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Determination of microbiological quality of boiled crayfish (Astacus leptodactylus) samples treated with chitosan


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Abdelsalam M. (2017). Potential role of anaerobic bacteria as fish pathogens. J. Aqua. Res. Dev., 7: 1–2. Search in Google Scholar

Abdel-Naeem H.H.S., Zayed N.E.R., Mansour H.A. (2021). Effect of chitosan and lauric arginate edible coating on bacteriological quality, deterioration criteria, and sensory attributes of frozen stored chicken meat. LWT-Food Sci. Tech., 150: 111928. Search in Google Scholar

Abdou E.S., Osheba A., Sorour M. (2012). Effect of chitosan and chitosan-nanoparticles as active coating on microbiological characteristics of fish fingers. Int. J. Sci. Appl. Tech., 2: 158–169. Search in Google Scholar

Abou-Taleb M., Ibrahim S.M., El-Sherif S., Talab A.S., El-Ghafour S.A. (2021). Effect of cooking methods and refrigeration conditions on quality and safety of the crayfish (Procambarus clarkii). Egyptian J. Aqua. Bio. Fish., 25: 215–226. Search in Google Scholar

Alak G., Hisar S.A., Hisar O., Kaban G., Kaya M. (2010). Microbiological and chemical properties of Bonito Fish (Sarda sarda) fillets packaged with chitosan film, modified atmosphere and vacuum. Kaf. Univ. Vet. Fak. Der., 16: 83–80. Search in Google Scholar

Botta J.R. (1995). Evaluation of seafood freshness quality. New York, VCH Publish, 180. Search in Google Scholar

Çatak J., Çaman R., Yaman M., Ceylan Z. (2022). Effect of baking and grilling on B vitamins of selected fishes and chicken parts. J. Cul. Sci. Tech., doi: 10.1080/15428052.2022.2060161 Search in Google Scholar

Ceylan Z. (2018). Use of characterized chitosan nanoparticles integrated in poly(vinyl alcohol) nanofibers as an alternative nanoscale material for fish balls. J. Food Saf., 38: 6. Search in Google Scholar

Ceylan Z. (2019). A new cost-effective process for limitation of microbial growth in fish fleshes: Wrapping by aluminum foil coated with electrospun nanofibers. J. Food Saf., 39: 5. Search in Google Scholar

Ceylan Z., Ozogul Y. (2019). Irradiation technology. Chapter 6. In: Innovative technologies in seafood processing, Ozogul Y. (ed.). CRC Press, Taylor and Francis Group, pp. 115–129. Search in Google Scholar

Ceylan Z., Unal Sengor G.F., Sağdıç O., Yilmaz M.T. (2017). A novel approach to extend microbiological stability of sea bass (Dicentrarchus labrax) fillets coated with electrospun chitosan nanofibers. LWT-Food Sci. Tech., 79: 367–375. Search in Google Scholar

Ceylan Z., Meral R., Karakaş C.Y., Dertli E., Yilmaz M.T. (2018 a). A novel strategy for probiotic bacteria: Ensuring microbial stability of fish fillets using characterized probiotic bacteria-loaded nanofibers. Innov. Food Sci. Emerg., 48: 212–218. Search in Google Scholar

Ceylan Z., Unal Sengor G.F., Basahel A., Yilmaz M.T. (2018 b). Determination of quality parameters of gilthead sea bream (Sparus aurata) fillets coated with electrospun nanofibers. J. Food Saf., 38: 6. Search in Google Scholar

Chen Y., Chen H., Gong F., Yang F., Jiang Q., Xu Y., Xi W. (2022). A comparison of eating safety and quality of live and dead freshwater crayfish (Procambarus clarkii) at different stages. Food Res. Int., 159: 111630. Search in Google Scholar

Çoban M.Z. (2021). Effectiveness of chitosan/propolis extract emulsion coating on refrigerated storage quality of crayfish meat (Astacus leptodactylus). CyTA-J. Food, 19: 212–219. Search in Google Scholar

