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Exopolysaccharides from lactic acid bacteria as corrosion inhibitors Cover

Exopolysaccharides from lactic acid bacteria as corrosion inhibitors

Open Access
|Mar 2016

References

  1. [1]. Arrage AA, N Vasishtha, D Sundberg, G Bausch, HL Vincent and DC White. On-line monitoring of antifouling and fouling-release surfaces using bioluminescence and fluorescence measurements during laminar-flow. J Ind Microbiol, 1995, 277-282.
  2. [2]. Breur, H. J. A. “Fouling and Bioprotection of Metals: Monitoring and Control of Deposition Processes in Aqueous Environments.” Ph.D. thesis, Technische Universiteit Delft, 2001.
  3. [3]. Cerning, J. Exocellular polysaccharides produced by lactic acid bacteria. FEMS Microbiol. Rev., 1990, 87, 113-130.
  4. [4]. Cerning, J. Production of exopolysaccharides by lactic acid bacteria and dairy propionibacteria. Lait, 1995, 75,463-472.
  5. [5]. Christensen B.E. and W.G. Characklis. Physical and chemical properties of biofilms. In: Biofilms (Characklis WG and KC Marshall, eds), John Wiley & Sons, New York., 1990, 93-130.
  6. [6]. Costerton W.J , K.J. Cheng, G.G. Geesey, T.I. Ladd, J.C. Nickel, M. Dasgupta and T.J. Marrie. Bacterial biofilms in nature and disease. Anal Rev Microbiol, 1987, 41, 435-464.
  7. [7]. Daeschel, M.A. Antimicrobial substances from lactic acid bacteria for use as food preservatives. Food Technol., 1989, 1, 164-167.
  8. [8]. De Vuyst L, F.De Vin , F. Vaningelgem, B.Degeest. Recent developments in the biosynthesis and applications of heteropolysaccharides from lactic acid bacteria. Int. Dairy J, 2001, 11, 687-707.
  9. [9]. Garai-Ibabe G., M. T. Duenas, A. Irastorza, E. Sierra-Filardi, M. L. Werning, P. Lopez, A. L. Corbi andP. Fernandez de Palencia, Bioresour. Technol., 2010, 101,9254-9263.
  10. [10]. van Geel-Schutten G.H., Flesch, F., ten Brink, B., Smith, M.R., and Dijkhuizen, L. Screening and characterization of Lactobacillus strains producing large amounts of exopolysaccharides. Appl. Microbiol. Biotechnol., 1998, 50, 697-703.
  11. [11]. Geel-Schutten, G. H. van. “Exopolysaccharide synthesis by Lactobacillus reuteri.” Ph.D. thesis, University of Groningen, 2000.
  12. [12]. Gruter, M., B. R. Leeflang, J. Kuiper, J. P. Kamerling, and J. F. Vliegenthart. Structure of the exopolysaccharide produced by Lactococcus lactis subspecies cremoris H414 grown in a defined medium or skimmed milk. Carbohydr. Res., 1992, 231, 273-291.
  13. [13]. Gruter, M., Leeflang, B.R., Kuiper, J., Kamerling, J.P., and Vliegenthart, J.F.G. 1993. Structural characterisation of the exopolysaccharide produced by Lactobacillus delbrueckii ssp bulgaricus rr grown in skimmed milk. Carbohydr. Res.,1993, 239, 209-226.
  14. [14]. Dueñas-Chasco, M.T., Rodríguez-Carvajal, M.A., Tejero-Mateo, P., Franco-Rodríguez, G., Espartero, J.L., Irastorza-Iribas, A., and Gil-Serrano, A.M. Structural analysis of the exopolysaccharide produced by Pediococcus damnosus 2.6. Carbohydr. Res., 1997, 303, 453-458.
