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Mikrobiyal biyosürfektanlar: Yüzey aktif bileşikler

Yıl 2015, Cilt: 31 Sayı: 3, 1 - 9, 01.06.2015

Öz

Sürfektanlar, günlük yaşamda yaygın olarak kullanılan yüzey aktif ajanlardır. Kontaminant çözünürlüğünü arttırabilen sürfektanların sentetik olanları çoğunlukla toksik olup ek kontaminasyon kaynakları oluştururken, biyosürfektanlar, yenilenebilir kaynaklardan elde edilmeleri, düşük toksititeye sahip olmaları ya da toksik olmamaları, biyolojik olarak parçalanabilir olmaları gibi özelliklerinden ötürü daha avantajlı kullanım alanlarına sahiptir. Biyosürfektanlar, çok iyi derecede yüzey aktivitesine sahiptir, tekrar kullanılabilir, aşırı sıcaklık ve pH koşulları altında etkinlerini sentetik sürfektanlara kıyasla daha uzun süre muhafaza edebilir. Biyosürfektanlar, sıvıların yüzey ve arayüzey gerilimini azaltan özelliklere sahiptir. Biyosürfektanların önemli fonksiyonları arasında; patojenik organizmaların birçoğuna karşı antimikrobiyal ve antifungal aktivite göstermelerinin yanı sıra; çözme, emülsifiye etme, dağıtma, ıslatma, köpürme ve deterjan gibi fonksiyonları da bulunmaktadır. Bu derleme çalışmasında farklı mikrobiyal sürfektanlar ve bu sürfektanların endüstriyel ve biyomedikal uygulama alanları hakkında literatür bilgileri tartışılmıştır.

