INVESTIGATION OF ANTIBACTERIAL PROPERTIES OF HYDROGEL CONTAINING SYNTHESIZED TiO2 NANOPARTICLES
Yıl 2015,
Cilt: 33 Sayı: 1, 1 - 7, 01.03.2015
Arzu Palantöken
Müge Sarı Yılmaz
Melda Altıkatoğlu Yapaöz
Sabriye Pişkin
Öz
In the present study, we prepared hydrogel containing synthesized TiO2 nanoparticles to investigate the antibacterial properties of these hydrogels. TiO2 nanoparticles were synthesized by a sonochemical method. The TiO2 containing hydrogel was characterized using thermogravimetry (TG) and Fourier transform infrared spectroscopy (FTIR) techniques. The antibacterial activities of the hydrogels against Escherichia coli were measured by the airborne testing and modified Kirby Bauer disk diffusion method. Finally, we demonstrated the presence of antibacterial activity in the hydrogel containing synthesized TiO2 nanoparticles.
Kaynakça
- [1] Morones, J. R. , Elechiguerra J. L., Camacho A., et.al. , “The Bactericidal Effect of Silver Nanoparticles”, Nanotechnology 16:2346–2353, 2005.
- [2] Suri S.S., Fenniri H., Singh B., “Nanotechnology-Based Drug Delivery Systems”, J. Occup. Med. Toxicol., 2 16, 2007.
- [3] Stoimenov P.K., Klinger R.L., Marchin G.L., “Metaloxide Nanoparticles as Bactericidal Agents”, Langmuir; 18 (17), 6679-6686, 2002.
- [4] Ravikumar S., Gokulakrishnan R., Selvanathan K., et.al., “Antibacterial Activity of Metal Oxide Nanoparticles Against Ophthalmic Pathogens”, Int. J. Pharm. Res. Dev., 3(5), 122-127, 2011.
- [5] Rajendra R., Balakumar C., Ahammed H.A.M, et.al. “Use of Zinc Oxide Nanoparticles for Production of Antimicrobial Textiles”, Int. J. Eng. Sci. Tech., 2(1), 202-208, 2010.
- [6] Padmavathy N., Vijayaraghavan R., “Enhanced Bioactivity of ZnO Nanoparticles an Antimicrobial Study”, Sci Tech. Adv.Mater, 9, 03500 7pp, 2008.
- [7] Hosseinkhani P., Zand A.M., Imani S., et.al., “Determining the Antibacterial Effect of ZnO Nanoparticle Against the Pathogenic Bacterium, Shigella dysenteriae (type 1)”, Int. J. Nano. Dim., 1(4), 279-285, 2011.
- [8] Sunita J., Suresh G., Madhav N., et.al., “Copper Oxide Nanoparticles: Synthesis, Characterization and Their Antibacterial Activity”, J. Clust. Sci.,; 22(2), 121-129, 2011.
- [9] Kiss B., Biro T., Czifra G., et. al., “Investigation of Micronized Titanium Dioxide Penetration in Human Skin Xenografts and its Effect on Cellular Functions of Human Skin-Derived Cells”, Exp.
Dermatol., 17, 659-667, 2008.
- [10] Kasap S., Tel H., Piskin S., “Preparation of TiO2 Nanoparticles by Sonochemical Method, Isotherm, Thermodynamic and Kinetic Studies on the Sorption of Strontium”, J. Radioanal. Nucl. Ch., vol.289, pp.489-495, 2011.
- [11] Pişkin S., Palantöken A.,Yılmaz Sari M., “Antimicrobial Activity of Synthesized TiO2 Nanoparticles”, International Conference on Emerging Trends in Engineering and Technology (ICETET'2013), Phuket,
Thailand, December, 2013, 91-94.
- [12] Herigstad B., Hamilton M., Heersink J., “How to optimize the drop plate methods for enumerating bacteria”, J. Microbiol. Meth., 44, (2), 121-129, 2001.
- [13] Özeroglu C., Birdal A., “Swelling Properties of Acrylamide-N,N′-methylenebis(acrylamide) Hydrogels Synthesized by Using Meso-2,3-dimercaptosuccinic acid-cerium(IV) Redox Couple”, eXPRESS Polymer Letters, 3, 3,168–176, 2009.