  15. [15]. Dueñas-Chasco, M.T., Rodríguez-Carvajal, M.A., Tejero-Mateo, P., Espartero, J.L., Irastorza- Iribas, A., and Gil-Serrano, A.M. Structural analysis of the exopolysaccharides produced by Lactobacillus spp. G-77. Carbohydr. Res., 1998, 307, 125-133.
  16. [16]. Franz, G. Polysaccharides in pharmacy. Adv. Polym. Sci., 1986, 76, 1-30.
  17. [17]. Jayaraman, A.,·Earthman, J. C., and Wood, T. K. “Corrosion Inhibition by Aerobic Biofilms on SAE 1018 Steel.” Appl. Microbiol. Biotechnol, 1997, 47: 62-68.
  18. [18]. Jolly L, F. Stingele. Molecular organization and functionality of exopolysaccharide gene clusters in lactic acid bacteria. Int. Dairy J., 2001,11, 733- 745.
  19. [19]. Hamada, S. and H. D. Slade. Biology, immunology, and cariogenicity of Streptococcus mutans. Microbiol. Rev., 1980, 44,331-384.
  20. [20]. Ignatova-Ivanova Ts., Ivanov, R., Iliev, I., and Ivanova, I. “Study Anticorrosion Effect of EPS from Now Strains Lactobacillus Delbruecii.” Biotechnol & Biotechnol EQ, 2009, Special edition/on line 705-708.
  21. [21]. Ignatova-Ivanova, Ts., Ivanov, R., Iliev, I., and Ivanova, I. “Study of Anticorrosion Effect of Exopolysaccharides Produced Lactobacillus Delbrueckii b5 Cultivated on Different Carbohydrates.” Biotechnol & Biotechnol EQ, 2011, Special edition/on line 224-227.
  22. [22]. Ignatova-Ivanova Ts. and R. Ivanov. EXOPOLYSACCHARIDES FROM LACTIC ACID BACTERIA AS CORROSION INHIBITORS. Journal of Life Sciences, doi:10.17265/1934-7391/2014.12.001, 2014, 8, 940-945.
  23. [23]. Ignatova-Ivanova Ts. and R. Ivanov. Study of Biofilm formed by lactic acid bacteria on the surface of mild steel. Journal of Life Sciences,2014, 8, 799-804.
  24. [24]. Ignatova-Ivanova Ts. and R. Ivanov. ANTICORROSION EFFECT OF BIOFILM FORMING BY LACTOBACILLUS STRAINS ON METAL SURFACES. Bulgarian Journal of Agricultural Science, 2013,19, (2), 83-85.
  25. [25]. Ignatova-Ivanova Ts., S. Ibrjam and R. Ivanov. STUDY OF THE EFFECT OF LACTIC ACID FERMENTATION END PRODUCTS ON THE SPEED OF THE CORROSION PROCESS. International Journal of Current Microbiology and Applied Sciences,2015, 4 (4), 397-401.
  26. [26]. Kleerebezem M., R. van Kranenburg, R. Tuinier, I. C. Boels, P. Zoon, E. Looijesteijn, J. Hugenholtz and W. M. de Vos. Exopolysaccharides produced by Lactococcus lactis: from genetic engineering to improved rheological properties?Antonie van Leeuwenhoek, 1999, 76, 357-365.
  27. [27]. Kralj S, GH van Geel-Schutten, MJEC van der Maarel, L.Dijkhuizen. Efficient screening methods for glucosyltransferase genes in Lactobacillus strains. Biocatal. Biotransformation, 2003, 21, 181-187.
  28. [28]. Llauberes, R. M., B. Richard, A. Lonvaud, D. Dubourdieu, and B. Fournet. Structure of an exocellular beta-D-glucan from Pediococcus sp., a wine lactic bacteria. Carbohydr. Res., 1990, 203, 103-107.
  29. [29]. Maeda H., X. Zhu, S. Suzuki, K. Suzuki and S. Kitamura, J. Agric. Food Chem., 2004, 52, 5533-5538.
  30. [30] Marshall, K. C. “Biofilms: an Overview of Bacterial Adhesion, Activity, and Control at Surfaces.” ASM News, 1992, 58: 202-207.
  31. [31]. McIntosh M., B. A. Stone and V. A. Stanisich, Appl. Microbiol. Biotechnol., 2005, 68, 163-173.
