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Importance of Food Safety and Methods for the Detection of Bacteria

Yıl 2023, Cilt: 3 Sayı: 2, 47 - 53, 30.05.2023

Öz

Food safety is a very important issue to protect the health and well-being of consumers and must be ensured in all processes from food production to consumption. People cannot be safe in consuming healthy food without ensuring food safety. Contaminated food can cause infections, poisonings and diseases to the consumers. These conditions can be life-threatening, especially for children, the elderly, pregnant women, and those with compromised immune systems. For these reasons, it is a common responsibility of the food industry, consumers and societies to ensure food safety in all processes and at every stage.
In order to ensure food safety, proper hygiene conditions in food production must be provided, the sources of food must be followed and the correct storage conditions must be provided besides proper personnel training and sustainable quality control systems in the production process. In order to do all these things correctly, the accurate detection of harmful substances and pathogens in foods is very important. There are several methods for the detection of substances and bacteria that threaten food safety. These methods include physical, chemical and microbiological analysis.
In the study, the main factors that threaten food safety are shared, detection methods for bacteria which are one of the most important threat factors are discussed and their importance in terms of protecting food safety is emphasized. In addition, biosensor technologies that have been developed and are being developed for the detection of bacteria are mentioned.
All these methods are important steps to ensure food safety and safer food consumption will be possible if food manufacturers, businesses and consumers fulfill their responsibilities.

