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Original Articles

Development of an active wheat gluten film with Lactobacillus curvatus CRL705 bacteriocins and a study of its antimicrobial performance during ageing

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Pages 164-171 | Received 07 Jul 2013, Accepted 22 Oct 2013, Published online: 10 Jan 2014

References

  • Albert S, Mittal GS. 2002. Comparative evaluation of edible coatings to reduce fat uptake in a deep-fried cereal product. Food Res Int. 35:445–458.
  • ASTM D 638–10. 2010. Standard test method for tensile properties of plastics. Philadelphia (PA): American Society for Testing and Materials.
  • ASTM E96/E96M–12. 2012. Standard Test Methods for Water Vapor Transmission of Materials. Philadelphia (PA): American Society for Testing and Materials.
  • Balasubramanian A. 2012. Predicting target release profile of antimicrobials from controlled release packaging [Internet; cited 2012 Jun 21]. Available from: http://mss3.libraries.rutgers.edu/dlr/showfed.php?pid=rutgers-lib:37363
  • Blanco Massani M, Fernandez MR, Ariosti A, Eisenberg P, Vignolo G. 2008. Development and characterization of an active polyethylene film containing Lactobacillus curvatus CRL705 bacteriocins. Food Addit Contam. 25:1424–1430.
  • Blanco Massani M, Morando P, Vignolo G, Eisenberg P. 2012. Characterization of a multilayer film activated with Lactobacillus curvatus CRL705 bacteriocins. J Sci Food Agric. 92:1318–1323.
  • Blanco Massani M, Vignolo G, Eisenberg P, Morando J. 2013. Adsorption of the bacteriocins produced by Lactobacillus curvatus CRL705 on a multilayer-LLDPE film for food-packaging applications. LWT – Food Sci Technol. 53:128–138.
  • Botana A, Mollo M, Eisenberg P, Torres Sanchez RM. 2010. Effect of modified montmorillonite on biodegradable PHB nanocomposites. Appl Clay Sci. 47:263–270.
  • Bourtoom T. 2008. Edible films and coatings: characteristics and properties. Int Food Res J. 15:237–248.
  • Cagri A, Ustunol Z, Ryser ET. 2004. Antimicrobial edible films and coatings. J Food Protect. 67:833–848.
  • Castellano P, Vignolo G. 2006. Inhibition of Listeria innocua and Brochothrix thermosphacta in vacuumpacked meat by addition of bacteriocinogenic Lactobacillus curvatus CRL705 and its bacteriocins. Lett Appl Microbiol. 43:194–199.
  • Castellano P, Vignolo G, Farías RN, Arrondo JL, Cheín R. 2007. Molecular view by Fourier transform infrared spectroscopy of the relationship between lactocin 705 and membranes: speculations on antimicrobial mechanism. Appl Environ Microbiol. 73:415–420.
  • Castellano PH. 2005 [Tesis doctoral]. Bacteriocinas de bacterias lacticas como biconservadores en carne envasada de atmosfera modificadas. Estrategias de aplicación. San Miguel de Tucumán: Universidad Nacional de Tucumán, Facultad de Bioquímica, Química y Farmacia.
  • Cha DS, Chinnan MS. 2004. Biopolymer-based antimicrobial packaging: a review. Crit Rev Food Sci Nutr. 44:223–237.
  • Cho SY, Lee DS, Han JH. 2009. Antimicrobial packaging. In: Yam KL, editor. The Wiley encyclopedia of packaging technology. Hoboken (NJ): John Wiley & Sons, Inc; p. 50–59.
  • Coma V. 2008. Bioactive packaging technologies for extended shelf life of meat-based products. Meat Sci. 78:90–103.
  • Conte A, Buonocore GG, Sinigaglia M, Del Nobile MA. 2007. Development of immobilized lysozyme based active film. J Food Eng. 78:741–745.
  • Cooksey K. 2005. Effectiveness of antimicrobial food packaging materials. Food Addit Contam. 22:980–987.
