Article In Press : Article / Volume 3, Issue 1

How we can use Irradiation in Food preservation?

Fahim Shaltout*ID

Food control department, faculty of veterinary medicine, Benha university, Egypt 

Correspondng Author:

Fahim Shaltout* , Email: fahim.shaltout@fvtm.bu.edu.eg

Citation:

Fahim Shaltout, (2024). How we can use Irradiation in Food preservation? Research of Gastric Management and Hepatology. 3(1); DOI: 10.58489/2836-6204/007

Copyright:

© 2024 Fahim Shaltout, this is an open-access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.

  • Received Date: 19-07-2024   
  • Accepted Date: 27-07-2024   
  • Published Date: 03-08-2024
Abstract Keywords:

Food irradiation, quality, safety, meat.

Abstract

The Food irradiation is a tried-and-true technique that's frequently used to improve the quality and the safety of the meat. With the application of this technique, the growth of bacteria, viruses, and parasites is successfully inhibited. By postponing spoiling and inhibiting the growth of the germs, it also extends the shelf life and improves the quality of the items. Provided that the right dosage is applied, the radiation has no effect on the colour, the taste, or the texture of the meats. Its impact on the chemical and the nutritional properties of the meat is more complicated, though, as it may change the vitamins, the fatty acids, the amino acids, and produce the free radicals that oxidise the fat. The impact of these modifications is dependent on a number of factors, such as the kind of the meat, the storage conditions, and the radiation exposure. The Meat's physical characteristics, such as its softness, the texture, and the dose-dependent ability to retain the water, can also be impacted by the radiation. Low amounts of the radiation may enhance texture and softness, while excessive doses cause protein denaturation, which adversely affects these characteristics. The regulatory and the public perception elements of the food irradiation are also examined in this study. Although the radiation is permitted and regulated in many nations, its use is debatable and causes anxiety in the public. The Food irradiation is a dependable method of enhancing the safety and the quality of the meat; nevertheless, it is important to take into account the effects it may have on the chemical, physical, and nutritional characteristics of the product when selecting the right dosage and application. To better understand the long-term effects of the radiation on the meat and allay consumer worries, further study is thus required.

Introduction

The Meat is a valuable element of the human diet as it contains essential elements such as the protein, the vitamins, and the minerals. However, these foods are also vulnerable to microbial pathogens and spoilage, posing significant risks to the human health. The Ionizing radiation is used in the food irradiation to maintain the safety and quality of the food items, specifically the meat [1,2,3,4,5,6,7 and 8].

For decades, the food irradiation has been used to reduce microbial contamination and extend the storage period. The procedure entails subjecting the food item to a regulated amount of the ionizing radiation, usually accomplished by applying gamma rays, electron beams, or X-rays. The radiation disrupts the DNA and other cellular components of microbes, making them unable to reproduce and causing their death.The procedure also the breaks down some of the molecules in the food product, which can affect its nutritional quality and sensory properties [46,47,48,49,50,51,52,53 and 54].

Despite its potential benefits, the food irradiation remains controversial, with concerns about its safety, efficacy, and impact on the nutritional quality and sensory properties of food products [55,56,57,58,59,60,61,62 and 63]. Some critics argued that the food irradiation could create the harmful compounds or destroy the essential nutrients. In contrast, others questioned the need for the irradiation, considering other food safety measures, such as the good manufacturing practices and the foodtesting. The Consumer acceptance of the irradiated food products also needs to be addressed, with some people expressing concerns about their safety and the acceptability [73,74,75,76,77,78,79,80 and 81].

This comprehensive research aims to critically evaluate the existing literature on the food irradiation and its repercussions on the quality and safety of the meat. The proof of the irradiation effectiveness at lowering the microbial contamination and prolonging the shelf life of the meats is explored along with its potential impact on the physical and the chemical characteristics, nutrient content, and sensory properties (92, 93, 94, 95, 96, 97, 98, 99 and 100). This paper will also address the regulatory framework for the food irradiation, including labeling requirements and government oversight, as well as identify areas for further research and policy development (101,102,103,104,105,106,107 and 108).

