Araştırma Makalesi
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Yıl 2018, Cilt: 46 Sayı: 3, 365 - 372, 01.09.2018

Öz

Kaynakça

  • P. Fajardo, J. Martins, C. Fuciños, L. Pastrana, J. Teixeira, and A. Vicente, Evaluation of a chitosanbased edible film as carrier of natamycin to improve the storability of Saloio cheese, J. Food. Eng., 101 (2010) 349-356.
  • M. Syakir, N. Nurin, N. Zafirah, M. A. Kassim, and H. A. Khalil, Nanoclay reinforced on biodegradable polymer composites: potential as a soil stabilizer, in nanoclay reinforced polymer composites, (2016), Springer. 329-356.
  • M.S. Eroglu, E. Toksoy Oner, E. Cansever Mutlu, and M. Sennaroglu Bostan, Sugar based biopolymers in nanomedicine; new emerging era for cancer imaging and therapy, Curr. Top. Med. Chem., 17 (2017) 1507- 1520.
  • F. Al Sagheer, M. Al-Sughayer, S. Muslim, and M. Z. Elsabee, Extraction and characterization of chitin and chitosan from marine sources in Arabian Gulf, Carbohyd. Polym., 77 (2009) 410-419.
  • R.C.F. Cheung, T.B. Ng, J.H. Wong, and W.Y. Chan, Chitosan: an update on potential biomedical and pharmaceutical applications, Mar. Drugs., 13 (2015) 5156-5186
  • A. Varma, S. Deshpande, and J. Kennedy, Metal complexation by chitosan and its derivatives: a review, Carbohyd. Polym., 55 (2004) 77-93.
  • E. Guibal, T. Vincent, and R. Navarro, Metal ion biosorption on chitosan for the synthesis of advanced materials, J. Mater. Sci., 49 (2014) 5505-5518.
  • I.A. Sogias, A.C. Williams, and V.V. Khutoryanskiy, Why is chitosan mucoadhesive?, Biomacromolecules, 9 (2008) 1837-1842.
  • M.S. Bostan, M. Senol, T. Cig, I. Peker, A. C. Goren, T. Ozturk, and M. S. Eroglu, Controlled release of 5-aminosalicylicacid from chitosan based pH and temperature sensitive hydrogels, Int. J. Biol. Macromol., 52 (2013) 177-183.
  • T. Noguchi, B. Roy, D. Yoshihara, J. Sakamoto, T. Yamamoto, and S. Shinkai, Emergent molecular recognition through self assembly: unexpected selectivity for hyaluronic acid among glycosaminoglycans, Angewandte Chemie International Edition, 55 (2016) 5708-5712.
  • M.N. Collins and C. Birkinshaw, Hyaluronic acid based scaffolds for tissue engineering—A review, Carbohyd. Polym., 92 (2013) 1262-1279.
  • K. Lewandowska, A. Sionkowska, S. Grabska, and B. Kaczmarek, Surface and thermal properties of collagen/hyaluronic acid blends containing chitosan, Int. J. Biol. Macromol., 92 (2016) 371-376.
  • K. Lewandowska, A. Sionkowska, and S. Grabska, Chitosan blends containing hyaluronic acid and collagen. Compatibility behaviour, J. Mol. Liq., 212 (2015) 879-884.
  • L. Mayol, D. De Stefano, F. De Falco, R. Carnuccio, M. C. Maiuri, and G. De Rosa, Effect of hyaluronic acid on the thermogelation and biocompatibility of its blends with methyl cellulose, Carbohyd. Polym., 112 (2014) 480-485.
  • N.V. Rao, H.Y. Yoon, H.S. Han, H. Ko, S. Son, M. Lee, H. Lee, D.G. Jo, Y.M. Kang, and J.H. Park, Recent developments in hyaluronic acid-based nanomedicine for targeted cancer treatment, Expert. Opin. Drug. Del., 13 (2016) 239-252.
  • J.P. Berezney and O.A. Saleh, Electrostatic effects on the conformation and elasticity of hyaluronic acid, a moderately flexible polyelectrolyte, Macromolecules, 50 (2017) 1085-1089.
  • G. Lalevée, G. Sudre, A. Montembault, J. Meadows, S. Malaise, A. Crépet, L. David, and T. Delair, Polyelectrolyte complexes via desalting mixtures of hyaluronic acid and chitosan—Physicochemical study and structural analysis, Carbohyd. Polym., 154 (2016) 86-95.
  • N. E. Muzzio, M. A. Pasquale, E. Diamanti, D. Gregurec, M. M. Moro, O. Azzaroni, and S. E. Moya, Enhanced antiadhesive properties of chitosan/hyaluronic acid polyelectrolyte multilayers driven by thermal annealing: Low adherence for mammalian cells and selective decrease in adhesion for Gram-positive bacteria, Mater. Sci. Eng. C, 80 (2017) 677-687.
  • G. Kogan, L. Šoltés, R. Stern, and P. Gemeiner, Hyaluronic acid: a natural biopolymer with a broad range of biomedical and industrial applications, Biotechnol. Lett., 29 (2007) 17-25.
  • J. D. Đoki , A. Kojovi , D. Stojanovi , A. Marinkovi , G. Vukovi , R. Aleksi , and P. S. Uskokovi , Processing and nanomechanical properties of chitosan/ polyethylene oxide blend films, J. Serb. Chem. Soc., 77 (2012) 1723-1733.
  • M. S. Bostan, E. C. Mutlu, H. Kazak, S. S. Keskin, E. T. Oner, and M. S. Eroglu, Comprehensive characterization of chitosan/PEO/levan ternary blend films, Carbohyd. Polym., 102 (2014) 993-1000.
  • H. Wang, J. K. Keum, A. Hiltner, E. Baer, B. Freeman, A. Rozanski, and A. Galeski, Confined crystallization of polyethylene oxide in nanolayer assemblies, Science, 323 (2009) 757-760.
  • T. Doussineau, M. Kerleroux, X. Dagany, C. Clavier, M. Barbaire, J. Maurelli, R. Antoine, and P. Dugourd, Charging megadalton poly(ethylene oxide)s by electrospray ionization. A charge detection mass spectrometry study, Rapid. Commun. Mass. Sp., 25 (2011) 617-623.
  • V. Guarino, M. Marrese, and L. Ambrosio, Chemical and physical properties of polymers for biomedical use, in advanced polymers in medicine. (2015), Springer. 67-90.
  • S. Zivanovic, J. Li, P.M. Davidson, and K. Kit, Physical, mechanical, and antibacterial properties of chitosan/ PEO blend films, Biomacromolecules, 8 (2007) 1505- 1510.
  • S. Bonardd, M. Schmidt, M. Saavedra-Torres, A. Leiva, D. Radic, and C. Saldías, Thermal and morphological behavior of chitosan/PEO blends containing gold nanoparticles. Experimental and theoretical studies, Carbohyd. Polym., 144 (2016) 315-329.
  • J. Li, S. Zivanovic, P. Davidson, and K. Kit, Production and characterization of thick, thin and ultra-thin chitosan/PEO films, Carbohyd. Polym., 83 (2011) 375- 382.
  • W. Zhao, L. Yu, X. Zhong, Y. Zhang, and J. Sun, The compatibility and morphology of chitosan-poly (ethylene oxide) blends, J. Macromol. Sci. B., 34 (1995) 231-237.