Proje Numarası

TYL-2022-10771

Kaynakça

  • Aibinu IE, Smooker PM, Lopata AL. Anisakis Nematodes in Fish and Shellfish- from infection to allergies. Int J Parasitol Parasites Wildl. 2019; 9:384-393.
  • Ali A, Parisi A, Conversano MC, Iannacci A, D’Emilio F, Mercurio V, Normanno G. Food-Borne Bacteria Associated with Seafoods: A Brief Review. J Food Qual Hazards Control. 2020; 7:4-10.
  • Aras Z. Mikrobiyolojide kullanılan hızlı tanı yöntemleri. Türk Hijyen ve Deneysel Biyoloji Dergisi. 2011;68(2):97-104.
  • Aydin M, Aydin EB, Sezgintürk MK. Advances in Immunosensor technology, Adv Clin Chem. 2021;102:1-62. Babalola OO. Molecular techniques: An overview of methods for the detection of bacteria. Afr J Biotechnol. 2003;2(12):710-713.
  • Barrett CB, Lentz EC. Food Insecurity. International Studies Compendium Project. 2009;1-44.
  • Bonnet M, Lagier J, Raoult D, Khelaifia S. Bacterial culture through selective and non-selective conditions: the evolution of culture media in clinical microbiology. New Microbes and New Infect. 2020; 34:1-11.
  • Borchers A, Teuber SS, Keen CL, Gershwin ME. Food safety. Clinic Rev Allerg Immunology. 2010;39(2):95-141
  • Boyacı İH, Temiz HT, Geniş HE, Soykut EA, Yazgan NN, Güven B, Uysal RS, Bozkurt AG, İlaslan K, Torun Ö, Şeker FCD. Dispersive and FT-Raman spectroscopic methods in food analysis. RSC Adv. 2015; 5:1-52.
  • Ceyhun-Sezgin, A. Gıda güvenliği açısından tehlike oluşturan bazı bakteriler ve sağlık üzerinde etkileri. Journal of Global Food Research, 2020;1(1):1-9.
  • Chamorro-Garcia A, Merkoc A. Nanobiosensors in diagnostics. Nanobiomed. 2016; 3:1–26. Cosnier S, Mailley P. Recent advances in DNA sensors. Analyst. 2008; 133:984-991.
  • Deininger DU, Sur M. Food safety in a globalizing world: opportunities and challenges for India. Agric Econ. 2006;37(s1):1-40.
  • Durlu-Özkaya F. Gıda zehirlenmelerinde etken faktörler. Türk Hijyen ve Deneysel Biyoloji Dergisi. 2008;65(3):149-158.
  • Estrela P, Fogel R, Limson J, Seshia AA. Acoustic biosensors. Essays Biochem. 2016;60(1):101-110. Fukuda K. Food safety in a globalized world. Bull World Health Organ. 2015;93(4):210-213.
  • Fung D. Rapid methods and automation in food microbiology: 25 years of development and predictions. Global Issues in Food Sci Technol. 2006;165-176.
  • Fung DYC. Rapid methods and automation in microbiology. Compr Rev Food Sci Food Saf. 2002;1(1):3-22.
  • Fung F, Wang HS, Menon S. Food safety in the 21st century. Biomed J. 2018;41(2):88-95.
  • Gracias KS, McKillip JL. A review of conventional detection and enumeration methods for pathogenic bacteria in food. Can J Microbiol. 2004;50(11):883-890.
  • Haręża P, Zmudziński W. Methods to prevent marketing and distribution of physically contaminated food products. Eur Res Stud. 2021;24(4):614-631.
  • Havelaar AH, Brul S, Jong AEI, Jonge R, Zwietering MH, Kuile BH. Future challenges to microbial food safety. Int J Food Microbiol. 2010;139 (Suppl 1):79-94.
  • Huang A, Qiu Z, Jin M, Shen Z, Chen Z, Wang X, Li JW. High-throughput detection of food-borne pathogenic bacteria using oligonucleotide microarray with quantum dots as fluorescent labels. Int J Food Microbiol. 2014; 185:27-32.
  • Ivnitski D, Abdel-Hamid I, Atanasov P, Wilkins E. Biosensors for detection of pathogenic bacteria. Biosens Bioelectron. 1999;14(7):599-624.
  • Jackson LS. Chemical food safety issues in the united states: past, present, and future. J Agric Food Chem. 2009;57(18):8161-8167.
  • Jain S, Chattopadhyay S, Jackeray R, Abid CK, Kohli GS, Singh H. Highly sensitive detection of Salmonella typhi using surface aminated polycarbonate membrane enhanced-ELISA. Biosens Bioelectron. 2012;31(1):37-43.
  • Jongwanich J. Impact of food safety standards on processed food exports from developing countries. ADB Econ Work Pap Ser. 2009; 154:1-33.
  • Karlsson R. SPR for molecular interaction analysis: a review of emerging application areas. J Mol Recognit. 2004;17(3):151-161.
  • Keskin M, Arslan F. Biyosensörler. Gazi Üniversitesi Fen Fakültesi Dergisi. 2020;1(1-2):51-60.
  • Lagier JC, Edouar S, Pagnier I, Mediannikov O, Drancourt M, Raoult D. Current and past strategies for bacterial culture in clinical microbiology. Clin Microbiol Rev. 2015;30119-2(19):2052-2975.
  • Law JWF, Mutalib NSA, Chan KG, Lee LH. Rapid methods for the detection of foodborne bacterial pathogens: principles, applications, advantages and limitations. Front. Microbiol. 2015;5(770):1-19.