Kaynakça

  • Pacwa-Płociniczak, M., Płaza, G.A., Piotrowska-Seget, Z., and Cameotra, S.S., Environmental applications of biosurfactants: Recent Advances, Int. J. Mol. Sci, 12, 633- 654, 2011.
  • Nitschke, M., Pastore, G.M., Production and properties of a surfactant obtained from Bacillus subtilis grown on cassava wastewater. Bioresource Technology, 97, 336- 341, 2006.
  • McInerney, M.J., Javaheri, M., Nagle, D.P., Properties of the biosurfactant produced by Bacillus liqueniformis strain JF-2. Journal of Industrial Microbiology & Biotechnology, 5, 95-102, 1990.
  • Pruthi, V., Cameotra, S.S., Production, properties of a biosurfactant synthesized by Arthrobacter protophormiae an Antartic strain. World Journal of Microbiology & Biotechnology, 13, 137-139, 1997.
  • Flasz, A., Rocha, C.A., Mosquera, B., Sajo, C., A comparative study of the toxicity of a synthetic surfactant and one produced by Pseudomonas aeruginosa ATCC 55925. Medical Science Research, 26 (3), 181-185, 1998.
  • Edwards, K.R., Lepo, J.E., Lewis, M.A., Toxicity comparison of biosurfactants and synthetic surfactants used in oil spill remediation to two estuarine species. Marine Pollution Bulletin, 46 (10), 1309-1316, 2003.
  • Rosenberg, E., Ron, E.Z., High- and low-molecular-mass microbial surfactants. Appl. Microbiol. Biotechnol, 52, 154–162, 1999.
  • Calvo, C., Manzanera, M., Silva-Castro, G.A., Uad, I., González-López, J., Application of bioemulsifiers in soil oil bioremediation processes. Future prospects. Sci. Total Environ, 407, 3634–3640, 2009.
  • Sekhon, K.K., Khanna, S., and Cameotra, S.S., Biosurfactant Production and Potential Correlation with Esterase Biotechnology, 3:7, 2-10, 2012. & Environmental
  • Jarvis, F.G., Johnson, M.J., A glycolipid produced by Pseudomonas aeruginosa. J Am Chem Soc, 71, 4124- 4126, 1949.
  • Guerra-Santos, L.H., Kappeli, O., and Flechter, A., Dependence of Pseudomonas aeruginosa continuous culture biosurfactant production on nutritional and environmental factors. Appl. Microbiol. Biotechnol, 24, 443–448, 1986.
  • Lang, S., and Wagner, F., Structure and properties of biosurfactants, In N. Kosaric, W. L. Cairns, and N. C. C. Gray (eds), Biosurfactants and biotechnology. Marcel Dekker, Inc., 21–47, New York, 1987.
  • Parra, J.L., Guinea, J., Manresa, M.A., Robert, M., Mercade, M.E., Comelles, F., and Bosch, M.P., Chemical characterization and physicochemical behaviour of biosurfactants. J. Am. Oil Chem. Soc, 66, 141–145, 1989.
  • Li, Z., Y., Lang, S., Wagner, F., Witte, L., and Wray, V., Formation glycolipids from resting microbial cells of Arthrobacter sp. and potential use in tertiary oil recovery. Appl. Environ. Microbiol, 48, 610–617, 1984. of interfacial-active
  • Rapp, P., Bock, H., Wray, V., and Wagner, F., Formation, isolation and characterization of trehalose dimycolates from Rhodococcus erythropolis grown on n-alkanes. J. Gen. Microbiol, 115, 491–503, 1979.
  • Cooper, D.G., and Paddock, D.A., Production of a biosurfactant from Torulopsis bombicola. Appl. Environ. Microbiol, 47, 173–176, 1984.
  • Yakimov, M.M., Timm is, K.N., Wray V., and Fredrickson, H.L., Characterization of a new lipopeptide surfactant produced by thermotolerant and halotolerant subsurface Bacillus licheniformis BAS50. Applied and Environmental Microbiology, 61, 1706-1713., 1995.
  • Horowitz, S., Gilbert, J.N., and Griffin, W.M., Isolation and characterization of a surfactant produced by Bacillus licheniformis 86. J. Ind. Microbiol, 6, 243–248, 1990.