Improved Morphology and Biocompatibility of Chitosan/PEO Casting Films Adding Hyaluronic Acid

Yıl 2018, Cilt: 46 Sayı: 3, 365 - 372, 01.09.2018

Öz

Biopolymer-based blends can be used within the form of cast film in various proportions with polyethylene
oxide (PEO) in order to obtain more durable and biocompatible surfaces. Chitosan and hyaluronic acid (HA)
are the most used biocompatible biopolymers for the production of films. On the other hand, as a synthetic
polymer, PEO has been mostly used to improve durability of the surfaces by using in various molecular weights.
This study was carried out to determine the effect of HA on the chitosan and PEO biopolymer blends different
from reported Chitosan/PEO film surfaces in the literature. FTIR studies presented no any polycationic amine
groups belong to chitosan through the surface of four films in different compositions after casting. Surface
morphology were determined by SEM, EDS and polarized microscopy analyses. Surface morphology was observed
as well-oriented spherulitic crystallization by the increasing amount of PEO in the films. Astonishingly,
it was proven that HA improved the biocompatibility feature of PEO-rich surfaces which were tested by using
healthy mouse fibroblast cell lines, L929 (ATCC CCL-1).

Kaynakça

  • P. Fajardo, J. Martins, C. Fuciños, L. Pastrana, J. Teixeira, and A. Vicente, Evaluation of a chitosanbased edible film as carrier of natamycin to improve the storability of Saloio cheese, J. Food. Eng., 101 (2010) 349-356.
  • M. Syakir, N. Nurin, N. Zafirah, M. A. Kassim, and H. A. Khalil, Nanoclay reinforced on biodegradable polymer composites: potential as a soil stabilizer, in nanoclay reinforced polymer composites, (2016), Springer. 329-356.
  • M.S. Eroglu, E. Toksoy Oner, E. Cansever Mutlu, and M. Sennaroglu Bostan, Sugar based biopolymers in nanomedicine; new emerging era for cancer imaging and therapy, Curr. Top. Med. Chem., 17 (2017) 1507- 1520.
  • F. Al Sagheer, M. Al-Sughayer, S. Muslim, and M. Z. Elsabee, Extraction and characterization of chitin and chitosan from marine sources in Arabian Gulf, Carbohyd. Polym., 77 (2009) 410-419.
  • R.C.F. Cheung, T.B. Ng, J.H. Wong, and W.Y. Chan, Chitosan: an update on potential biomedical and pharmaceutical applications, Mar. Drugs., 13 (2015) 5156-5186
  • A. Varma, S. Deshpande, and J. Kennedy, Metal complexation by chitosan and its derivatives: a review, Carbohyd. Polym., 55 (2004) 77-93.
  • E. Guibal, T. Vincent, and R. Navarro, Metal ion biosorption on chitosan for the synthesis of advanced materials, J. Mater. Sci., 49 (2014) 5505-5518.
  • I.A. Sogias, A.C. Williams, and V.V. Khutoryanskiy, Why is chitosan mucoadhesive?, Biomacromolecules, 9 (2008) 1837-1842.
  • M.S. Bostan, M. Senol, T. Cig, I. Peker, A. C. Goren, T. Ozturk, and M. S. Eroglu, Controlled release of 5-aminosalicylicacid from chitosan based pH and temperature sensitive hydrogels, Int. J. Biol. Macromol., 52 (2013) 177-183.
  • T. Noguchi, B. Roy, D. Yoshihara, J. Sakamoto, T. Yamamoto, and S. Shinkai, Emergent molecular recognition through self assembly: unexpected selectivity for hyaluronic acid among glycosaminoglycans, Angewandte Chemie International Edition, 55 (2016) 5708-5712.
  • M.N. Collins and C. Birkinshaw, Hyaluronic acid based scaffolds for tissue engineering—A review, Carbohyd. Polym., 92 (2013) 1262-1279.
  • K. Lewandowska, A. Sionkowska, S. Grabska, and B. Kaczmarek, Surface and thermal properties of collagen/hyaluronic acid blends containing chitosan, Int. J. Biol. Macromol., 92 (2016) 371-376.
