E. Lundager Madsen, and A. A. Chernov. Terrestrial and space-grown HAP and OCP crystals: effect of growth conditions on perfection and morphology. J. Cryst. Growth 186:262–274, 1998.
Suzuki, O. Interface of synthetic inorganic biomaterials and bone regeneration. Int. Congr. Ser. 1284:274–283, 2005.
Suzuki, O., S. Kamakura, T. Katagiri, M. Nakamura, B. Zhao, Y. Honda, and R. Kamijo. Bone formation enhanced by implanted octacalcium phosphate involving conversion into Ca-deficient hydroxyapatite. Biomaterials 27:2671–2681, 2006.
Wagoner Johnson, A. J., and B. A. Herschler. A review of the mechanical behavior of CaP and CaP/polymer composites for applications in bone replacement and repair. Acta Biomater. 7:16–30, 2011.
Wang, Y.-C., M.-C. Lin, D.-M. Wang, and H.-J. Hsieh. Fabrication of a novel porous PGA-chitosan hybrid matrix for tissue engineering. Biomaterials 24:1047–1057, 2003.
Yuan, N. Y., Y. A. Lin, M. H. Ho, D. M. Wang, J. Y. Lai, and H. J. Hsieh. Effect of the cooling mode on the structure and strength of porous scaffolds made of chitosan, alginate and carboxymethyl cellulose by freeze-gelation method. Carbohydr. Polym. 78:349–356, 2009.
[-]