  • Lawrence DT, Dobmeier SG, Bechtel LK, Holstege CP. Food poisoning. Emerg Med Clin N Am. 2007;25(2):357-373.
  • Lazcka O, Campo FJ, Munoz FX. Pathogen detection: A perspective of traditional methods and biosensors. Biosens Bioelectron. 2007;22(7):1205-1217.
  • Lee K-M, Runyon M, Herrman TJ, Phillips R, Hsieh J. Review of Salmonella detection and identification methods: aspects of rapid emergency response and food safety. Food Control 2015; 47:264-276.
  • Lee SJ, Park JS, Im HT, Jung H. A microfluidic ATP-bioluminescence sensor for the detection of airborne microbes. Sens and Actuators B Chem, 2008;132(2):443-448.
  • Leonard P, Hearty S, Brennan J, Dunne L, Quinn J, Chakraborty T, Kennedy R. Advances in biosensors for detection of pathogens in food and water. Enzyme Microb Technol. 2003; 32:3-13.
  • Li S, Tian Y, Jiang P, Lin Y, Liu X, Yang H. Recent advances in the application of metabolomics for food safety control and food quality analyses. Crit Rev Food Sci Nutr. 2020;61(9):1448-1469.
  • Lin L, Zheng Q, Lin J, Yuk H-G, Guo L. Immuno- and nucleic acid-based current technique for Salmonella detection in food. Eur Food Res Technol. 2020; 246:373-395.
  • Liu Y, Singh P, Mustapha A. Multiplex high resolution melt-curve real-time PCR assay for reliable detection of Salmonella. Food Control. 2018; 91:225-230.
  • Llandro J, Palfreyman JJ, Ionescu A. Magnetic biosensor technologies for medical applications: a review. Med Biol Eng Comput. 2010; 48:977-998.
  • Makun HA, Significance, Prevention and Control of Food Related Diseases. 2016, In Tech, Rijeka, Crotia.
  • Meng gen MA, Wang HN, Yong YU, Zhang D, Liu SG. Detection of antimicrobial resistance genes of pathogenic Salmonella from swine with DNA microarray. J Vet Diagn Investig. 2007;19(2):161-167.
  • Nawrocka A, Lamorska J. Determination of food quality by using spectroscopic methods. Adv Agrophy Res. 2011;347-367.
  • Neethirajan S, Ahmed SR, Chand R, Buozis J, Nagy É. Recent Advances in Biosensor Development for Foodborne Virus Detection. Nanotheranostics. 2017;1(3):272-295.
  • Özkaya FD, Cömert M. Gıda zehirlenmelerinde etken faktörler. Türk Hijyen ve Deneysel Biyoloji Dergisi. 2008;65(3):149-158.
  • Park SH, Aydin M, Khatiwara A, Dolan MC, Gilmore DF, Bouldin JL, Ahn S, Ricke SC. Current and emerging technologies for rapid detection and characterization of Salmonella in poultry and poultry products. Food Microbiol. 2014; 38:25-262.
  • Sedighi-Khavidak S, Mazloum-Ardakani M, Khorasgani MR, Emtiazi G, Hosseinzadeh L. Detection of aflD gene in contaminated pistachio with Aspergillus flavus by DNA based electrochemical biosensor, Int J Food Prop. 2017; 20(1):119-130
  • Shah DK, Maghsoudlou DP. Enzyme-linked immunosorbent assay (ELISA): the basics. Br J Hosp Med. 2016;77(7):98-101.
  • Sharman N, Wallace CA, Jespersen L. Terminology and the understanding of culture, climate, and behavioural change – Impact of organisational and human factors on food safety management, Trends Food Sci Technol. 2020;96:13-20.
  • Singh G, Koerner T, Gelinas JM, Abbott M, Brady B, Huet AC, Charlier C, Delahaut P, Godefroy SB. Design and characterization of a direct ELISA forthe detection and quantification of leucomalachite green. Food Addit Contam Part A. 2011;28(6):731-739.
  • Thakur MS, Ragavan KV. Biosensors in food processing. J Food Sci Technol. 2012;50(4):625-641.
  • Váradi L, Luo JL, Hibbs DE, Perry JD, Anderson RJ, Orenga S, Groundwater PW. Methods for the detection and identification of pathogenic bacteria: past, present, and future. Chem Soc Rev 2017;17(2):4818-4832.
  • Vinayaka AC, Ngo TA, Kant K, Engelsmann P, Dave VP, Shahbazi M-A, Wolff A, Bang DD. Rapid detection of Salmonella enterica in food samples by a novel approach with combination of sample concentration and direct PCR. Biosensors Bioelectron. 2019; 129:224-230.
  • Wang H, Gill VS, Cheng CM, Gonzalezescalona N, Irvin KA, Zheng J, Bell RL, Jacobson AP, Hammack TS. Evaluation and comparison of rapid methods for the detection of Salmonella in naturally contaminated pine nuts using different pre-enrichment media. Food Microbiol. 2015; 46:58–65.
  • Xu HX, Kawamura Y, Li N, Zhao L, Li TM, Li ZY, Shu S, Ezaki TA. Rapid method for determining the G+C content of bacterial chromosomes by monitoring fluorescence intensity during DNA denaturation in a capillary tube. Int J Syst Evol Microbiol. 2000;50(4):1463-1469.
  • Zdolec N, Kis M. Meat Safety from Farm to Slaughter—Risk-Based Control of Yersinia enterocolitica and Toxoplasma gondii. Processes. 2021;9(5):815.