  • K. Lewandowska, A. Sionkowska, and S. Grabska, Chitosan blends containing hyaluronic acid and collagen. Compatibility behaviour, J. Mol. Liq., 212 (2015) 879-884.
  • L. Mayol, D. De Stefano, F. De Falco, R. Carnuccio, M. C. Maiuri, and G. De Rosa, Effect of hyaluronic acid on the thermogelation and biocompatibility of its blends with methyl cellulose, Carbohyd. Polym., 112 (2014) 480-485.
  • N.V. Rao, H.Y. Yoon, H.S. Han, H. Ko, S. Son, M. Lee, H. Lee, D.G. Jo, Y.M. Kang, and J.H. Park, Recent developments in hyaluronic acid-based nanomedicine for targeted cancer treatment, Expert. Opin. Drug. Del., 13 (2016) 239-252.
  • J.P. Berezney and O.A. Saleh, Electrostatic effects on the conformation and elasticity of hyaluronic acid, a moderately flexible polyelectrolyte, Macromolecules, 50 (2017) 1085-1089.
  • G. Lalevée, G. Sudre, A. Montembault, J. Meadows, S. Malaise, A. Crépet, L. David, and T. Delair, Polyelectrolyte complexes via desalting mixtures of hyaluronic acid and chitosan—Physicochemical study and structural analysis, Carbohyd. Polym., 154 (2016) 86-95.
  • N. E. Muzzio, M. A. Pasquale, E. Diamanti, D. Gregurec, M. M. Moro, O. Azzaroni, and S. E. Moya, Enhanced antiadhesive properties of chitosan/hyaluronic acid polyelectrolyte multilayers driven by thermal annealing: Low adherence for mammalian cells and selective decrease in adhesion for Gram-positive bacteria, Mater. Sci. Eng. C, 80 (2017) 677-687.
  • G. Kogan, L. Šoltés, R. Stern, and P. Gemeiner, Hyaluronic acid: a natural biopolymer with a broad range of biomedical and industrial applications, Biotechnol. Lett., 29 (2007) 17-25.
  • J. D. Đoki , A. Kojovi , D. Stojanovi , A. Marinkovi , G. Vukovi , R. Aleksi , and P. S. Uskokovi , Processing and nanomechanical properties of chitosan/ polyethylene oxide blend films, J. Serb. Chem. Soc., 77 (2012) 1723-1733.
  • M. S. Bostan, E. C. Mutlu, H. Kazak, S. S. Keskin, E. T. Oner, and M. S. Eroglu, Comprehensive characterization of chitosan/PEO/levan ternary blend films, Carbohyd. Polym., 102 (2014) 993-1000.
  • H. Wang, J. K. Keum, A. Hiltner, E. Baer, B. Freeman, A. Rozanski, and A. Galeski, Confined crystallization of polyethylene oxide in nanolayer assemblies, Science, 323 (2009) 757-760.
  • T. Doussineau, M. Kerleroux, X. Dagany, C. Clavier, M. Barbaire, J. Maurelli, R. Antoine, and P. Dugourd, Charging megadalton poly(ethylene oxide)s by electrospray ionization. A charge detection mass spectrometry study, Rapid. Commun. Mass. Sp., 25 (2011) 617-623.
  • V. Guarino, M. Marrese, and L. Ambrosio, Chemical and physical properties of polymers for biomedical use, in advanced polymers in medicine. (2015), Springer. 67-90.
  • S. Zivanovic, J. Li, P.M. Davidson, and K. Kit, Physical, mechanical, and antibacterial properties of chitosan/ PEO blend films, Biomacromolecules, 8 (2007) 1505- 1510.
  • S. Bonardd, M. Schmidt, M. Saavedra-Torres, A. Leiva, D. Radic, and C. Saldías, Thermal and morphological behavior of chitosan/PEO blends containing gold nanoparticles. Experimental and theoretical studies, Carbohyd. Polym., 144 (2016) 315-329.
  • J. Li, S. Zivanovic, P. Davidson, and K. Kit, Production and characterization of thick, thin and ultra-thin chitosan/PEO films, Carbohyd. Polym., 83 (2011) 375- 382.
  • W. Zhao, L. Yu, X. Zhong, Y. Zhang, and J. Sun, The compatibility and morphology of chitosan-poly (ethylene oxide) blends, J. Macromol. Sci. B., 34 (1995) 231-237.
Toplam 28 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Bölüm Articles
Yazarlar