  • Horowitz, S., and Griffin, W.M., Structural analysis of Bacillus licheniformis 86 surfactant. J. Ind. Microbiol, 7, 45–52, 1991.
  • Kappeli, O., and Finnerty, W.R., Partition of alkane by an extracellular vesicle derived from hexadecane-grown Acinetobacter. J. Bacteriol., 140, 707–712, 1979.
  • Kretschmer, A., Bock, H., and Wagner, F., Chemical and physical characterization of interfacial-active lipids from Rhodococcus erythropolis grown on n-alkane. Appl. Environ. Microbiol, 44, 864–870, 1982.
  • Rosenberg, E., Zuckerberg, A., Rubinovitz, C., and Gutnick, D.L., Emulsifier Arthrobacter RAG-1: isolation and emulsifying properties. Appl. Environ. Microbiol, 37, 402–408, 1979.
  • Satpute, S.K., Bhuyan, S.S., Pardesi, K.R., Mujumdar, S.S., Dhakephalkar, P.K., Shete A.M., and Chopade, B.A., Molecular genetics of biosurfactant synthesis in microorganisms, Biosurfactants, Ramkrishna Sen, (eds), 14-41, Science+Business Media, 2010. and Springer
  • Rosenberg, E., Rubinovitz, C., Legmann, R., Ron, E.Z., Purification and chemical properties of Acinetobacter calcoaceticus Microbiol, 54, 323–326, 1988. Appl. Environ.
  • Navonvenezia, S., Zosim, Z., Gottlieb, A., Legmann, R., Carmeli, S., Ron, E.Z., and Rosenberg, E., Alasan, a new bioemulsifier from Acinetobacter radioresistens. Appl. Environ. Microbiol, 61, 3240–3244, 1995.
  • Cirigliano, M.C., Carman, G.M., Purification and characterization of liposan, a bioemulsifier from Candida lipolytica. Appl. Environ. Microbiol, 50, 846–850, 1984.
  • Cameron, D.R., Cooper, D.G., Neufeld, R.J., The mannoprotein of accharomyces cerevisiae is an effective bioemulsifier. Appl. Environ. Microbiol, 54, 1420–1425, 1988.
  • Kappeli, O., Walther, P., Mueller, M., and Fiechter, A., Structure of cell surface of the yeast Candida tropicalis and its relation to hydrocarbon tranport. Arch. Microbiol, 138, 279–282, 1984.
  • Fautz, B., Lang, S., and Wagner, F., Formation of cellobiose lipids by growing and resting cells of Ustilago maydis. Biotechnol. Lett, 8, 757–762, 1986.
  • Kitamoto, D., Yanagishita, H., Shinbo, T., Nakane, T., Kamisawa, C., Nakahara, T., Surface active properties and antimicrobial activities of mannosylerythritol lipids as biosurfactants produced by Candida antarctica. J Biotechnol, 29, 91–6, 1993.
  • Desai, J.D., Microbial surfactants: evaluation, types and future applications. J. Sci. Ind. Res, 46, 440–449, 1987.
  • Rosenberg, E., Microbial surfactants. Crit. Rev. Biotechnol, 3, 109– 132, 1986.
  • Wilkinson, S.G., and Galbraith, L., Studies on lipopolysaccharides from Pseudomonas aeruginosa. Eur. J. Biochem, 52, 331–343, 1975.
  • Reis, R.S., Pacheco, G.J., Pereira, A.G., and Freire, D.M.G., Biosurfactants: production and applications, N. Kosaric, (eds), Marcel Dekker Inc., 31-61, New York, 1993.
  • Shete, A.M., Wadhawa, G., Banat, I.M., Chopade, B.A., Mapping of patents on bioemulsifier and biosurfactant: A review. Journal of Scientific and Industrial Research, 65 (2), 91-115, 2006.
  • Sanket, G.K., and Yagnik, B.N., Current trend and potential for microbial biosurfactants, Asıan J. Exp. Bıol. Scı., 4 (1), 1 – 8, 2013.
  • Rodrigues, L., Banat, I.M., Teixeira, J., and Oliveira, R., Biosurfactants: potential applications in medicine. Journal of Antimicrobial Chemotherapy, 57, 609-618, 2006.
  • Besson, F., Peypoux, F., Michel, G., Delcambe, L., Characterization of iturin A in antibiotics from various strains of Bacillus subtilis. J Antibiot, 29, 1043–9, 1976.
  • Tanaka, Y., Takashi, T., Kazuhik, U., et al., Method of producing iturin A and antifungal agent for profound mycosis. Biotechnol Adv, 15, 234–5, 1997.