Gıda Güvenliğinin Önemi ve Bakterilerin Tespiti İçin Yöntemler

Yıl 2023, Cilt: 3 Sayı: 2, 47 - 53, 30.05.2023

Öz

Gıda güvenliği, tüketicilerin sağlığını ve refahını korumak için son derece önemli bir konu olup gıda üretiminden tüketimine kadar tüm süreçlerde sağlanmalıdır. Gıda güvenliği olmadan, insanlar sağlıklı gıda tüketimi konusunda güvende olamazlar. Kontamine edilmiş gıdalar, tüketen kişilerin enfeksiyonlara, zehirlenmelere ve hastalıklara yakalanmasına neden olabilir. Bu durumlar, özellikle çocuklar, yaşlılar, hamileler ve bağışıklık sistemi zayıf olanlar için hayatı tehdit edici olabilir. Bu nedenlerle gıda güvenliğini tüm süreçlerde ve her aşamada sağlamak gıda endüstrisinin, tüketicilerin ve toplumların ortak sorumluluğudur.
Gıda güvenliğinin sağlanması için hijyenik üretim ortamı sağlanmalı, gıdaların kaynakları takip edilmeli ve nereden geldiği bilinmeli, doğru saklama koşulları belirlenmeli, personel eğitimi sağlanmalı ve üretim sürecinde sürdürülebilir kalite kontrol sistemleri kurulmalıdır. Tüm bunları doğru şekilde yapabilmek için gıdaların içerisindeki zararlı maddelerin ve patojenlerin doğru tespiti çok önemlidir. Gıda güvenliğini tehdit eden unsurlar ve bakterilerin tespiti için birçok yöntem bulunmaktadır. Bu yöntemler arasında fiziksel, kimyasal ve mikrobiyolojik analizler yer almaktadır.
Yapılan çalışmada gıda güvenliğini tehdit eden temel unsurlar ele alınmış olup en önemli tehdit unsurlarından olan bakteriler için tespit yöntemleri paylaşılmış ve bunların gıda güvenliğini koruma açısından önemi vurgulanmıştır. Bununla birlikte bakteri tespiti için geliştirilmiş ve geliştirilmekte olan biyosensör teknolojilerinden bahsedilmiştir.
Tüm bu yöntemler, gıda güvenliğini sağlamak için önemli adımlardır ve gıda üreticilerinin, işletmelerin ve tüketicilerin sorumluluklarını yerine getirmeleri ile daha güvenli gıda tüketimi mümkün olacaktır.

Destekleyen Kurum

Marmara Üniversitesi BAPKO

Proje Numarası

TYL-2022-10771

Teşekkür

Çalışma Marmara Üniversitesi Bilimsel Araştırma Projeleri Komisyonu Başkanlığı (BAPKO) tarafından TYL-2022-10771 numaralı proje ile desteklenmiştir. Teşekkür ederiz.