The Sources and the Principles of the Food Irradiation

The Ionizing radiation, such as the gamma rays, X-rays, or the high-energy electrons, is used to irradiate the food. The Food irradiation is generally determined by the absorbed dose expressed in Gray (Gy) or kilo Gray (kGy), with 1 Gray being equivalent to 1 J/kg of product. The technique is considered a safe and effective way to decrease or eliminate hazardous microbes, prolong shelf life, as well as enhance the quality and safety of the food products. The principles of the food irradiation are determined by the ability to disrupt the genetic material of microorganisms, preventing them from reproducing or causing the illness. The irradiation affects the microorganisms’ genetic material (the DNA or the RNA) directly and indirectly. The Direct irradiation can break the bonds between the base pairs in the genetic material, killing the cell’s reproduction ability. Then, on the other hand, the damage to the water molecules creates the free radicals and the reactive oxygen species, which damage the genetic material indirectly [134,135,136,137,138,139 and 140]. The Irradiation also helps to break down certain enzymes and the proteins in the food that can contribute to the spoilage, thereby increasing the shelf life [141,142,143,144,145 and 146]. USA, Canada, as well as several European and Asian nations, allow the food irradiation by using the Cobalt-60, the cesium-137, and the electron-beam accelerators. The Cobalt-60, the most prevalent source of the ionizing radiation for the food irradiation, is a radioactive isotope that emits gamma rays capable of penetrating deep into the food products to destroy harmful microorganisms. Cesium-137 is another source of the ionizing radiation, although it is less commonly used than cobalt-60. In addition, the electron-beam accelerators are used for the food irradiation. These devices generate high-energy electrons that can penetrate the food products to eliminate the harmful microorganisms and extend the shelf life [154,155,156,157,158,159 and 160]. Irradiating the foods has several benefits, including multifunctional applications as well as guaranteed safety and security. The spectrum produced is effective against bacterial spores across a broad range of concentrations. The processing does not involve heat, it is safe for the food, does not significantly reduce nutrient levels, leaves no chemical residues, and is simple to control during the use [37,38,39,40,41,42,43,44 and 45]. To effectively lengthen the lifespan of irradiated food products, the following principles must be observed as the Radurization uses low doses of 0.1–1 kGy. This amount inhibits respiration, delays ripening, disinfects pests, and inactivates the Trichinella parasite. The Radicidation is referred to as a moderate dose. This radiation uses a quantity of approximately 1–10 kGy, which has the effect of reducing the spoilage and the microbial pathogens including Salmonella sp. And Listeria monocytogenes. This dosage is typically found in the frozen foods and its application is identical to that of pasteurization, except irradiation does not rely on the thermal energy. The Radapertization uses extremely high doses which are above or equal to 10 kGy, ranging between 30 and 50 kGy. This dose is typically used in the sterilization process because its effect can kill all microorganisms in the foodstuffs up to the level of spores [161,162,163,164 and 165]. The food irradiation sources and the principles are based on the ability of the ionizing radiation to disrupt the genetic material of the microorganisms, enzymes, and proteins in food products, culminating in improved the safety and the quality. The use of the irradiation is regulated by the national and the international authorities to ensure its safety and effectiveness [166,167,168,169,170 and 171].

The Effects of the Irradiation on the Meat

The Microbial Safety

The Microbial safety is a critical aspect of the meat production and the consumption, as these products can be a source of various harmful microorganisms that can cause the foodborne illness. The Meat products are potentially contaminated with various pathogens, such as the Salmonella, the Escherichia coli, the Campylobacter, and the Listeria monocytogenes, leading to severe illness or the death in vulnerable populations [9,10,11,12,13,14,15 and 16].

Contamination might occur at the production, the processing, or the distribution stage, including on the farm, during transport, in the slaughterhouses or the processing facilities, and in the retail outlets or at the home. The Improper handling and the storage of the meat products can also increase the risk of contamination. The Foodborne illness outbreaks related to the meat have been reported globally, with the various types of products being implicated, including the ground beef, the chicken, the pork, and the processed meats. These outbreaks have led to significant public health and economic consequences, highlighting the importance of effective interventions to reduce the risk of the contamination [109,110,111,112,113,114,115,116 and 117].