  • Kim, K., Jung, S.Y, Lee, D.K., Jung, J., Park, J.K., Kim, D.K., Lee, C., Suppression of inflammatory responses by surfactin, a selective .inhibitor of platelet cytosolic phospholipase A2. Biochem Pharmacol, 55, 975–85, 1998.
  • Isoda, H., Kitamoto, D., Shinmoto, H., Matsumura, M., Nakahara, T., Microbial extracellular glycolipid induction of differentiation and inhibition of protein kinase C activity of human promyelocytic leukaemia cell line HL60. Biosci Biotechnol Biochem, 61, 609–14, 1997.
  • Uchida, Y., Tsuchiya, R., Chino, M., et al., Extracellular accumulation of mono and di succinyl trehalose lipids by a strain of Rodococcus erythropolis grown on n-alkanes. Agric Biol Chem, 53, 757–63, 1989.
  • Mireles, J.R., Toguchi, A., Harshey, R.M., Salmonella enterica serovar Typhimurium swarming mutants with altered biofilm forming abilities: surfactin inhibits biofilm formation. J. Bacteriol, 183, 5848–5854, 2001.
  • Meylheuc, T., van Oss, C.J., Bellon-Fontaine, M.N., Adsorption of biosurfactant on solid surfaces and consequences regarding the bioadhesion of Listeria monocytogenes LO28. J. Appl. Microbiol, 91, 822–832, 2001.
  • Velraeds, M.M., van de Belt-Gritter, B., van der Mei, H.C., Reid, G., Busscher, H.J., Interference in initial adhesion of uropathogenic bacteria and yeasts to silicone rubber by a Lactobacillus acidophilus biosurfactant. J. Med. Microbiol, 47, 1081–1085, 1998.
  • Heinemann, C., van Hylckama, V.J.E., Janssen, D.B., Busscher, H.J., van der Mei, H.C., Reid, G., Purification and characterization of a surface-binding protein from Lactobacillus fermentum RC-14 that inhibits adhesion of Enterococcus faecalis 1131. FEMS Microbiol. Lett, 190, 177–180, 2000.
  • Boris, S., and Barbes, C., Role played by Lactobacilli in controlling the population of vaginal pathogens. Microbes Infect, 2, 543–546, 2000.
  • Reid, G., Probiotic agents to protect the urogenital tract against infection. Am. J. Clin. Nutr, 73, 437S–443S, 2001.
  • Banat, I., Potential commercial applications of microbial surfactants. Applied Microbiology Biotechnology, 53, 495-508, 2000.
  • Shepherd, R., Rockey, J., Sutherland, I.W., Roller, S., Novel bioemulsifiers from microorganisms for use in foods. Journal of Biotechnology, 40, 207-217, 1995.
  • Nitschkea, M., and Costa, S.G.V.A.O., Biosurfactants in food industry, Trends in Food Science & Technology, 18, 252-259, 2007.
  • Shoeb, E., Akhlaq, F., Badar, U., Akhter, J., Imtiaz, S., Classification biosurfactants, Natural and Applied Sciences, 4 (3), 243- 252, 2013. industrial applications of
  • Kachholz, T., Schlingmann, M., Possible food and agricultural applications of microbial surfactants: an assessment. In N. Kosaric, W. L. Carns, & N. C. C. Gray (eds), Biosurfactants and biotechnology, Marcel Dekker,
  • Kosaric, N. 2001. Biosurfactants and their application for soil bioremediation. Food Technology and Biotechnology, 39 (4), 295-304.
  • Van Haesendonck, I.P.H., Vanzeveren, E.C.A., Rhamnolipids in bakery products. W.O. 2004/040984, International application patent (PCT), 2004.
  • Iyer, A., Mody, K., Jha, B., Emulsifying properties of a marine bacterial exopolysaccharide. Enzyme and Microbial Technology, 38, 220-222, 2006.
  • Hood, S.K., Zottola, E.A., Biofilms in food processing. Food Control, 6 (1), 9-18, 1995.
  • Mnif, I., Ghribi, D., Lipopeptides Biosurfactants: Mean Classes and New Insights for Industrial, Biomedical, and Environmental Applications. PeptideScience, Volume 104 / Number 3, 129-147, 2015.