Kaynakça

  • Aibinu IE, Smooker PM, Lopata AL. Anisakis Nematodes in Fish and Shellfish- from infection to allergies. Int J Parasitol Parasites Wildl. 2019; 9:384-393.
  • Ali A, Parisi A, Conversano MC, Iannacci A, D’Emilio F, Mercurio V, Normanno G. Food-Borne Bacteria Associated with Seafoods: A Brief Review. J Food Qual Hazards Control. 2020; 7:4-10.
  • Aras Z. Mikrobiyolojide kullanılan hızlı tanı yöntemleri. Türk Hijyen ve Deneysel Biyoloji Dergisi. 2011;68(2):97-104.
  • Aydin M, Aydin EB, Sezgintürk MK. Advances in Immunosensor technology, Adv Clin Chem. 2021;102:1-62. Babalola OO. Molecular techniques: An overview of methods for the detection of bacteria. Afr J Biotechnol. 2003;2(12):710-713.
  • Barrett CB, Lentz EC. Food Insecurity. International Studies Compendium Project. 2009;1-44.
  • Bonnet M, Lagier J, Raoult D, Khelaifia S. Bacterial culture through selective and non-selective conditions: the evolution of culture media in clinical microbiology. New Microbes and New Infect. 2020; 34:1-11.
  • Borchers A, Teuber SS, Keen CL, Gershwin ME. Food safety. Clinic Rev Allerg Immunology. 2010;39(2):95-141
  • Boyacı İH, Temiz HT, Geniş HE, Soykut EA, Yazgan NN, Güven B, Uysal RS, Bozkurt AG, İlaslan K, Torun Ö, Şeker FCD. Dispersive and FT-Raman spectroscopic methods in food analysis. RSC Adv. 2015; 5:1-52.
  • Ceyhun-Sezgin, A. Gıda güvenliği açısından tehlike oluşturan bazı bakteriler ve sağlık üzerinde etkileri. Journal of Global Food Research, 2020;1(1):1-9.
  • Chamorro-Garcia A, Merkoc A. Nanobiosensors in diagnostics. Nanobiomed. 2016; 3:1–26. Cosnier S, Mailley P. Recent advances in DNA sensors. Analyst. 2008; 133:984-991.
  • Deininger DU, Sur M. Food safety in a globalizing world: opportunities and challenges for India. Agric Econ. 2006;37(s1):1-40.
  • Durlu-Özkaya F. Gıda zehirlenmelerinde etken faktörler. Türk Hijyen ve Deneysel Biyoloji Dergisi. 2008;65(3):149-158.
  • Estrela P, Fogel R, Limson J, Seshia AA. Acoustic biosensors. Essays Biochem. 2016;60(1):101-110. Fukuda K. Food safety in a globalized world. Bull World Health Organ. 2015;93(4):210-213.
  • Fung D. Rapid methods and automation in food microbiology: 25 years of development and predictions. Global Issues in Food Sci Technol. 2006;165-176.
  • Fung DYC. Rapid methods and automation in microbiology. Compr Rev Food Sci Food Saf. 2002;1(1):3-22.
  • Fung F, Wang HS, Menon S. Food safety in the 21st century. Biomed J. 2018;41(2):88-95.
  • Gracias KS, McKillip JL. A review of conventional detection and enumeration methods for pathogenic bacteria in food. Can J Microbiol. 2004;50(11):883-890.
  • Haręża P, Zmudziński W. Methods to prevent marketing and distribution of physically contaminated food products. Eur Res Stud. 2021;24(4):614-631.
  • Havelaar AH, Brul S, Jong AEI, Jonge R, Zwietering MH, Kuile BH. Future challenges to microbial food safety. Int J Food Microbiol. 2010;139 (Suppl 1):79-94.
  • Huang A, Qiu Z, Jin M, Shen Z, Chen Z, Wang X, Li JW. High-throughput detection of food-borne pathogenic bacteria using oligonucleotide microarray with quantum dots as fluorescent labels. Int J Food Microbiol. 2014; 185:27-32.