Diler İ., Genç İ.Y., Diler A. (2017). Effects of different treatments on the quality and safety of crayfish (Astacus leptodactylus). J. Food Q., 2904706: 1–7. Search in Google Scholar

Downes F.P., Ito K. (2001). Compendium of methods for microbiological examination of foods. 4th edition. Washington, APHA, 659. Search in Google Scholar

Durmus M., Ozogul Y., Kosker A.R., Ucar Y., Boğa, E.K., Ceylan Z., Ozogul F. (2020). The function of nanoemulsion on preservation of rainbow trout fillet. J. Food Sci. Tech., 57: 895–904. Search in Google Scholar

El Bayoml R.M., Shata R.H.M., Mahmoud A.F.A. (2023). Effects of edible chitosan coating containing Salvia rosmarinus es sential oil on quality characteristics and shelf life extension of rabbit meat during chilled storage. J. Food Meas. Charact., 17: 2464–2474. Search in Google Scholar

El-Deen A.G.S. (2013). Susceptibility rate of Nile tilapia, (Oreochromıs niloticus) and red swamp crayfish (Procambarus clarkii) to Proteus vulgarıs infection. Assiut Vet. Med. J., 59: 138–145. Search in Google Scholar

Fan W., Sun J., Chen,Y., Qui J., Zhang Y., Chi Y. (2009). Effects of chitosan coating on quality and shelf-life of silver carp during frozen storage. Food Chem., 115: 66–70. Search in Google Scholar

Gram L., Huss H.H. (1996). Microbiological spoilage of fish and fish products. Int. J. Food Microbiol., 33: 121–137. Search in Google Scholar

Gürel I.A., Aksun T.E.T., El Abed, N., Regenstein J.M., Özogul F. (2020). The impact of chitosan on seafood quality and human health: A review. T. Food Sci. Tech., 97: 404–416. Search in Google Scholar

Harrigan W.F. (1998). Laboratory methods in food microbiology. 3 ed. California, USA, Academic Press Limited. ICMSF (1986). International Commission on Microbiological Specifications for Foods, sampling plans for fish and shellfish. In: ICMSF (ed.). Microorganisms in foods. Sampling for microbiological analysis: Principles and scientific applications. (2nd ed.). Toronto, Canada, U. Tor. Pre., pp. 181–196. Search in Google Scholar

Jeon Y.J., Kamil J.Y.V.A., Shahidi F. (2002). Chitosan as an edible invisible film for quality preservation of herring and Atlantic cod. J. Agr. Food Chem., 50: 5167–5178. Search in Google Scholar

Jersek B. (2022). Microbial examination of food. Instructions and workbook for microbiological examination of food laboratory exercises. Other Educational Material. Ljubljana : Biotechnical Faculty, Dep. Food Sci., pp. 1–45. Search in Google Scholar

Johansen P.G., Owusu-Kwarteng J., Parkouda C., Padonou S.W., Jespersen L. (2019). Occurrence and importance of yeasts in indigenous fermented food and beverages produced in Sub-Saharan Africa. Front. Microbiol., 10: 1–22. Search in Google Scholar

Karaton K.N., Gürel İ.A. (2018). The investigation of the shelf life at 2±1°C of Luciobarbus esocinus fillets packaged with films prepared with the addition of different essential oils and chitosan. J. Food Sci. Tech., 55: 2692–2701. Search in Google Scholar

Karaton N., İnanlı A.G. (2011). The effect of seasonal change on the meat yield and proximate composition of chub (Squalius cephalus). Fırat Univ. J. Sci., 23: 63–69. Search in Google Scholar

Li H.L., Huang J.J., Li M.J., Chen Y.N., Xiong, G.Q., Cai J., Zu X.Y. (2023). Effects of cobalt-sourced γ-irradiation on the meat quality and storage stability of crayfishes (Procambarus clarkii). Food Sci. Technol. Camp., 43: e104222. Search in Google Scholar

Mauerhofer L.M., Pappenreiter P., Paulik C., Seifert A.H., Bernacchi S., Simon K., Ritmann M.R. (2019). Methods for quantification of growth and productivity in anaerobic microbiology and biotechnology. Folia Microbiol. (Praha), 64: 321–360. Search in Google Scholar

