Journal of Fisheries Science and Technology

Journal of Fisheries Science and Technology

Effect of glutaraldehyde on poly-l-lysine release from gelatin film; extracted from Siberian sturgeon (Acipenser baerii, Brandt, 1869) skin

Document Type : Original Research

Authors
1 Department of Natural Resources and Environmental Engineering, School of Agriculture, Shiraz University, Shiraz, Iran.
2 Department of Food Science and Technology, School of Agriculture, Shiraz University, Shiraz, Iran.
3 Department of Food Hygiene and Public Health, School of Veterinary Medicine, Shiraz University, Shiraz, Iran.
Abstract
This study was designed and conducted to investigate the mechanical and physical properties of fish gelatin films and the effect of Glutaraldehyde crosslinking on antimicrobial control of poly-l-lysine. In this study, the film was prepared by casting method and then 0.05% Glutaraldehyde and 0.05% poly-l-lysine added to fish gelatin film. After that, physical and mechanical properties, antimicrobial activity and release of poly-l-lysine from the film were observed. The results showed that the addition of glutaraldehyde to the fish gelatin film increased tensile pressure (6.80 MPa) and reduced solubility (38.51%), moisture (8.05%), and water vapor permeability (2.03 mm/h mm2kpa×10-6­). The fish gelatin film with glutaraldehyde as a crosslinking agent was showed a smooth surface without porosity according to the SEM results. Moreover, the release of poly-l-lysine from the biopolymer containing the Glutaraldehyde was slower and more continuous due to crosslinking. Considering the mechanical and physical properties of the films and release control of the antimicrobial compound, it seems that films containing crosslinking agents can be used in food storage.
Keywords

