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In-Vitro Characterization of Antimicrobial Effect of Polyvinylimidazole

Yıl 2009, Cilt: 37 Sayı: 4, 353 - 357, 01.12.2009

Öz

The present study was devised to describe the effectiveness of degradable polymer polyvinylimidazole, PVI on microbial growth in-vitro. We observed the antimicrobial outcome of PVI on fungi and pathogen bacteria that are found in food-borne disease. The following pathogens and fungi examined were: Escherichia coli ATCC 35218 , Salmonella enteritidis ATCC 13076 , Staphylococcus aureus ATCC 33862 as bacterial organisms; Candida albicans, Kloeckera apiculata as yeast organisms; Aspergillus niger and Penicillium roqueforti as fungi. We utilized a plate count method with the test microorganisms. PVI, as a non-modified polymer, exhibited an inhibition effect on all test microorganisms. Currently there is only theoretical conjecture on the specific role PVI plays as an inhibition to food-borne fungi and pathogens. A comparison of the sensitivity of these microorganisms to PVI showed the greatest inhibitive effect was found with Kloeckera apiculata followed by Candida albicans. Both types of yeast completely died in 1 mg/mL concentration of PVI during 12-24 h treatments. Weaker activity is shown against Aspergillus niger and Penicillium roqueforti. These results were comparable with three different concentrations of PVI. The polymer was less effective, in a descending order, against Salmonella enteritidis, Escherichia coli and Staphylococcus aureus, respectively. Similar effects after 24 h incubation were observed R2=1 .

Kaynakça

  • 1. Quintavalla, S., Vicini, L., Antimicrobial food packaging in meat industry. Meat Sci., 62, 373-380, 2002.
  • 2. Rabea, E.I., Badawy, M.E.T., Stevens, C.V., Smagghe, G., Steurbaut, W. Chitosan as antimicrobial agent: applications and mode of action, Biomacromol., 4(6), 1457-1465, 2003.
  • 3. Kenawy, E.R., Worley, D., Broughton, R., The chemistry and applications of antimicrobial polymers: a state-of-theart review. Biomacromol., 8(5), 1359-1383, 2007.
  • 4. Zivanovic, S., Chi, S., Draughon, A.F. Antimicrobial activity of chitosan films enriched with essential oils. J Food Sci., 70(1), M45-M51, 2005.
  • 5. Elgayyar, M., Draughon, F.A., Golden, D.A., Mount, J.R., Antimicrobial activity of essential oils from plants against selected pathogenic and saprophytic microorganisms. J Food Prot., 64, 1019-1024, 2001.
  • 6. Dorman, H.J.D., Deans, S.G., Antimicrobial agents from plants: antibacterial activity of plant volatile oils, J. Appl. Microbiol., 88, 308–316, 2000.
  • 7. Burt, S.A., Reinders, R.D., Antibacterial activity of selected plant essential oils against Espherichia coli 0157:H7, Lett. Appl. Microbiol., 36(3), 162-167, 2003.
  • 8. Böhmer, M., Heesterbeek, W.H.A., Deratani, A., Renard, E. Adsorption of partially quarternied poly(vinylimidazoles) onto SiO2 and Y2O3, Colloid. Surf. A: Physicochem. Eng. Aspects, 99, 53-64, 1995.
  • 9. Pekel, N., O. Güven, Investigation of complex formation between poly(N-vinyl imidazole) and various metal ions using the molar ratio method, Colloid Polym. Sci. 277, 570-573, 1999.
  • 10. Tekin, N., Kadıncı, E., Demirbaş, Ö., Alkan, M., Kara, A., Doğan, M., Surface properties of poly(vinylimidazole)- adsorbed expanded perlite, Micropor. Mesopor. Mater. 93,125-133, 2006.
  • 11. Anonymous. Aerobic colony count by pour plate method. HPA Standard Method. Standards Unit, Evaluations and Standards Laboratory in Conjunction with the Reginal Food, Water and Environmental Coordinators Forum. Issue 4.2, p14, 2008.
  • 12. Kenawy, E.R., Abdel-Hay, F.I., El-Magd, A.A., Mahmoud, Y. Biologically active polymers: VII. Synthesis and antimicrobial activity of some crosslinked copolymers with quaternary ammonium and phosphonium groups. React. Functl. Polym., 66, 419-429, 2006.
  • 13. Meng, N., Zhou, N.L., Zhang, S.Q., Shen, J. Synthesis and antifungal activities of polymer/montmorilloniteterbinafine hydrochloride nanocomposite films. Appl. Clay Sci., 46, 136-140, 2009.
  • 14. Tiller J.C., Liao C.J., Lewis K., Klibanov, A.M. Designing surfaces that kill bacteria on contact. PNAS, USA, 98, 5981-5985, 2001.
  • 15. Hu, F.X., Neoh, K.G., Cen, L., Kang E.T. Antibacterial and antifungal efficacy of surface functionalized polymeric beads in repeated applications. Biotechnol. Bioeng., 89(4), 474-484, 2005.
  • 16. Kapadia, M.A., Patel, M.M., Joshi, J.D. Coordination polymers of Ln(III): Synthesis, characterization, catalytic and antimicrobial aspects. Inorg. Chim. Acta, 362, 3292- 3298, 2009.
  • 17. Ziani, K., Fernandez-Pan, I., Royo, M., Mate, J.I. Antifungal activity of films and solutions based on chitosan against typical seed fungi. Food Hydrocolloids 23, 2309-2314, 2009.
  • 18. Sebti, I., Martial-Gros, A., Carnet-Pantiez, A., Grelier, S., Coma, V. Chitosan polymer as bioactive coating and film against Aspergillus niger contamination. J. Food Sci., 70(2), 100-104, 2005.
  • 19. Plascencia-Jatomea, M., Viniegra, G., Olayo, R., CastilloOrtega, M. M., Shirai, K. Effect of chitosan and temperature on spore germination of Aspergillus niger. Macromol. Biosci., 3, 582-586, 2003.
  • 20. Agullo, E., Rodriguez, M.S., Ramos,V., Albertengo, L. Present and future role of chitin and chitosan in food. Macromol. Biosci., 10, 521-530, 2003
Yıl 2009, Cilt: 37 Sayı: 4, 353 - 357, 01.12.2009