The Irradiation has been studied extensively for its efficacy in reducing the microbial contamination of the meat. By exposing the food to the ionizing radiation, the latter reduces or eliminates the harmful microorganisms that can cause the foodborne illness. Previous research showed that the irradiation could effectively reduce levels of the pathogens such as the Salmonella and the Escherichia coli as well as the levels of the spoilage organisms, leading to improve the microbial safety and a reduced the risk of the foodborne illness. The effectiveness of various types of the ionizing radiation on the meat, including the gamma rays and the e-beams, has been studied [82, 83, 84, 85, 86,87, 88, 89,90 and 91]. The gamma ray irradiation is more effective than e-beam irradiation is at inhibiting the microbial growth in the meat. The UV light effectively eliminates the Salmonella spp., the Pseudomonas, the Micrococcus, and the Staphylococcus on the meat. The shelf life of the meat products is extended by eliminating these contaminant ting bacteria. The Gamma irradiation at low doses can improve the microbiological safety, ensure safety, and extend the chicken meat’s shelf life without affecting the quality. Three kGy gamma-irradiated bovine meat reduced the growth of the mesophilic bacteria, the coliforms, and the Staphylococcus aureus. The Food and Drug Administration (FDA) determined that a 3.5 kGy gamma ray irradiation dose effectively eliminates the pathogenic microbes from the fresh meat. The Irradiation had the effect of slowing the growth of the bacterial cells and deactivating their metabolism. The Bacteria are inherently resistant to the effects of the irradiation and, in the lag phase or inactive state will be more resistant. In contrast, those in the growth phase will be more vulnerable [64,65,66,67,68,69,70,71 and 72]. 

The Chemical Properties

The chemical properties of the irradiated meat refer to the changes that occur to the chemical constituents and compositions of the food due to exposure to the ionizing radiation. The Irradiation can cause both desirable and undesirable effects on the chemical characteristics of the meat, depending on the dose and the specific compounds in the food. One of the most significant changes often observed in the irradiated meat products is the formation of the free radicals. They become reactive molecules that damage cellular components and cause the oxidative stress. This leads to the lipid oxidation, which causes off-flavors and odors, as well as a decline in the nutritional quality due to the loss of the essential fatty acids and other nutrients. However, the irradiation at the lower doses also aids the lipid oxidation by reducing the levels of peroxides and other reactive species. This procedure also affects the protein content of the meat, leading to alterations in the composition of the amino acids, protein structure, and the digestibility [126,127, 128, 129, 130,131,132 and 133]. These changes have potentially positive and negative effects, mostly on the nutritional value of the food, that are contingent upon the particular proteins involved and the dose of the radiation used. The positive effects of the irradiation include the fact that the irradiation can cause the formation of the reactive species, such as the free radicals, which can cause the formation of the covalent bonds between the amino acids in the protein molecules. This cross-linking can change the structure of a protein molecule and make it resistant to the enzymatic digestion, which causes a decrease in the protein digestibility [27,28,29,30,31,32,33,34 35 and 36]. The Irradiation can also cause the denaturation of the protein molecules. The Denaturation involves opening the protein structure, which can facilitate the interactions between the amino acids and increase the accessibility of the digestive enzymes to the protein molecules, and it can also improve the protein digestibility. However, the irradiation can also cause adverse effects; namely, the excessive irradiation can cause a breakdown of or the change in the amino acid compounds in the protein molecules, which causes a decrease in the overall amino acid content and, consequently, decreases the protein digestibility. The electron-beam irradiation at less than 3 kGy did not affect changes in the quality of the smoked duck flesh (the amino acids, the fatty acids, and the volatiles) during the storage [118,119,120,121,122,123,124 and 125].

Aside from these chemical changes, the irradiation also affects the vitamin content of the meat products, with some vitamins being more sensitive than others. For example, the irradiation leads to a loss of the vitamin C, while other vitamins, such as the vitamin A and E, are relatively stable. The Irradiation has been shown to alter the meat’s oxidation–reduction ability, accelerating the lipid oxidation, the protein breakdown, and the flavor and the odor changes [147,148,149,150,151,152 and 153].

When combined with certain antioxidants, such as the flavonoids, the irradiation can help prolong the induction period of the lipid oxidation. The storage of the irradiated meat at 5–10 C for one week almost did not change the pH, the texture, the total volatile base nitrogen (TVBN), or the microbe number. The higher dose of the UV irradiation increased 2-thiobarbituric acid (TBA) content, decreased water-holding capacity (WHC), and decreased the beef color intensity and tenderness. Two point five and 5 kGy gamma irradiation reduced nitrite content in the chicken sausages and prevented the oxidation when combined with antioxidants. The titratable acidity and the acid value in the meat samples can be reduced by the irradiation [17,18,19,20,21,22,23,24,25 and 26].