Subjects


1- Motelica L, Ficai D, Ficai A, Oprea OC, Kaya DA, Andronescu E. Biodegradable antimicrobial food packaging: Trends and perspectives. Foods. 2020;9(10):1–36.
2- Sohail M, Sun D-W, Zhu Z. Recent Developments in Intelligent Packaging for Enhancing Food Quality and Safety. Critical Reviews in Food Science and Nutrition. 2018;58(15):2650–2662.
3- Almasi H, Jahanbakhsh Oskouie M, Saleh A. A review on techniques utilized for design of controlled release food active packaging. Critical Reviews in Food Science and Nutrition. 2020;61(2):1–21.
4- Mujtaba M, Morsi RE, Kerch G, Elsabee MZ, Kaya M, Labidi J, et al. Current advancements in chitosan-based film production for food technology; A review. International Journal of Biological Macromolecules. 2019;121:889–904.
5- Xu J, Wei R, Jia Z, Song R. Characteristics and bioactive functions of chitosan/gelatin-based film incorporated with ε-polylysine and astaxanthin extracts derived from by-products of shrimp (Litopenaeus vannamei). Food Hydrocolloids. 2020;100:105436–105446.
6- Uranga J, Nguyen BT, Si TT, Guerrero P, De la Caba K. The effect of cross-linking with citric acid on the properties of agar/fish gelatin films. Polymers. 2020;12(2):291–303.
7- Benbettaïeb N, Karbowiak T, Debeaufort F. Bioactive edible films for food applications:Influence of the bioactive compounds on film structure and properties. Critical Reviews in Food Science and Nutrition. 2019;59(7):1137–1153.
8- Deng L, Li X, Miao K, Mao X, Han M, Li D, et al. Development of Disulfide Bond Crosslinked Gelatin/ε-Polylysine Active Edible Film with Antibacterial and Antioxidant Activities. Food and Bioprocess Technology. 2020;13(2):577–588.
9- Menzel C, Olsson E, Plivelic TS, Andersson R, Johansson C, Kuktaite R, et al. Molecular structure of citric acid cross-linked starch films. Carbohydrate Polymers. 2013;96(1):270–276.
10- Scopel BS, Pretto GL, Corrêa JIP, Baldasso C, Dettmer A, Santana RMC. Starch-Leather Waste Gelatin Films Cross-Linked with Glutaraldehyde. Journal of Polymers and the Environment Polymeric. 2020;28(7):1974–1984.
11- López De Dicastillo C, Rodríguez F, Guarda A, Galotto MJ. Antioxidant films based on cross-linked methyl cellulose and native Chilean berry for food packaging applications. Carbohydrate Polymers. 2016;136:1052–1060.
12- Liu F, Liu Y, Sun Z, Wang D, Wu H, Du L, et al. Preparation and antibacterial properties of ε-polylysine-containing gelatin/chitosan nanofiber films. International Journal of Biological Macromolecules. 2020;164:3376–3387.
13- Liu J, Xiao J, Li F, Shi Y, Li D, Huang Q. Chitosan-sodium alginate nanoparticle as a delivery system for ε-polylysine: Preparation, characterization and antimicrobial activity. Food Control. 2018;91:302–310.
14- Mousavi Z, Babaei S, Vardizadeh F, Naseri M. Evaluation of Gelatin Extracted from Siberian Sturgeon ( Acipenser baerii , Brandt , 1869 ) Skin and Biodegradable Film Fabrication. Journal of Fisheries Science and Technology. 2019;8(4):241–9. (in Persian)
15- López-Caballero ME, Gómez-Guillén MC, Pérez-Mateos M, Montero P. A chitosan-gelatin blend as a coating for fish patties. Food Hydrocolloids. 2005;19(2):303–311.
16- Chaibi S, Benachour D, Merbah M, Esperanza Cagiao M, Baltá Calleja FJ. The role of crosslinking on the physical properties of gelatin based films. Colloid and Polymer Science. 2015;293(10):2741–2752.
17- Samadi M, Shekarforoush SS, Gheisari HR. Antimicrobial effects of magnesium oxide nanoparticles and ε -poly-L-lysine against Escherichia coli O157 : H7 and Listeria monocytogenes. Journal of Medical Microbiology. 2016;10(2):33–41. (in Persian)
18- Ojagh SM, Rezaei M, Razavi SH, Hosseini SMH. Effect of chitosan coatings enriched with cinnamon oil on the quality of refrigerated rainbow trout. Food Chemistry. 2010;120(1):193–198.
19- Ballesteros LF, Teixeira JA, Mussatto SI. Extraction of polysaccharides by autohydrolysis of spent coffee grounds and evaluation of their antioxidant activity. Carbohydrt Polymer. 2017;157:258–266.
20- Lee J, Bhattacharyya D, Easteal AJ, Metson JB. Properties of nano-ZnO/poly(vinyl alcohol)/poly(ethylene oxide) composite thin films. Current Applied Physics. 2008;8(1):42–47.
21- Haase H, Jordan L, Keitel L, Keil C, Mahltig B. Comparison of methods for determining the effectiveness of antibacterial functionalized textiles. PLoS ONE. 2017;12(11):1–16.
22- Jiménez A, Fabra MJ, Talens P, Chiralt A. Edible and Biodegradable Starch Films: A Review. Food and Bioprocess Technology. 2012;5(6):2058–2076.
23- Fan HY, Duquette D, Dumont MJ, Simpson BK. Salmon skin gelatin-corn zein composite films produced via crosslinking with glutaraldehyde: Optimization using response surface methodology and characterization. International Journal of Biological Macromolecules. 2018;120:263–273.
24- Garavand F, Rouhi M, Razavi SH, Cacciotti I, Mohammadi R. Improving the integrity of natural biopolymer films used in food packaging by crosslinking approach: A review. International Journal of Biological Macromolecules. 2017;104:687–707.
25- Yeng CM, Husseinsyah S, Ting SS. Chitosan/corn cob biocomposite films by cross-linking with glutaraldehyde. BioResources. 2013;8(2):2910–2923.
26- Bourtoom T. Edible protein films: Properties enhancement. International Food Research Journal. 2009;16(1):1–9.
27- Aider M. Chitosan application for active bio-based films production and potential in the food industry: Review. LWT - Food Science and Technology. 2010;43(6):837–842.
28- Wu J, Sun Q, Huang H, Duan Y, Xiao G, Le T. Enhanced physico-mechanical, barrier and antifungal properties of soy protein isolate film by incorporating both plant-sourced cinnamaldehyde and facile synthesized zinc oxide nanosheets. Colloids and Surfaces B: Biointerfaces. 2019;180(August):31–38.
29- Han Y, Yu M, Wang L. Physical and antimicrobial properties of sodium alginate/carboxymethyl cellulose films incorporated with cinnamon essential oil. Food Packaging and Shelf Life. 2018;15(October 2016):35–42.
30- Zinn S, Betz T, Schnell M. Structure determination of trans -cinnamaldehyde by broadband microwave spectroscopy. Pccp. 2015;17:16080–16095.
31- Dammak I, Lourenço RV, Sobral PJ do A. Active gelatin films incorporated with Pickering emulsions encapsulating hesperidin: Preparation and physicochemical characterization. Journal of Food Engineering. 2018;296:9–20.
32- Wang L, Wang X, Wu H, Liu R. Overview on biological activities and molecular characteristics of sulfated polysaccharides from marine green algae in recent years. Marine Drugs. 2014;12(9):4984–5020.
33- Zhang W, Shu C, Chen Q, Cao J, Jiang W. The multi-layer film system improved the release and retention properties of cinnamon essential oil and its application as coating in inhibition to penicillium expansion of apple fruit. Food Chemistry. 2019;299(May):125109.
34- Arcan I, Yemenicioǧlu A. Development of flexible zein-wax composite and zein-fatty acid blend films for controlled release of lysozyme. Food Research International. 2013;51(1):208–216.
35- Sun Z, Wang CH. Quasielastic Light Scattering from Semidilute Ternary Polymer Solutions of Polystyrene and Poly (methyl methacrylate) in Benzene. Macromolecules. 1996;29(6):2011–2018.
36- Ziiberman & sofer. A Mathematical Model for Predicting Controlled Release of Bioactive Agents from Composite Fiber Structures. Journal of Biomedical Materials Research Part A. 2006;79(4):963–973.
37- Hiwale P, Lampis S, Conti G, Caddeo C, Murgia S, Fadda AM, et al. In vitro release of lysozyme from gelatin microspheres: Effect of cross-linking agents and thermoreversible gel as suspending medium. Biomacromolecules. 2011;12(9):3186–3193.
38- Lin L, Gu Y, Cui H. Novel electrospun gelatin-glycerin-ε-Poly-lysine nanofibers for controlling Listeria monocytogenes on beef. Food Packaging and Shelf Life. 2018;18(June):21–30.
39- Li YQ, Han Q, Feng JL, Tian WL, Mo HZ. Antibacterial characteristics and mechanisms of poly-lysine against Escherichia coli and Staphylococcus aureus. Food Control. 2014;43:22–27.