Öz

Kaynakça

  • 1. Quintavalla, S., Vicini, L., Antimicrobial food packaging in meat industry. Meat Sci., 62, 373-380, 2002.
  • 2. Rabea, E.I., Badawy, M.E.T., Stevens, C.V., Smagghe, G., Steurbaut, W. Chitosan as antimicrobial agent: applications and mode of action, Biomacromol., 4(6), 1457-1465, 2003.
  • 3. Kenawy, E.R., Worley, D., Broughton, R., The chemistry and applications of antimicrobial polymers: a state-of-theart review. Biomacromol., 8(5), 1359-1383, 2007.
  • 4. Zivanovic, S., Chi, S., Draughon, A.F. Antimicrobial activity of chitosan films enriched with essential oils. J Food Sci., 70(1), M45-M51, 2005.
  • 5. Elgayyar, M., Draughon, F.A., Golden, D.A., Mount, J.R., Antimicrobial activity of essential oils from plants against selected pathogenic and saprophytic microorganisms. J Food Prot., 64, 1019-1024, 2001.
  • 6. Dorman, H.J.D., Deans, S.G., Antimicrobial agents from plants: antibacterial activity of plant volatile oils, J. Appl. Microbiol., 88, 308–316, 2000.
  • 7. Burt, S.A., Reinders, R.D., Antibacterial activity of selected plant essential oils against Espherichia coli 0157:H7, Lett. Appl. Microbiol., 36(3), 162-167, 2003.
  • 8. Böhmer, M., Heesterbeek, W.H.A., Deratani, A., Renard, E. Adsorption of partially quarternied poly(vinylimidazoles) onto SiO2 and Y2O3, Colloid. Surf. A: Physicochem. Eng. Aspects, 99, 53-64, 1995.
  • 9. Pekel, N., O. Güven, Investigation of complex formation between poly(N-vinyl imidazole) and various metal ions using the molar ratio method, Colloid Polym. Sci. 277, 570-573, 1999.
  • 10. Tekin, N., Kadıncı, E., Demirbaş, Ö., Alkan, M., Kara, A., Doğan, M., Surface properties of poly(vinylimidazole)- adsorbed expanded perlite, Micropor. Mesopor. Mater. 93,125-133, 2006.
  • 11. Anonymous. Aerobic colony count by pour plate method. HPA Standard Method. Standards Unit, Evaluations and Standards Laboratory in Conjunction with the Reginal Food, Water and Environmental Coordinators Forum. Issue 4.2, p14, 2008.
  • 12. Kenawy, E.R., Abdel-Hay, F.I., El-Magd, A.A., Mahmoud, Y. Biologically active polymers: VII. Synthesis and antimicrobial activity of some crosslinked copolymers with quaternary ammonium and phosphonium groups. React. Functl. Polym., 66, 419-429, 2006.
  • 13. Meng, N., Zhou, N.L., Zhang, S.Q., Shen, J. Synthesis and antifungal activities of polymer/montmorilloniteterbinafine hydrochloride nanocomposite films. Appl. Clay Sci., 46, 136-140, 2009.
  • 14. Tiller J.C., Liao C.J., Lewis K., Klibanov, A.M. Designing surfaces that kill bacteria on contact. PNAS, USA, 98, 5981-5985, 2001.
  • 15. Hu, F.X., Neoh, K.G., Cen, L., Kang E.T. Antibacterial and antifungal efficacy of surface functionalized polymeric beads in repeated applications. Biotechnol. Bioeng., 89(4), 474-484, 2005.
  • 16. Kapadia, M.A., Patel, M.M., Joshi, J.D. Coordination polymers of Ln(III): Synthesis, characterization, catalytic and antimicrobial aspects. Inorg. Chim. Acta, 362, 3292- 3298, 2009.
  • 17. Ziani, K., Fernandez-Pan, I., Royo, M., Mate, J.I. Antifungal activity of films and solutions based on chitosan against typical seed fungi. Food Hydrocolloids 23, 2309-2314, 2009.
  • 18. Sebti, I., Martial-Gros, A., Carnet-Pantiez, A., Grelier, S., Coma, V. Chitosan polymer as bioactive coating and film against Aspergillus niger contamination. J. Food Sci., 70(2), 100-104, 2005.
  • 19. Plascencia-Jatomea, M., Viniegra, G., Olayo, R., CastilloOrtega, M. M., Shirai, K. Effect of chitosan and temperature on spore germination of Aspergillus niger. Macromol. Biosci., 3, 582-586, 2003.
  • 20. Agullo, E., Rodriguez, M.S., Ramos,V., Albertengo, L. Present and future role of chitin and chitosan in food. Macromol. Biosci., 10, 521-530, 2003
Toplam 20 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Bölüm Research Article
Yazarlar