  • Dawson PL, Hirt DE, Rieck JR, Acton JC, Sotthibandhu A. 2003. Nisin release from films is affected by both protein type and film-forming method. Food Res Int. 36:959–968.
  • De Jong AR, Boumans H, Slaghek T, Van Veen J, Rijk R, Van Zandvoort M. 2005. Active and intelligent packaging for food: Is it the future? Food Addit Contam. 22:975–979.
  • Denavi G, Tapia-Blácido DR, Añón MC, Sobral PJA, Mauri AN, Menegalli FC. 2009. Effects of drying conditions on some physical properties of soy protein films. J Food Eng. 90:341–349.
  • EC. 2004. Commission regulation 10/2011 of 27 October 2004 relating to plastic materials and articles intended to come into contact with food. Off J the Eur Commun. L338:4–17.
  • Gennadios A, Brandenburg AH, Weller CL, Testin RF. 1993. Effect of pH on properties of wheat gluten and soy protein isolate films. J Agric Food Chem. 41:1835–1939.
  • Gennadios A, Weller CL, Testin RF. 1993. Modification of physical and barrier properties of edible wheat gluten- based films. Cereal Chem. 70:426–429.
  • Ghanbarzadeh B, Oromiehi AR. 2009. Thermal and mechanical behavior of laminated protein films. J Food Eng. 90:517–524.
  • Grower JL, Cooksey K, Getty K. 2004. Release of nisin from methylcellulose-hydroxypropyl metilcellulose film formed on Low-density Polyethylene film. J Food Sci. 69:107–111.
  • GMC/RES. 32/07 Lista positiva de aditivos para materiales plásticos destinados a la elaboración de envases y equipamientos en contacto con alimentos. 1–72.
  • Guiga W, Swesi Y, Galland S, Peyrol E, Degraeve P, Sebti I. 2010. Innovative multilayer antimicrobial films made with Nisaplin® or nisin and cellulosic ethers: physico-chemical characterization, bioactivity and nisin desorption kinetics. Innov Food Sci Emerg Technol. 11:352–360.
  • Guilbert S, Cuq B. 2005. Material formed from proteins. In: Bastioli C, editor. Handbook of biodegradable polymers. Shropshire: Rapra Technology Limited; p. 339–384.
  • Han JH. 2000. Antimicrobial food packaging. Food Technol. 54:56–65.
  • Herald TJ, Gnanasambandam R, McGuire BH, Hachmeister KA. 1995. Degradable wheat gluten films: preparation, properties and applications. J Food Sci. 60:1147–1150. 
  • Hereu A, Dalgaard P, Garriga M, Aymerich T, Bover-Cid S. 2012. Modeling the high pressure inactivation kinetics of Listeria monocytogenes on RTE cooked meat products. Innov Food Sci Emerg Technol. 16:305–315.
  • Hochstettera A, Taljaa RA, Heléna HJ, Hyvönena L, Jouppila K. 2006. Properties of gluten-based sheet produced by twin-screw extruder. LWT – Food Sci Technol. 39:893–901.
  • Ibarguren C, Vivas L, Bertuzzi MA, Apella MC, Audisio MC. 2010. Edible films with anti-Listeria monocytogenes activity. Internat J Food Sci Technol. 45:1443–1449.
  • Imam S, Glenn G, Chiou BS, Shey J, Narayan R, Orts W. 2008. Types, production and assessment of biobased food packaging materials. In: Chiellini E, editor. Environmentally compatible food packaging. Boca Raton (FL): CRC Press; p. 29–62.
  • Irissin-Mangata J, Bauduin G, Boutevin B, Gontard N. 2001. New plasticizers for wheat gluten films. European Polym J. 37:1533–1541.
  • Iturriaga L, Olabarrieta I, Martínez de Marañón I. 2012. Antimicrobial assays of natural extracts and their inhibitory effect against Listeria innocua and fish spoilage bacteria, after incorporation into biopolymer edible films. Int J Food Microbiol. 158:58–64.