Microbial biosurfactants: Surface active agents

Yıl 2015, Cilt: 31 Sayı: 3, 1 - 9, 01.06.2015

Öz

Surfactants, surface active compounds, are one of the most common used agents in daily life. While synthetic surfactants which are able to increase the contaminant solubility are often toxic, representing an additional source of contamination, biosurfactants offer advantages rather than synthetic surfactants due to their derivation from renewable resources, low or non-toxicity, biodegradability. Biosurfactants that has excellent surface activity are reusable and able to maintain their effectiveness under extreme temperature and pH conditions. They have the unique property of reducing the surface and interfacial tension of liquids. The major functions of biosurfactants includes solubilization, emulsification, dispersion, wetting, foaming, and detergent capacity, as well as antimicrobial and antifungal activity against a number of pathogenic organisms. In this review we have discussed the literature about different microbial surfactants and their industrial and biomedical applications.

Kaynakça

  • Pacwa-Płociniczak, M., Płaza, G.A., Piotrowska-Seget, Z., and Cameotra, S.S., Environmental applications of biosurfactants: Recent Advances, Int. J. Mol. Sci, 12, 633- 654, 2011.
  • Nitschke, M., Pastore, G.M., Production and properties of a surfactant obtained from Bacillus subtilis grown on cassava wastewater. Bioresource Technology, 97, 336- 341, 2006.
  • McInerney, M.J., Javaheri, M., Nagle, D.P., Properties of the biosurfactant produced by Bacillus liqueniformis strain JF-2. Journal of Industrial Microbiology & Biotechnology, 5, 95-102, 1990.
  • Pruthi, V., Cameotra, S.S., Production, properties of a biosurfactant synthesized by Arthrobacter protophormiae an Antartic strain. World Journal of Microbiology & Biotechnology, 13, 137-139, 1997.
  • Flasz, A., Rocha, C.A., Mosquera, B., Sajo, C., A comparative study of the toxicity of a synthetic surfactant and one produced by Pseudomonas aeruginosa ATCC 55925. Medical Science Research, 26 (3), 181-185, 1998.
  • Edwards, K.R., Lepo, J.E., Lewis, M.A., Toxicity comparison of biosurfactants and synthetic surfactants used in oil spill remediation to two estuarine species. Marine Pollution Bulletin, 46 (10), 1309-1316, 2003.
  • Rosenberg, E., Ron, E.Z., High- and low-molecular-mass microbial surfactants. Appl. Microbiol. Biotechnol, 52, 154–162, 1999.
  • Calvo, C., Manzanera, M., Silva-Castro, G.A., Uad, I., González-López, J., Application of bioemulsifiers in soil oil bioremediation processes. Future prospects. Sci. Total Environ, 407, 3634–3640, 2009.
  • Sekhon, K.K., Khanna, S., and Cameotra, S.S., Biosurfactant Production and Potential Correlation with Esterase Biotechnology, 3:7, 2-10, 2012. & Environmental
  • Jarvis, F.G., Johnson, M.J., A glycolipid produced by Pseudomonas aeruginosa. J Am Chem Soc, 71, 4124- 4126, 1949.
  • Guerra-Santos, L.H., Kappeli, O., and Flechter, A., Dependence of Pseudomonas aeruginosa continuous culture biosurfactant production on nutritional and environmental factors. Appl. Microbiol. Biotechnol, 24, 443–448, 1986.
  • Lang, S., and Wagner, F., Structure and properties of biosurfactants, In N. Kosaric, W. L. Cairns, and N. C. C. Gray (eds), Biosurfactants and biotechnology. Marcel Dekker, Inc., 21–47, New York, 1987.
  • Parra, J.L., Guinea, J., Manresa, M.A., Robert, M., Mercade, M.E., Comelles, F., and Bosch, M.P., Chemical characterization and physicochemical behaviour of biosurfactants. J. Am. Oil Chem. Soc, 66, 141–145, 1989.
  • Li, Z., Y., Lang, S., Wagner, F., Witte, L., and Wray, V., Formation glycolipids from resting microbial cells of Arthrobacter sp. and potential use in tertiary oil recovery. Appl. Environ. Microbiol, 48, 610–617, 1984. of interfacial-active
  • Rapp, P., Bock, H., Wray, V., and Wagner, F., Formation, isolation and characterization of trehalose dimycolates from Rhodococcus erythropolis grown on n-alkanes. J. Gen. Microbiol, 115, 491–503, 1979.