Ozan Gurbuz Bu kişi benim

Yasemin Sahan Bu kişi benim

Ali Kara Bu kişi benim

Bilgen Osman Bu kişi benim

Yayımlanma Tarihi 1 Aralık 2009
Yayımlandığı Sayı Yıl 2009 Cilt: 37 Sayı: 4

Kaynak Göster

APA Gurbuz, O., Sahan, Y., Kara, A., Osman, B. (2009). In-Vitro Characterization of Antimicrobial Effect of Polyvinylimidazole. Hacettepe Journal of Biology and Chemistry, 37(4), 353-357.
AMA Gurbuz O, Sahan Y, Kara A, Osman B. In-Vitro Characterization of Antimicrobial Effect of Polyvinylimidazole. HJBC. Aralık 2009;37(4):353-357.
Chicago Gurbuz, Ozan, Yasemin Sahan, Ali Kara, ve Bilgen Osman. “In-Vitro Characterization of Antimicrobial Effect of Polyvinylimidazole”. Hacettepe Journal of Biology and Chemistry 37, sy. 4 (Aralık 2009): 353-57.
EndNote Gurbuz O, Sahan Y, Kara A, Osman B (01 Aralık 2009) In-Vitro Characterization of Antimicrobial Effect of Polyvinylimidazole. Hacettepe Journal of Biology and Chemistry 37 4 353–357.
IEEE O. Gurbuz, Y. Sahan, A. Kara, ve B. Osman, “In-Vitro Characterization of Antimicrobial Effect of Polyvinylimidazole”, HJBC, c. 37, sy. 4, ss. 353–357, 2009.
ISNAD Gurbuz, Ozan vd. “In-Vitro Characterization of Antimicrobial Effect of Polyvinylimidazole”. Hacettepe Journal of Biology and Chemistry 37/4 (Aralık 2009), 353-357.
JAMA Gurbuz O, Sahan Y, Kara A, Osman B. In-Vitro Characterization of Antimicrobial Effect of Polyvinylimidazole. HJBC. 2009;37:353–357.
MLA Gurbuz, Ozan vd. “In-Vitro Characterization of Antimicrobial Effect of Polyvinylimidazole”. Hacettepe Journal of Biology and Chemistry, c. 37, sy. 4, 2009, ss. 353-7.
Vancouver Gurbuz O, Sahan Y, Kara A, Osman B. In-Vitro Characterization of Antimicrobial Effect of Polyvinylimidazole. HJBC. 2009;37(4):353-7.

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