  32. [32]. Monsan P., S. Bozonnet, C. Albenne, G. Joucla,R.-M. Willemot and M. Remaud-Siméon, Int. Dairy J.,2001, 11, 675-685.
  33. [33]. Montville, T.H., Cooney, C.L., and Sinskey, A.J. Streptococcus mutans dextransucrase: a review. Adv. Appl. Microbiol, 1978, 24, 55-84.
  34. [34]. Mozzi F, et al. Diversity of heteropolysaccharide-producing lactic acid bacterium strains and their biopolymers. Appl. Environ. Microbiol. 2006, 72, 4431-4435.
  35. [35]. Nakajima, H., Hirota, T., Toba, T., Itoh, T., and Adachi, S. Structure of the extracellular polysaccharide from slime-forming Lactococcus lactis subsp. cremoris SBT 0495. Carbohydr. Res., 1992, 224, 245-253.
  36. [36]. Nakata M., T. Kawaguchi, Y. Kodama and A. Konno, Polymer, 1998, 39, 1475-1481.
  37. [37]. Nicolaus B., M. Kambourova, and E. T. Oner, “Exopolysaccharides from extremophiles: from fundamentals to biotechnology,” Environmental Technology, 2010, 31(10), 1145-1158.
  38. [38]. Pilling J. and C. Frohberg, Germany Pat, US20110189346 A1, 2011.
  39. [39]. Polak-Bereckaa M., A. Choma, A. W. Górska, A. Gamiand, J. Cybulska. Physicochemical characterization of exopolysaccharides produced by Lactobacillus rhamnosus on various carbon sources.Carbohydrate Polymers, 2015, 117, 501-509.
  40. [40]. Roberts, I.S. Bacterial polysaccharides in sickness and in health. Microbiology, 1995, 141, 2023-2031.
  41. [41]. Shin Y.C., Y. H. Kim, H. S. Lee, S. J. Cho and S. M. Byun, Biotechnol. Bioeng., 1984, 33, 129-133.
  42. [42]. Shukla R. and A. Goyal, Int. J. Biol. Macromol., 2013, 62,352-357.
  43. [43]. Stingele, F., Neeser, J.-R., and Mollet, B. 1996. Identification and characterization of the eps (exopolysaccharide) gene cluster from Streptococcus thermophilus Sfi6. J. Bacteriol.,1996, 178, 1680-1690.
  44. [44]. Sutherland W., “Bacterial exopolysaccharides,” Advances in Microbial Physiology, 1972, 8, 143-213.
  45. [45]. Tieking M, M.Korakli, M.A.Ehrmann, M.G.Gänzle, R.F.Vogel. In situ production of exopolysaccharides during sourdough fermentation by cereal and intestinal isolates of lactic acid bacteria. Appl. Environ. Microbiol, 2003, 69, 945-952.
  46. [46]. Tieking M., M.G. Gänzle, Trends Food Sci. Technol, 2005, 16, 79-84.
  47. [47]. Velasco S., E. Årsköld, M. Paese, H. Grage, A. Irastorza,P. Rådström and E. W. J. van Niel, Int. J. Food Microbiol.,2006, 111, 252-258.
  48. [48]. Weiner, R., Langille, S., and Quintero, E. Structure, function and immunochemistry of bacterial exopolysaccharides. J. Ind. Microbiol., 1995, 15, 339-346.
  49. [49]. Whitfield, C. Bacterial extracellular polysaccharides. Can. J. Microbiol.,1988, 34, 415-420.
DOI: https://doi.org/10.1515/asn-2016-0008 | Journal eISSN: 2603-347X (formerly 2367-5144) | Journal ISSN: 2367-5144
Language: English
Page range: 52 - 60
Submitted on: Oct 30, 2015
Accepted on: Mar 11, 2016
Published on: Mar 26, 2016
Published by: Konstantin Preslavski University of Shumen
In partnership with: Paradigm Publishing Services
Publication frequency: 3 issues per year

© 2016 Tsveteslava Ignatova-Ivanova, Radoslav Ivanov, published by Konstantin Preslavski University of Shumen
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.