  • Cooper, D.G., and Paddock, D.A., Production of a biosurfactant from Torulopsis bombicola. Appl. Environ. Microbiol, 47, 173–176, 1984.
  • Yakimov, M.M., Timm is, K.N., Wray V., and Fredrickson, H.L., Characterization of a new lipopeptide surfactant produced by thermotolerant and halotolerant subsurface Bacillus licheniformis BAS50. Applied and Environmental Microbiology, 61, 1706-1713., 1995.
  • Horowitz, S., Gilbert, J.N., and Griffin, W.M., Isolation and characterization of a surfactant produced by Bacillus licheniformis 86. J. Ind. Microbiol, 6, 243–248, 1990.
  • Horowitz, S., and Griffin, W.M., Structural analysis of Bacillus licheniformis 86 surfactant. J. Ind. Microbiol, 7, 45–52, 1991.
  • Kappeli, O., and Finnerty, W.R., Partition of alkane by an extracellular vesicle derived from hexadecane-grown Acinetobacter. J. Bacteriol., 140, 707–712, 1979.
  • Kretschmer, A., Bock, H., and Wagner, F., Chemical and physical characterization of interfacial-active lipids from Rhodococcus erythropolis grown on n-alkane. Appl. Environ. Microbiol, 44, 864–870, 1982.
  • Rosenberg, E., Zuckerberg, A., Rubinovitz, C., and Gutnick, D.L., Emulsifier Arthrobacter RAG-1: isolation and emulsifying properties. Appl. Environ. Microbiol, 37, 402–408, 1979.
  • Satpute, S.K., Bhuyan, S.S., Pardesi, K.R., Mujumdar, S.S., Dhakephalkar, P.K., Shete A.M., and Chopade, B.A., Molecular genetics of biosurfactant synthesis in microorganisms, Biosurfactants, Ramkrishna Sen, (eds), 14-41, Science+Business Media, 2010. and Springer
  • Rosenberg, E., Rubinovitz, C., Legmann, R., Ron, E.Z., Purification and chemical properties of Acinetobacter calcoaceticus Microbiol, 54, 323–326, 1988. Appl. Environ.
  • Navonvenezia, S., Zosim, Z., Gottlieb, A., Legmann, R., Carmeli, S., Ron, E.Z., and Rosenberg, E., Alasan, a new bioemulsifier from Acinetobacter radioresistens. Appl. Environ. Microbiol, 61, 3240–3244, 1995.
  • Cirigliano, M.C., Carman, G.M., Purification and characterization of liposan, a bioemulsifier from Candida lipolytica. Appl. Environ. Microbiol, 50, 846–850, 1984.
  • Cameron, D.R., Cooper, D.G., Neufeld, R.J., The mannoprotein of accharomyces cerevisiae is an effective bioemulsifier. Appl. Environ. Microbiol, 54, 1420–1425, 1988.
  • Kappeli, O., Walther, P., Mueller, M., and Fiechter, A., Structure of cell surface of the yeast Candida tropicalis and its relation to hydrocarbon tranport. Arch. Microbiol, 138, 279–282, 1984.
  • Fautz, B., Lang, S., and Wagner, F., Formation of cellobiose lipids by growing and resting cells of Ustilago maydis. Biotechnol. Lett, 8, 757–762, 1986.
  • Kitamoto, D., Yanagishita, H., Shinbo, T., Nakane, T., Kamisawa, C., Nakahara, T., Surface active properties and antimicrobial activities of mannosylerythritol lipids as biosurfactants produced by Candida antarctica. J Biotechnol, 29, 91–6, 1993.
  • Desai, J.D., Microbial surfactants: evaluation, types and future applications. J. Sci. Ind. Res, 46, 440–449, 1987.
  • Rosenberg, E., Microbial surfactants. Crit. Rev. Biotechnol, 3, 109– 132, 1986.
  • Wilkinson, S.G., and Galbraith, L., Studies on lipopolysaccharides from Pseudomonas aeruginosa. Eur. J. Biochem, 52, 331–343, 1975.
  • Reis, R.S., Pacheco, G.J., Pereira, A.G., and Freire, D.M.G., Biosurfactants: production and applications, N. Kosaric, (eds), Marcel Dekker Inc., 31-61, New York, 1993.
  • Shete, A.M., Wadhawa, G., Banat, I.M., Chopade, B.A., Mapping of patents on bioemulsifier and biosurfactant: A review. Journal of Scientific and Industrial Research, 65 (2), 91-115, 2006.
  • Sanket, G.K., and Yagnik, B.N., Current trend and potential for microbial biosurfactants, Asıan J. Exp. Bıol. Scı., 4 (1), 1 – 8, 2013.
  • Rodrigues, L., Banat, I.M., Teixeira, J., and Oliveira, R., Biosurfactants: potential applications in medicine. Journal of Antimicrobial Chemotherapy, 57, 609-618, 2006.