  • Juneja VK, Thippareddi H, Bari L, Inatsu Y, Kawamoto S, Friedman M. 2006. Chitosan protects cooked ground beef and Turkey against clostridium perfringens spores during chilling. J Food Sci. 71:236–240.
  • Ko S, Janes ME, Hettiarachchy NS, Johnson MG. 2001. Physical and chemical properties of edible films containing Nisin and their action against Listeria Monocytogenes. J Food Sci. 66:1006–1011.
  • Koontz JL, Moffitt RD, Marcy JE, O’Keefe SF, Duncan SE, Long TE. 2010. Controlled release of α-tocopherol, quercetin, and their cyclodextrin inclusion complexes from linear low-density polyethylene (LLDPE) films into a coconut oil model food system. Food Addit Contam. 27:1598–1607. November 2010.
  • Korkeala HJ, Björkroth KJ. 1997. Microbiological spoilage and contamination of vacuum-packaged cooked sausages. J Food Protect. 60:724–731. 
  • Luchansky JB, Call JE. 2004. Evaluation of nisin-coated cellulose casings for the control of Listeria monocytogenes inoculated onto the surface of commercially prepared frankfurters. J Food Protect. 67:1017–1021.
  • Lungu B, Johnson GM. 2005. Potassium sorbate does not increase control of Listeria monocytogenes when added to zein coatings with nisin on the surface of full fat turkey frankfurter pieces in a model system at 4ºC. J Food Sci. 70:95–99.
  • Marcos B, Aymerich T, Monfort JM, Garriga M. 2007. Use of antimicrobial biodegradable packaging to control Listeria monocytogenes during storage of cooked ham. Int J Food Microbiol. 120:152–158.
  • Marcuzzo E, Peressini D, Debeaufort F, Sensidoni A. 2010. Effect of ultrasound treatment on properties of gluten-based film. Innov Food Sci Emerg Technol. 11:451–457.
  • McCormick KE, Han IY, Acton JC, Sheldon BW, Dawson PL. 2005. In-package Pasteurization combined with biocideimpregnated films to inhibit Listeria monocytogenes and Salmonella Typhimurium in Turkey Bologna. J Food Sci. 70:52–57.
  • Micard V, Belamri R, Morel M-H GS. 2000. Properties of chemically and physically treated wheat gluten films. J Agric Food Chem. 48:2948–2953.
  • Morel MH, Bonicel J, Micard V, Guilbert S. 2000. Protein insolubilization and thiol oxidation in sulfite-treated wheat gluten films during aging at various temperatures and relative humidities. J Agric Food Chem. 48:186–192.
  • Neetoo H, Ye M, Chen H. 2007. Effectiveness and stability of plastic films coated with nisin for inhibition of Listeria monocytogenes. J Food Protect. 70:1267–1271.
  • Olabarrieta I, Cho SW, Gällstedt M, Sarasua JR, Johansson E, Hedenqvist MS. 2006. Aging properties of films of plasticized vital wheat gluten cast from acidic and basic solutions. Biomacromoleules. 7:1657–1664.
  • Olabarrieta I, Gällstedt M, Ispizua I, Sarasua J-R, Hedenqvist MS. 2006. Properties of aged montmorillonite-wheat gluten composite films. J Agric Food Chem. 54:1283–1288.
  • Ou S, Wang Y, Tang S, Huang C, Jackson MG. 2005. Role of ferulic acid in preparing edible films from soy protein isolate. J Food Eng. 70:205–210.
  • Palacios JM. 2000. [Tesis doctoral]. San Miguel de Tucumán: Universidad Nacional deTucumán, Facultad de Bioquímica, Químíca y Farmacia, p. 44–45.
  • Pllana M, Gjergjizi H, Miftari I, Gjonbalaj M. 2012. The food safety and consumer behavior. J Food Sci Eng. 2:462–468.