  • Ivnitski D, Abdel-Hamid I, Atanasov P, Wilkins E. Biosensors for detection of pathogenic bacteria. Biosens Bioelectron. 1999;14(7):599-624.
  • Jackson LS. Chemical food safety issues in the united states: past, present, and future. J Agric Food Chem. 2009;57(18):8161-8167.
  • Jain S, Chattopadhyay S, Jackeray R, Abid CK, Kohli GS, Singh H. Highly sensitive detection of Salmonella typhi using surface aminated polycarbonate membrane enhanced-ELISA. Biosens Bioelectron. 2012;31(1):37-43.
  • Jongwanich J. Impact of food safety standards on processed food exports from developing countries. ADB Econ Work Pap Ser. 2009; 154:1-33.
  • Karlsson R. SPR for molecular interaction analysis: a review of emerging application areas. J Mol Recognit. 2004;17(3):151-161.
  • Keskin M, Arslan F. Biyosensörler. Gazi Üniversitesi Fen Fakültesi Dergisi. 2020;1(1-2):51-60.
  • Lagier JC, Edouar S, Pagnier I, Mediannikov O, Drancourt M, Raoult D. Current and past strategies for bacterial culture in clinical microbiology. Clin Microbiol Rev. 2015;30119-2(19):2052-2975.
  • Law JWF, Mutalib NSA, Chan KG, Lee LH. Rapid methods for the detection of foodborne bacterial pathogens: principles, applications, advantages and limitations. Front. Microbiol. 2015;5(770):1-19.
  • Lawrence DT, Dobmeier SG, Bechtel LK, Holstege CP. Food poisoning. Emerg Med Clin N Am. 2007;25(2):357-373.
  • Lazcka O, Campo FJ, Munoz FX. Pathogen detection: A perspective of traditional methods and biosensors. Biosens Bioelectron. 2007;22(7):1205-1217.
  • Lee K-M, Runyon M, Herrman TJ, Phillips R, Hsieh J. Review of Salmonella detection and identification methods: aspects of rapid emergency response and food safety. Food Control 2015; 47:264-276.
  • Lee SJ, Park JS, Im HT, Jung H. A microfluidic ATP-bioluminescence sensor for the detection of airborne microbes. Sens and Actuators B Chem, 2008;132(2):443-448.
  • Leonard P, Hearty S, Brennan J, Dunne L, Quinn J, Chakraborty T, Kennedy R. Advances in biosensors for detection of pathogens in food and water. Enzyme Microb Technol. 2003; 32:3-13.
  • Li S, Tian Y, Jiang P, Lin Y, Liu X, Yang H. Recent advances in the application of metabolomics for food safety control and food quality analyses. Crit Rev Food Sci Nutr. 2020;61(9):1448-1469.
  • Lin L, Zheng Q, Lin J, Yuk H-G, Guo L. Immuno- and nucleic acid-based current technique for Salmonella detection in food. Eur Food Res Technol. 2020; 246:373-395.
  • Liu Y, Singh P, Mustapha A. Multiplex high resolution melt-curve real-time PCR assay for reliable detection of Salmonella. Food Control. 2018; 91:225-230.
  • Llandro J, Palfreyman JJ, Ionescu A. Magnetic biosensor technologies for medical applications: a review. Med Biol Eng Comput. 2010; 48:977-998.
  • Makun HA, Significance, Prevention and Control of Food Related Diseases. 2016, In Tech, Rijeka, Crotia.
  • Meng gen MA, Wang HN, Yong YU, Zhang D, Liu SG. Detection of antimicrobial resistance genes of pathogenic Salmonella from swine with DNA microarray. J Vet Diagn Investig. 2007;19(2):161-167.
  • Nawrocka A, Lamorska J. Determination of food quality by using spectroscopic methods. Adv Agrophy Res. 2011;347-367.