Conclusion

One promising technique that might enhance the safety and the quality of the meat is the food irradiation. According to recent study, the irradiation can preserve the nutritional value of the meat products, decrease microbial contamination, and increase shelf life.
To overcome this issue, more study is necessary as the sensory characteristics can be adversely affected. It is also significant to remember that labelling regulations for irradiated meat products exist, and that the irradiation in the food processing is governed by both the national and the international bodies. The Government organisations play a crucial role in guaranteeing the security and the quality of the customers.

Conflicts of Interest

The author declare no conflicts of interest

References

  1. AbouElhassan, A. (2017). Prevalence of Mycobacterium Tuberculosis in Imported cattle Offals and its lymph Nodes. Veterinary Medical Journal (Giza), 63(2), 115-122.
  2. Pereira, P. M. D. C. C., & Vicente, A. F. D. R. B. (2013). Meat nutritional composition and nutritive role in the human diet. Meat science, 93(3), 586-592.
  3. Shaltout, F. A., Riad, E. M., & Asmaa, A. E. PREVALENCE OF MYCOBACTERIUM SPP. IN CATTLE MEAT AND OFFAL'S SLAUGHTERED IN AND OUT ABATTOIR.
  4. Abd Elaziz, O., Hassanin, F., Shaltout, F., & Mohammed, O. (2021). Prevalence of some foodborne parasitic affection in slaughtered animals in local Egyptian abattoir. Benha Veterinary Medical Journal, 41(1), 111-114.
  5. Klurfeld, D. M. (2018). What is the role of meat in a healthy diet?. Animal Frontiers, 8(3), 5-10.
  6. El-Aziz, A., Mohamed, O., Hassanin, F. S., Shaltout, F. A. E., & Mohammed, O. (2021). Prevalence of some zoonotic parasitic affections in sheep carcasses in a local abattoir in Cairo, Egypt. Benha Veterinary Medical Journal, 41(1), 115-119.
  7. Shaltout, F. Meat Examination in the Laboratory, the Accepatablity and the Human Health.
  8. Saucier, L. (2016). Microbial spoilage, quality and safety within the context of meat sustainability. Meat science, 120, 78-84.
  9. Saleh, E., Shaltout, F., & Abd Elaal, E. (2021). Effect of some organic acids on microbial quality of dressed cattle carcasses in Damietta abattoirs, Egypt. Damanhour Journal of Veterinary Sciences, 5(2), 17-20.
  10. Shaltout, F. A. E. (2017). Microbiological evaluation of some heat treated fish products in Egyptian markets. EC Nutrition, 12, 124-132.
  11. Bantawa, K., Rai, K., Subba Limbu, D., & Khanal, H. (2018). Food-borne bacterial pathogens in marketed raw meat of Dharan, eastern Nepal. BMC research notes, 11, 1-5.
  12. Edris, A., Hassan, M., Shaltout, F. A., & Elhosseiny, S. (2013). Chemical evaluation of cattle and camel meat. Benha Veterinary Medical Journal, 24(2), 191-197.
  13. Edris, A. M., Hassan, M. A., Shaltout, F., & Elhosseiny, S. (2012). Detection of E. coli and Salmonella organisms in cattle and camel meat. Benha veterinary medical journal, 24(2), 198-204.
  14. Madoroba, E., Magwedere, K., Chaora, N. S., Matle, I., Muchadeyi, F., Mathole, M. A., & Pierneef, R. (2021). Microbial communities of meat and meat products: an exploratory analysis of the product quality and safety at selected enterprises in South Africa. Microorganisms. 2021; 9: 507.
  15. Edris, A. M., Hemmat, M. I., Shaltout, F. A., Elshater, M. A., & Eman, F. M. I. (2012). Study on incipient spoilage of chilled chicken cuts-up. Benha veterinary medical journal, 23(1), 81-86.
  16. Schevey, C. T., Toshkov, S., & Brewer, M. S. (2013). Effect of natural antioxidants, irradiation, and cooking on lipid oxidation in refrigerated, salted ground beef patties. Journal of food science, 78(11), S1793-S1799.