  • Pongtharangkul T, Demirci A. 2004. Evaluation of agar diffusion bioassay for nisin quantification. Appl Microbiol and Biotechnol. 65:268–272.
  • Restuccia D, Spizzirri GU, Parisi OI, Cirillo G, Curcio M, Iemma F, Puoci F, Vinci G, Picci N. 2010. New EU regulation aspects and global market of active and intelligent packaging for food industry applications. Food Contr. 21:1425–1435.
  • Scannell AGM, Hill C, Ross RP, Marx S, Hartmeier W, Arendt KE. 2000. Development of bioactive food packaging materials using immobilised bacteriocins lacticin 3147 and Nisaplin®. Internat J Food Microbiol. 60:241–249.
  • Sebti I, Coma V. 2002. Active edible polysaccharide coating and interactions between solution coating compounds. Carbohydr Polym. 49:139–144.
  • Sebti I, Delves-Broughton J, Coma V. 2003. Physicochemical properties and bioactivity of Nisin-Containing cross-linked hydroxypropylmethylcellulose films. J Agric Food Chem. 51:6468–6474.
  • Sebti I, Ham-Pichavant F, Coma V. 2002. Edible bioactive fatty acid-cellulosic derivative composites used in food-packaging applications. J Agric Food Chem. 50:4290–4294.
  • Sian NK, Ishak S. 1990. Effect of pH on formation, proximate composition and rehydration capacity of winged bean and soybean protein-lipid film. J Food Sci. 55:261–262.
  • Sobrino-López A, Martín-Belloso O. 2008. Use of nisin and other bacteriocins for preservation of dairy products. Int Dairy J. 18:329–343.
  • Song Y-h, Zheng Q, Lai Z-z. 2008. Properties of thermo-molded gluten/glycerol/silica composites. Chinese J Polym Sci. 26:631–638.
  • Tanada-Palmu PS, Grosso CRF. 2005. Effect of edible wheat gluten-based films and coatings on refrigerated strawberry (Fragaria ananassa) quality. Postharvest Biol Tech. 36:199–208.
  • Thippareddi H. 2012. Microbiological safety of meat and meat products: challenges and opportunities. J Food Sci Eng. 2:473. 
  • Vermeiren L, Devlieghere F, Debevere J. 2002. Efectiveness of some recent antimicrobial packaging concepts. Food Addit Contam. 19:163–171.
  • Vignolo G, Suriani F, Ruiz Holgado AP, Oliver G. 1993. Antibacterial activity of Lactobacillus strains isolated from dry fermented sausages. J Appl Bacteriol. 75:344–349.
  • Wan VCh-H, Kim MS, Lee S-Y. 2005. Water vapor permeability and mechanical properties of soy protein isolate edible films composed of different plasticizer combinations. J Food Sci. 70:387–391.
  • Williams SK, Roof S, Boyle EA, Burson D, Thippareddi H, Geornaras I, Sofos JN, Wiedmann M, Nightingale K. 2011. Molecular ecology of Listeria monocytogenes and other Listeria species in small and very small ready-to-eat meat processing plants. J Food Protect. 74:63–77.
  • Wu LC, Bates RP. 1972. Soy protein-lipid films. 2. Optimization of film formation. J Food Sci. 37:40–44.
  • Xie L, Hettiarachchy NS, Ju ZY, Meullenet J, Wang H, Slavik MF, Janes ME. 2002. Edible film coating to minimize eggshell breakage and reduce post-wash bacterial contamination measured by dye penetration in eggs. J Food Sci. 67:280–284.
  • Zhang X, Do MD, Kurniawan L, Qiao GG. 2010. Wheat gluten-based renewable and biodegradable polymer materials with enhanced hydrophobicity by using epoxidized soybean oil as a modifier. Carbohydrate Res. 345:2174–2182.
  • Zhang Y, Han JH. 2006. Plasticization of pea starch films with monosaccharides and polyols. J Food Sci. 71:253–261.

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