  • Besson, F., Peypoux, F., Michel, G., Delcambe, L., Characterization of iturin A in antibiotics from various strains of Bacillus subtilis. J Antibiot, 29, 1043–9, 1976.
  • Tanaka, Y., Takashi, T., Kazuhik, U., et al., Method of producing iturin A and antifungal agent for profound mycosis. Biotechnol Adv, 15, 234–5, 1997.
  • Kim, K., Jung, S.Y, Lee, D.K., Jung, J., Park, J.K., Kim, D.K., Lee, C., Suppression of inflammatory responses by surfactin, a selective .inhibitor of platelet cytosolic phospholipase A2. Biochem Pharmacol, 55, 975–85, 1998.
  • Isoda, H., Kitamoto, D., Shinmoto, H., Matsumura, M., Nakahara, T., Microbial extracellular glycolipid induction of differentiation and inhibition of protein kinase C activity of human promyelocytic leukaemia cell line HL60. Biosci Biotechnol Biochem, 61, 609–14, 1997.
  • Uchida, Y., Tsuchiya, R., Chino, M., et al., Extracellular accumulation of mono and di succinyl trehalose lipids by a strain of Rodococcus erythropolis grown on n-alkanes. Agric Biol Chem, 53, 757–63, 1989.
  • Mireles, J.R., Toguchi, A., Harshey, R.M., Salmonella enterica serovar Typhimurium swarming mutants with altered biofilm forming abilities: surfactin inhibits biofilm formation. J. Bacteriol, 183, 5848–5854, 2001.
  • Meylheuc, T., van Oss, C.J., Bellon-Fontaine, M.N., Adsorption of biosurfactant on solid surfaces and consequences regarding the bioadhesion of Listeria monocytogenes LO28. J. Appl. Microbiol, 91, 822–832, 2001.
  • Velraeds, M.M., van de Belt-Gritter, B., van der Mei, H.C., Reid, G., Busscher, H.J., Interference in initial adhesion of uropathogenic bacteria and yeasts to silicone rubber by a Lactobacillus acidophilus biosurfactant. J. Med. Microbiol, 47, 1081–1085, 1998.
  • Heinemann, C., van Hylckama, V.J.E., Janssen, D.B., Busscher, H.J., van der Mei, H.C., Reid, G., Purification and characterization of a surface-binding protein from Lactobacillus fermentum RC-14 that inhibits adhesion of Enterococcus faecalis 1131. FEMS Microbiol. Lett, 190, 177–180, 2000.
  • Boris, S., and Barbes, C., Role played by Lactobacilli in controlling the population of vaginal pathogens. Microbes Infect, 2, 543–546, 2000.
  • Reid, G., Probiotic agents to protect the urogenital tract against infection. Am. J. Clin. Nutr, 73, 437S–443S, 2001.
  • Banat, I., Potential commercial applications of microbial surfactants. Applied Microbiology Biotechnology, 53, 495-508, 2000.
  • Shepherd, R., Rockey, J., Sutherland, I.W., Roller, S., Novel bioemulsifiers from microorganisms for use in foods. Journal of Biotechnology, 40, 207-217, 1995.
  • Nitschkea, M., and Costa, S.G.V.A.O., Biosurfactants in food industry, Trends in Food Science & Technology, 18, 252-259, 2007.
  • Shoeb, E., Akhlaq, F., Badar, U., Akhter, J., Imtiaz, S., Classification biosurfactants, Natural and Applied Sciences, 4 (3), 243- 252, 2013. industrial applications of
  • Kachholz, T., Schlingmann, M., Possible food and agricultural applications of microbial surfactants: an assessment. In N. Kosaric, W. L. Carns, & N. C. C. Gray (eds), Biosurfactants and biotechnology, Marcel Dekker,
  • Kosaric, N. 2001. Biosurfactants and their application for soil bioremediation. Food Technology and Biotechnology, 39 (4), 295-304.
  • Van Haesendonck, I.P.H., Vanzeveren, E.C.A., Rhamnolipids in bakery products. W.O. 2004/040984, International application patent (PCT), 2004.
  • Iyer, A., Mody, K., Jha, B., Emulsifying properties of a marine bacterial exopolysaccharide. Enzyme and Microbial Technology, 38, 220-222, 2006.
  • Hood, S.K., Zottola, E.A., Biofilms in food processing. Food Control, 6 (1), 9-18, 1995.
  • Mnif, I., Ghribi, D., Lipopeptides Biosurfactants: Mean Classes and New Insights for Industrial, Biomedical, and Environmental Applications. PeptideScience, Volume 104 / Number 3, 129-147, 2015.
Toplam 58 adet kaynakça vardır.