  17. Edris, A. M., Hemmat, M. I., Shaltout, F. A., Elshater, M. A., & Eman, F. M. I. (2012). Chemical analysis of chicken meat with relation to its quality. Benha veterinary medical Journal, 23(1), 87-92.
  18. Edris, A. M., Shaltout, F. A., & Abd Allah, A. M. (2005). Incidence of Bacillus cereus in some meat products and the effect of cooking on its survival. Zag. Vet. J, 33(2), 118-124.
  19. Chun, H. H., Kim, J. Y., Lee, B. D., Yu, D. J., & Song, K. B. (2010). Effect of UV-C irradiation on the inactivation of inoculated pathogens and quality of chicken breasts during storage. Food Control, 21(3), 276-280.
  20. Edris, A. M., Shaltout, F. A., & Arab, W. S. (2005). Bacterial evaluation of quail Meat. Benha Vet. Med. J, 16(1), 1-14.
  21. Edris, A. M., Shaltout, F., Salem, G. H., & El-Toukhy, E. I. (2011). Incidence and isolation of Salmonellae from some meat products. Benha University, Faculty of Veterinary Medicine. In Fourth Scientific Conference (pp. 172-179).
  22. Singh, R., & Singh, A. (2019). Food irradiation: An established food processing technology for food safety and security. Def. Life Sci. J, 4(4), 206-213.
  23. Shaltout, F. A. E. (2017). Microbiological evaluation of some heat treated fish products in Egyptian markets. EC Nutrition, 12, 124-132.
  24. Edris, A. M., Shaltout, F., Salem, G. H., & El-Toukhy, E. I. (2011). Incidence and isolation of Salmonellae from some meat products. Benha University, Faculty of Veterinary Medicine. In Fourth Scientific Conference (pp. 172-179).
  25. Amiri, A., Zandi, H., & Khosravi, H. M. (2019). Effect of electron beam irradiation on survival of Escherichia coli O157: H7 and Salmonella enterica serovar thyphimurium in minced camel meat during refrigerated storage. Journal of food quality and hazards control.
  26. Ragab, A., Edris, A. M., Shaltout, F. A., & Salem, A. M. (2022). Effect of titanium dioxide nanoparticles and thyme essential oil on the quality of the chicken fillet. Benha Veterinary Medical Journal, 41(2), 38-40.
  27. Hassan, M. A., Shaltout, F. A., Arfa, M. M., Mansour, A. H., & Saudi, K. R. (2013). Biochemical studies on rabbit meat related to some diseases. Benha Vet. Med. J, 25(1), 88-93.
  28. Farkas, J. (2006). Irradiation for better foods. Trends in food science & technology, 17(4), 148-152.
  29. Hassan, M., & Shaltout, F. A. (1997). Occurrence of some food poisoning microorganisms in rabbit carcasses. Alexandria Journal of Veterinary Science (AJVS), 13(1), 55-62.
  30. Hassan, M., Shaltout, F. A., & Saqur, N. (2020). Histamine in some fish products. Archives of Animal Husbandry & Dairy Science, 2(1), 1-3.
  31. Hassan, M. A., & Shaltout, F. A. (2004). Comparative Study on Storage Stability of Beef, Chicken meat, and Fish at Chilling Temperature. Alex. J. Vet. Science, 20(21), 21-30.
  32. Bonomo, L. (2006). A Critical Analysis Risk Assessment: Food Irradiation: Pro or Con?. ESSAI, 4(1), 8.
  33. Hassan, M. A., Shaltout, F. A., Arfa, M. M., Mansour, A. H., & Saudi, K. R. (2013). Biochemical studies on rabbit meat related to some diseases. Benha Vet. Med. J, 25(1), 88-93.
  34. Hassan, M. A., Shaltout, F. A., Maarouf, A. A., & El-Shafey, W. S. (2014). Psychrotrophic bacteria in frozen fish with special reference to pseudomonas species. Benha Vet. Med. J, 27(1), 78-83.
  35. Hassan, M. A., Shaltout, F. A., Arfa, M. M., Mansour, A. H., & Saudi, K. R. (2013). Biochemical studies on rabbit meat related to some diseases. Benha Vet. Med. J, 25(1), 88-93.