- [14] Magalhães A. S. G., Neto M.P.A., Bezerra M.N., et. al., “Application of FTIR in the Determination of Acrylate Content in Poly(sodium acrylate-co-acrylamide) Superabsorbent Hydrogels”, Quim. Nova, 35, 7, 1464-1467, 2012.
Yıl 2015,
Cilt: 33 Sayı: 1, 1 - 7, 01.03.2015
Arzu Palantöken
Müge Sarı Yılmaz
Melda Altıkatoğlu Yapaöz
Sabriye Pişkin
Kaynakça
- [1] Morones, J. R. , Elechiguerra J. L., Camacho A., et.al. , “The Bactericidal Effect of Silver Nanoparticles”, Nanotechnology 16:2346–2353, 2005.
- [2] Suri S.S., Fenniri H., Singh B., “Nanotechnology-Based Drug Delivery Systems”, J. Occup. Med. Toxicol., 2 16, 2007.
- [3] Stoimenov P.K., Klinger R.L., Marchin G.L., “Metaloxide Nanoparticles as Bactericidal Agents”, Langmuir; 18 (17), 6679-6686, 2002.
- [4] Ravikumar S., Gokulakrishnan R., Selvanathan K., et.al., “Antibacterial Activity of Metal Oxide Nanoparticles Against Ophthalmic Pathogens”, Int. J. Pharm. Res. Dev., 3(5), 122-127, 2011.
- [5] Rajendra R., Balakumar C., Ahammed H.A.M, et.al. “Use of Zinc Oxide Nanoparticles for Production of Antimicrobial Textiles”, Int. J. Eng. Sci. Tech., 2(1), 202-208, 2010.
- [6] Padmavathy N., Vijayaraghavan R., “Enhanced Bioactivity of ZnO Nanoparticles an Antimicrobial Study”, Sci Tech. Adv.Mater, 9, 03500 7pp, 2008.
- [7] Hosseinkhani P., Zand A.M., Imani S., et.al., “Determining the Antibacterial Effect of ZnO Nanoparticle Against the Pathogenic Bacterium, Shigella dysenteriae (type 1)”, Int. J. Nano. Dim., 1(4), 279-285, 2011.
- [8] Sunita J., Suresh G., Madhav N., et.al., “Copper Oxide Nanoparticles: Synthesis, Characterization and Their Antibacterial Activity”, J. Clust. Sci.,; 22(2), 121-129, 2011.
- [9] Kiss B., Biro T., Czifra G., et. al., “Investigation of Micronized Titanium Dioxide Penetration in Human Skin Xenografts and its Effect on Cellular Functions of Human Skin-Derived Cells”, Exp.
Dermatol., 17, 659-667, 2008.
- [10] Kasap S., Tel H., Piskin S., “Preparation of TiO2 Nanoparticles by Sonochemical Method, Isotherm, Thermodynamic and Kinetic Studies on the Sorption of Strontium”, J. Radioanal. Nucl. Ch., vol.289, pp.489-495, 2011.
- [11] Pişkin S., Palantöken A.,Yılmaz Sari M., “Antimicrobial Activity of Synthesized TiO2 Nanoparticles”, International Conference on Emerging Trends in Engineering and Technology (ICETET'2013), Phuket,
Thailand, December, 2013, 91-94.
- [12] Herigstad B., Hamilton M., Heersink J., “How to optimize the drop plate methods for enumerating bacteria”, J. Microbiol. Meth., 44, (2), 121-129, 2001.
- [13] Özeroglu C., Birdal A., “Swelling Properties of Acrylamide-N,N′-methylenebis(acrylamide) Hydrogels Synthesized by Using Meso-2,3-dimercaptosuccinic acid-cerium(IV) Redox Couple”, eXPRESS Polymer Letters, 3, 3,168–176, 2009.
- [14] Magalhães A. S. G., Neto M.P.A., Bezerra M.N., et. al., “Application of FTIR in the Determination of Acrylate Content in Poly(sodium acrylate-co-acrylamide) Superabsorbent Hydrogels”, Quim. Nova, 35, 7, 1464-1467, 2012.