Meral R., Alav A., Karakas C.Y., Dertli E., Yilmaz M.T., Ceylan Z. (2019 a). Effect of electrospun nisin and curcumin loaded nanomats on the microbial quality, hardness and sensory characteristics of rainbow trout fillet. LWT-Food Sci. Tech., 113: 108292. Search in Google Scholar

Meral R., Ceylan Z., Kose S. (2019 b). Limitation of microbial spoilage of rainbow trout fillets using characterized thyme oil antibacterial nanoemulsions. J. Food Saf., 39: e12644. Search in Google Scholar

No H.K., Meyers S.P., Prinyawiwatkul W., Xu Z. (2007). Applications of chitosan for improvement of quality and shelf life of foods: A review. J. Food Sci., 72: 87–100. Search in Google Scholar

Ozogul Y., Yuvka I., Ucar Y., Durmus M., Kosker A.R., Oz M., Ozogul F. (2017). Evaluation of effects of nanoemulsion based on herb essential oils (rosemary, laurel, thyme and sage) on sensory, chemical and microbiological quality of rainbow trout (Oncorhynchus mykiss) fillets during ice storage. LWT-Food Sci. Tech., 75: 677–684. Search in Google Scholar

Ponce A.G., Roura S.I., Del V.C.E., Moreira M.R. (2008). Antimicrobial and antioxidant activities of edible coatings enriched with natural plant extracts: In vitro and in vivo studies. Posth. Biol. Tech., 49: 294–300. Search in Google Scholar

Simat V., Mekinic I.G. (2019). Advances in chilling, Chapter 1. In: Innovative technologies in seafood processing, Ozogul, Y. (ed.). CRC Press, Taylor and Francis Group, pp. 1–25. Search in Google Scholar

Stagnitta P.V, Micalizzi B., Stefanini De Guzmán A.M. (2006). Prevalence of some bacteria yeasts and molds in meat foods in San Luis, Argentina. Cent. Eur. J. Public Health, 14: 141–144. Search in Google Scholar

Volpi E., Kobayashi H., Sheffield-Moore M., Mittendorfer B., Wolfe R.R. (2003). Essential amino acids are primarily responsible for the amino acid stimulation of muscle protein anabolism in healthy elderly adults. Am. J. Clin. Nutr., 78: 250–258. Search in Google Scholar

Yalpani M., Johnson F., Robinson L.E. (1992). Antimicrobial activity of some chitosan derivatives In: Advances in Chitin and Chitosan, Brine C.J., Sandford P.A., Zikakis J.P. (eds). Els. App. Sci., pp. 543–548. Search in Google Scholar

Yaman M., Sar M., Ceylan Z. (2022). A nanofiber application for thiamine stability and enhancement of bioaccessibility of raw, cooked salmon and red meat samples stored at 4°C. Food Chem., 373: 131447. Search in Google Scholar

Yang B., Yanling Z., Shaotong J., Jianfeng L., Lin L. (2023). Effects of different cooking methods on the edible quality of crayfish (Procambarus clarkii) meat. Food Chem. Adv., 2: 100168. Search in Google Scholar

Yazgan H., Ozogul Y., Durmus M., Balikci E., Gokdogan S., Ucar Y., Aksun E.T. (2017). Effects of oil-in-water nanoemulsion based on sunflower oil on the quality of farmed sea bass and gilthead sea bream stored at chilled temperature (2±2ºC). J. Aqua. Food Prod. Technol., 26: 979–992. Search in Google Scholar

Yoshinaga D.H., Frank H.A. (1982). Histamine-producing bacteria in decomposing skipjack tuna (Katsuwonus pelamis). Appl. Environ. Microbiol., 44: 447–452. Search in Google Scholar

Zambuchini B., Fiorini D., Verdenelli M.C., Orpianesi C., Ballini R. (2008). Inhibition of microbiological activity during sole (Solea solea L.) chilled storage by applying ellagic and ascorbic acids. Food Sci. Technol., 41: 1733–1738. Search in Google Scholar

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