  • Neethirajan S, Ahmed SR, Chand R, Buozis J, Nagy É. Recent Advances in Biosensor Development for Foodborne Virus Detection. Nanotheranostics. 2017;1(3):272-295.
  • Özkaya FD, Cömert M. Gıda zehirlenmelerinde etken faktörler. Türk Hijyen ve Deneysel Biyoloji Dergisi. 2008;65(3):149-158.
  • Park SH, Aydin M, Khatiwara A, Dolan MC, Gilmore DF, Bouldin JL, Ahn S, Ricke SC. Current and emerging technologies for rapid detection and characterization of Salmonella in poultry and poultry products. Food Microbiol. 2014; 38:25-262.
  • Sedighi-Khavidak S, Mazloum-Ardakani M, Khorasgani MR, Emtiazi G, Hosseinzadeh L. Detection of aflD gene in contaminated pistachio with Aspergillus flavus by DNA based electrochemical biosensor, Int J Food Prop. 2017; 20(1):119-130
  • Shah DK, Maghsoudlou DP. Enzyme-linked immunosorbent assay (ELISA): the basics. Br J Hosp Med. 2016;77(7):98-101.
  • Sharman N, Wallace CA, Jespersen L. Terminology and the understanding of culture, climate, and behavioural change – Impact of organisational and human factors on food safety management, Trends Food Sci Technol. 2020;96:13-20.
  • Singh G, Koerner T, Gelinas JM, Abbott M, Brady B, Huet AC, Charlier C, Delahaut P, Godefroy SB. Design and characterization of a direct ELISA forthe detection and quantification of leucomalachite green. Food Addit Contam Part A. 2011;28(6):731-739.
  • Thakur MS, Ragavan KV. Biosensors in food processing. J Food Sci Technol. 2012;50(4):625-641.
  • Váradi L, Luo JL, Hibbs DE, Perry JD, Anderson RJ, Orenga S, Groundwater PW. Methods for the detection and identification of pathogenic bacteria: past, present, and future. Chem Soc Rev 2017;17(2):4818-4832.
  • Vinayaka AC, Ngo TA, Kant K, Engelsmann P, Dave VP, Shahbazi M-A, Wolff A, Bang DD. Rapid detection of Salmonella enterica in food samples by a novel approach with combination of sample concentration and direct PCR. Biosensors Bioelectron. 2019; 129:224-230.
  • Wang H, Gill VS, Cheng CM, Gonzalezescalona N, Irvin KA, Zheng J, Bell RL, Jacobson AP, Hammack TS. Evaluation and comparison of rapid methods for the detection of Salmonella in naturally contaminated pine nuts using different pre-enrichment media. Food Microbiol. 2015; 46:58–65.
  • Xu HX, Kawamura Y, Li N, Zhao L, Li TM, Li ZY, Shu S, Ezaki TA. Rapid method for determining the G+C content of bacterial chromosomes by monitoring fluorescence intensity during DNA denaturation in a capillary tube. Int J Syst Evol Microbiol. 2000;50(4):1463-1469.
  • Zdolec N, Kis M. Meat Safety from Farm to Slaughter—Risk-Based Control of Yersinia enterocolitica and Toxoplasma gondii. Processes. 2021;9(5):815.
Toplam 53 adet kaynakça vardır.

Ayrıntılar

Birincil Dil Türkçe
Konular Halk Sağlığı (Diğer)
Bölüm Derlemeler
Yazarlar

Rüveyda Korkmaz Bu kişi benim 0009-0003-9201-0053

Gökçe Merey 0000-0003-0759-1299

Proje Numarası TYL-2022-10771
Yayımlanma Tarihi 30 Mayıs 2023
Gönderilme Tarihi 12 Nisan 2023
Yayımlandığı Sayı Yıl 2023 Cilt: 3 Sayı: 2

Kaynak Göster

APA Korkmaz, R., & Merey, G. (2023). Gıda Güvenliğinin Önemi ve Bakterilerin Tespiti İçin Yöntemler. Journal of Health Sciences and Management, 3(2), 47-53.