  36. Hassanin, F. S., Hassan, M. A., Shaltout, F. A., Shawqy, N. A., & Abd-Elhameed, G. A. (2017). Chemical criteria of chicken meat. Benha veterinary medical journal, 33(2), 457-464.
  37. Hassanien-faten, S., Hassan, M. A., Shaltout, S., & Elrais-Amina, M. CLOSTRIDIUM PERFRINGENS IN VACUUM PACKAGED MEAT PRODUCTS.
  38. Hassanien, F., Shaltout, F. A. E., Fahmey, M. Z., & Elsukkary, H. F. A. (2020). Bacteriological quality guides in local and imported beef and their relation to public health. Benha Veterinary Medical Journal, 39(1), 125-129.
  39. Munir, M. T., & Federighi, M. (2020). Control of foodborne biological hazards by ionizing radiations. Foods, 9(7), 878.
  40. Hassanin, F. S., Shaltout, F. A., & Afifi, M. E. (2013). Parasitic affections in edible offal. Benha Vet. Med. J, 25(2), 34-39.
  41. Hassanin, F. S., Shaltout, F. A., Lamada, H. M., & Abd Allah, E. M. (2011). The effect of preservative (nisin) on the survival of listeria monocytogenes. Benha veterinary medical journal (2011)-special issue, 141-145.
  42. Ham, Y. K., Kim, H. W., Hwang, K. E., Song, D. H., Kim, Y. J., Choi, Y. S., ... & Kim, C. J. (2017). Effects of irradiation source and dose level on quality characteristics of processed meat products. Radiation Physics and Chemistry, 130, 259-264.
  43. Khattab, E., & Is, I. (2021). Hepatitis A related to foods. Benha Veterinary Medical Journal, 40(1), 174-179.
  44. Shaltout, F. A. (2024). Impacts of meat spoilage on economy and public health. J. Nutrition and Food Processing, 7(6).
  45. Saif, M., Saad, S., Shaltout, F., Hassanin, F. S., & Zaghloul, M. (2019). Molecular detection of enterotoxigenic Staphylococcus aureus in ready to eat beef products. Benha Veterinary Medical Journal, 37(1), 7-11.
  46. Saad, S. M., Hassanin, F. S., Shaltout, F. A., Nassif, M. Z., & Seif, M. Z. (2019). Prevalence of methicillin-resistant Staphylococcus aureus in some ready-to-eat meat products. American Journal of Biomedical Science & Research, 4(6), 460-464.
  47. Abdelmordy, A., Shaltout, F., & Saad, S. M. (2023). Studies on Pesticides Residues in Fish in Menofia Governorate. Benha Journal of Applied Sciences, 8(5), 323-330.
  48. Reygaert, W. C. (2018). An overview of the antimicrobial resistance mechanisms of bacteria. AIMS microbiology, 4(3), 482.
  49. Abdelmordy, A., Shaltout, F., & Saad, S. M. (2023). Organochlorine Residues in Fish in Rural Areas. Benha Journal of Applied Sciences, 8(5), 331-336.
  50. Shaltout, F., Hussein, M., & khaled Elsayed, N. (2023). Histological Detection of Unauthorized Herbal and Animal Contents in Some Meat Products. Journal of Advanced Veterinary Research, 13(2), 157-160.
  51. Yemmireddy, V., Adhikari, A., & Moreira, J. (2022). Effect of ultraviolet light treatment on microbiological safety and quality of fresh produce: An overview. Frontiers in Nutrition, 9, 871243.
  52. Ghanem, A., Shaltout, F., & Heikal, G. I. (2022). Mycological quality of some chicken meat cuts in Gharbiya governorate with special reference to Aspergillus flavus virulent factors. Benha Veterinary medical journal, 42(1), 12-16.
  53. Darwish, W., Shaltout, F. A., Salem, R. M., Eldiasty, E. M., & Diab, F. A. (2022). Seasonal Impact on the Prevalence of Yeast Contamination of Chicken Meat Products and Edible Giblets. Journal of Advanced Veterinary Research, 12(5), 641-644.
  54. Shaltout, F. A., Barr, A. A. H., & Abdelaziz, M. E. (2022). Pathogenic microorganisms in meat products. Biomedical Journal of Scientific & Technical Research, 41(4), 32836-32843.