Esra Cansever Mutlu Bu kişi benim

Muhammet Yıldırım Bu kişi benim

Yayımlanma Tarihi 1 Eylül 2018
Kabul Tarihi 6 Temmuz 2018
Yayımlandığı Sayı Yıl 2018 Cilt: 46 Sayı: 3

Kaynak Göster

APA Mutlu, E. C., & Yıldırım, M. (2018). Improved Morphology and Biocompatibility of Chitosan/PEO Casting Films Adding Hyaluronic Acid. Hacettepe Journal of Biology and Chemistry, 46(3), 365-372.
AMA Mutlu EC, Yıldırım M. Improved Morphology and Biocompatibility of Chitosan/PEO Casting Films Adding Hyaluronic Acid. HJBC. Eylül 2018;46(3):365-372.
Chicago Mutlu, Esra Cansever, ve Muhammet Yıldırım. “Improved Morphology and Biocompatibility of Chitosan/PEO Casting Films Adding Hyaluronic Acid”. Hacettepe Journal of Biology and Chemistry 46, sy. 3 (Eylül 2018): 365-72.
EndNote Mutlu EC, Yıldırım M (01 Eylül 2018) Improved Morphology and Biocompatibility of Chitosan/PEO Casting Films Adding Hyaluronic Acid. Hacettepe Journal of Biology and Chemistry 46 3 365–372.
IEEE E. C. Mutlu ve M. Yıldırım, “Improved Morphology and Biocompatibility of Chitosan/PEO Casting Films Adding Hyaluronic Acid”, HJBC, c. 46, sy. 3, ss. 365–372, 2018.
ISNAD Mutlu, Esra Cansever - Yıldırım, Muhammet. “Improved Morphology and Biocompatibility of Chitosan/PEO Casting Films Adding Hyaluronic Acid”. Hacettepe Journal of Biology and Chemistry 46/3 (Eylül 2018), 365-372.
JAMA Mutlu EC, Yıldırım M. Improved Morphology and Biocompatibility of Chitosan/PEO Casting Films Adding Hyaluronic Acid. HJBC. 2018;46:365–372.
MLA Mutlu, Esra Cansever ve Muhammet Yıldırım. “Improved Morphology and Biocompatibility of Chitosan/PEO Casting Films Adding Hyaluronic Acid”. Hacettepe Journal of Biology and Chemistry, c. 46, sy. 3, 2018, ss. 365-72.
Vancouver Mutlu EC, Yıldırım M. Improved Morphology and Biocompatibility of Chitosan/PEO Casting Films Adding Hyaluronic Acid. HJBC. 2018;46(3):365-72.

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