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2016 | 21 | 176-186

Article title

STRUCTURAL RESEARCH OF THERMOSENSITIVE CHITOSAN-COLLAGEN GELS CONTAINING ALP

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EN

Abstracts

EN
Introducing collagen, which is basic ingredient of bone tissue, into the structure of chitosan gels which are formed at the physiological body temperature, is aimed at creating the so-called biomimetic structures, i.e. close in their composition to the natural composition of bone tissue. Within the research the influence of collagen on structural properties of thermosensitive chitosan gels and the influence of ALP on structural properties of chitosan and chitosan-collagen gels was determined.

Contributors

  • Department of Civil, Environmental Engineering and Architecture, Rzeszow University of Technology, Powstancow Warszawy 6, 35-959, Rzeszow, Poland
  • Institute of Textile Engineering and Polymer Materials, University of Bielsko-Biała, ul. Willowa 2, 43-309 Bielsko-Biała, Poland
  • Faculty of Process and Environmental Engineering, Technical University of Lodz, ul. Wolczanska 213, 90-924, Lodz, Poland

References

  • [1] Drury JL, Mooney DJ; (2003) Hydrogels for tissue engineering: scaffold design variables and applications, Biomaterials 24,4337-4351. DOI: 10.1016/S0142-9612(03)00340-5.
  • [2] Manju Rawat Singh, Satish Patel, Deependra Singh; (2016) Chapter 9 – Natural polymer-based hydrogels as scaffolds for tissue engineering, Nanobiomaterials in Soft Tissue Engineering Applications of Nanobiomaterials Vol.5, 231–260.
  • [3] Ward MA, Georgiou TK; (2011) Thermoresponsive Polymers for Biomedical Applications. Polymers. 3, 1215-1242. DOI: 10.3390/polym3031215.
  • [4] Ana Rita Costa-Pinto, Rui L. Reis, Nuno M. Neves (2011) Scaffolds Based Bone Tissue Engineering: The Role of Chitosan Tissue Engineering: Part B Volume 17, Number 5, Ş Mary Ann Liebert, Inc. DOI: 10.1089/ten.teb.2010.0704.
  • [5] Sivashanmugam R, Arun Kumar M, Vishnu Priya Shantikumar V, Nair Jayakumar R (2015) An overview of injectable polymeric hydrogels for tissue engineering European Polymer Journal, Volume 72, Pages 543-565.
  • [6] Venkatesan J, Vinodhini PA, Sudha PN, Kim SK (2014) Chitin and chitosan composites for bone tissue regeneration. Adv Food Nutr Res.73:59-81. DOI: 10.1016/B978-0-12-800268-1.00005-6.
  • [7] R. A. A. Muzzarelli, C. Muzzarelli (2005) Chitosan Chemistry: Relevance to the Biomedical Sciences Polysaccharides I Volume 186 of the series Advances in Polymer Science pp 151-209.
  • [8] Bojar W., Kucharska M., Ciach T., Koperski Ł., Jastrzebski Z., Szałwiński M. (2014) Bone regeneration potential of the new chitosan-based alloplastic biomaterial J Biomater Appl. 7:1060-8. DOI: 10.1177/0885328213493682. Epub 2013.
  • [9] Maria Mucha, Iwona Michalak, Jacek Balcerzak, Michał Tylman (2014) Chitosan scaffolds, films and microgranules for medical application preparation and drug release studies POLIMERY 2012, 57, nr 10 J Biomater Appl. (7):1060-8. DOI: 10.1177/0885328213493682.
  • [10] Modrzejewska Z., Korus I., Owczarz P. (2001) The effect of seasoning a membrane-forming solution on the separation properties of chitosan membranes. J. Membrane Science, 181, nr 2, 229-239. DOI: 10.1016/S0376-7388(00)00537-8.
  • [11] Janusz Adamiec, Zofia Modrzejewska (2005) Some structural properties of spray dried chitosan microgranules. Drying Technology, vol. 23, nr 8, s. 1601-1611.
  • [12] Jung-A Shin, Jung-Yoo Choi, Sung-Tae Kim, Chang-Sung Kim, Yong-Keun Lee, Kyoo-Sung Cho, Jung-Kiu Chai, Chong-Kwan Kim Seong-Ho Choi (2016) The Effects of Hydroxyapatite-Chitosan Membrane on Bone Regeneration in Rat Calvarial Defectshttps://www.researchgate.net/publication/250395532.
  • [13] Xin Ma, Zhiwei He, Fengxuan Han, Zhiyuan Zhong, Liang Chen, Bin Li (2016) Preparation of collagen/hydroxyapatite/alendronate hybrid hydrogels as potential scaffolds for bone regenerationColloids and Surfaces B: Biointerfaces, Volume 143, Pages 81-87.
  • [14] Kiyoshi Yamauchi, Tatsuya Goda, Nobuyuki Takeuchi, H Einaga, Toshizumi Tanabe (2004) Preparation of collagen/calcium phosphate multilayer sheet using enzymatic mineralization, Biomaterials, Volume 25, Issue 24, 5481-5489.
  • [15] Chenite A, Chaput C, Wang D, Combes C, Buschmann MD, Hoemann CD; (2000) Novel injectable neutral solutions of chitosan from biodegradable gels in situ. Biomaterials. 21, 2155-2161. DOI: 10.1016/S0142-9612(00)00116-2
  • [16] Maria Luiza S. Mello, Benedicto de Campos Vidal, (2011) Collagen type I amide I band infrared spectroscopy Micron, 42, 3, 283–289.
  • [17] Laurence de La Fournière, Olivier Nosjean, René Buchet, Bernard Roux (1995) Thermal and pH stabilities of alkaline phosphatase from bovine intestinal mucosa: a FTIR study Biochimica et Biophysica Acta (BBA) - Protein Structure and Molecular Enzymology, Volume 1248, Issue 2, Pages 186-192.
  • [18] B. Lendl, P Krieg, R Kellner (1998) Determination of alkaline phosphatase activity in human sera by mid-FTIR spectroscopy Fresenius' Journal of Analytical Chemistry, Volume 360, Issue 6, 717-720.

Document Type

article

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YADDA identifier

bwmeta1.element.psjd-ebad2279-4a77-4d1d-86a4-2309fe92a998
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