Ayrıntılar

Diğer ID JA79DF26PN
Bölüm Makaleler
Yazarlar

Fatma Neslihan Yüksel Bu kişi benim

Mustafa Akçelik Bu kişi benim

Yayımlanma Tarihi 1 Haziran 2015
Yayımlandığı Sayı Yıl 2015 Cilt: 31 Sayı: 3

Kaynak Göster

APA Yüksel, F. N., & Akçelik, M. (2015). Mikrobiyal biyosürfektanlar: Yüzey aktif bileşikler. Erciyes Üniversitesi Fen Bilimleri Enstitüsü Fen Bilimleri Dergisi, 31(3), 1-9.
AMA Yüksel FN, Akçelik M. Mikrobiyal biyosürfektanlar: Yüzey aktif bileşikler. Erciyes Üniversitesi Fen Bilimleri Enstitüsü Fen Bilimleri Dergisi. Haziran 2015;31(3):1-9.
Chicago Yüksel, Fatma Neslihan, ve Mustafa Akçelik. “Mikrobiyal biyosürfektanlar: Yüzey Aktif bileşikler”. Erciyes Üniversitesi Fen Bilimleri Enstitüsü Fen Bilimleri Dergisi 31, sy. 3 (Haziran 2015): 1-9.
EndNote Yüksel FN, Akçelik M (01 Haziran 2015) Mikrobiyal biyosürfektanlar: Yüzey aktif bileşikler. Erciyes Üniversitesi Fen Bilimleri Enstitüsü Fen Bilimleri Dergisi 31 3 1–9.
IEEE F. N. Yüksel ve M. Akçelik, “Mikrobiyal biyosürfektanlar: Yüzey aktif bileşikler”, Erciyes Üniversitesi Fen Bilimleri Enstitüsü Fen Bilimleri Dergisi, c. 31, sy. 3, ss. 1–9, 2015.
ISNAD Yüksel, Fatma Neslihan - Akçelik, Mustafa. “Mikrobiyal biyosürfektanlar: Yüzey Aktif bileşikler”. Erciyes Üniversitesi Fen Bilimleri Enstitüsü Fen Bilimleri Dergisi 31/3 (Haziran 2015), 1-9.
JAMA Yüksel FN, Akçelik M. Mikrobiyal biyosürfektanlar: Yüzey aktif bileşikler. Erciyes Üniversitesi Fen Bilimleri Enstitüsü Fen Bilimleri Dergisi. 2015;31:1–9.
MLA Yüksel, Fatma Neslihan ve Mustafa Akçelik. “Mikrobiyal biyosürfektanlar: Yüzey Aktif bileşikler”. Erciyes Üniversitesi Fen Bilimleri Enstitüsü Fen Bilimleri Dergisi, c. 31, sy. 3, 2015, ss. 1-9.
Vancouver Yüksel FN, Akçelik M. Mikrobiyal biyosürfektanlar: Yüzey aktif bileşikler. Erciyes Üniversitesi Fen Bilimleri Enstitüsü Fen Bilimleri Dergisi. 2015;31(3):1-9.

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