  55. Shaltout, F. A., & Koura, H. A. (2017). Impact of some essential oils on the quality aspect and shelf life of meat. Benha Veterinary Medical Journal, 33(2), 351-364.
  56. Ehlermann, D. A. E. (1996). Safety of Irradiated Foods. Radiation Physics and Chemistry, 48(4), 529-529.
  57. Mohammed, I. Z. (2020). Bacteriological profile of some raw chicken meat cuts in Ismailia city, Egypt. Benha Veterinary Medical Journal, 39(1), 11-15.
  58. Afify, S. A., Shaltout, F., & Mohammed, I. Z. (2020). Detection of E. coli O157 and Salmonella species in some raw chicken meat cuts in Ismailia province, Egypt. Benha Veterinary Medical Journal, 39(1), 101-104.
  59. Lianou, A., Panagou, E. Z., & Nychas, G. J. E. (2023). Meat safety—I foodborne pathogens and other biological issues. In Lawrie's meat science (pp. 549-590). Woodhead Publishing.
  60. Shaltout, F. A., El-diasty, E. M., & Asmaa-Hassan, M. A. (2019). Hygienic Quality of Ready to Eat Cooked Meat in Restaurants at Cairo Governorate. Journal of Global Biosciences, 8(12), 6627-6641.
  61. Taha, B., Shaltout, F., Nasief, M., & Lotfy, L. (2019). Microbiological status of chicken cuts and its products. Benha Veterinary Medical Journal, 37(1), 57-63.
  62. Shaltout, F. A. (2023). Influence of Plant Extracts on Acceptability of Chilled Poultry Meat. EC Nutrition, 18, 01-11.
  63. Marín, C., Cerdà-Cuéllar, M., González-Bodi, S., Lorenzo-Rebenaque, L., & Vega, S. (2022). Research Note: Persistent Salmonella problems in slaughterhouses related to clones linked to poultry companies. Poultry science, 101(8), 101968.
  64. Shaltout, F. A. (2024). Ways of Food Contamination, Its Impact and Prevention. Food Sci. Nutr. Technol, 9, 1-8.
  65. Arakeeb, S. M., Hassanien, F., Shaltout, F., & Homouda, S. (2019). Natural preservatives in raw chicken meat. Benha Veterinary Medical Journal, 37(1), 41-45.
  66. Hazaa, W., Shaltout, F., & El-Shater, M. A. (2019). Prevalence of some chemical hazards in some meat products. Benha Veterinary Medical Journal, 37(1), 32-36.
  67. Park, J. G., Yoon, Y., Park, J. N., Han, I. J., Song, B. S., Kim, J. H., ... & Lee, J. W. (2010). Effects of gamma irradiation and electron beam irradiation on quality, sensory, and bacterial populations in beef sausage patties. Meat science, 85(2), 368-372.
  68. Hazaa, W., Shaltout, F., & El-Shater, M. (2019). Identification of Some Biological Hazards in Some Meat Products. Benha Veterinary Medical Journal, 37(1), 27-31.
  69. Indiarto, R., Pratama, A. W., Sari, T. I., & Theodora, H. C. (2020). Food irradiation technology: A review of the uses and their capabilities. Int. J. Eng. Trends Technol, 68(12), 91-98.
  70. Gaafar, R., Hassanin, F. S., Shaltout, F., & Zaghloul, M. (2019). Molecular detection of enterotoxigenic Staphylococcus aureus in some ready to eat meat based sandwiches. Benha Veterinary Medical Journal, 37(1), 22-26.
  71. Gaafar, R., Hassanin, F. S., Shaltout, F., & Zaghloul, M. (2019). Molecular detection of enterotoxigenic Staphylococcus aureus in some ready to eat meat based sandwiches. Benha Veterinary Medical Journal, 37(1), 22-26.
  72. Indiarto, R., & Qonit, M. A. H. (2020). A review of irradiation technologies on food and agricultural products. Int. J. Sci. Technol. Res, 9(1), 4411-4414.
  73. Saad, S. M., Shaltout, F. A., Abou Elroos, N. A., & El-nahas, S. B. (2019). Antimicrobial effect of some essential oils on some pathogenic bacteria in minced meat. Journal of Food Science and Nutrition Research, 2(1), 13-21.
  74. Shaltout, F. A., Saad, M., Abo El-Roos, N., & Saber, E. (2019). Incidence of Staphylococci and E. coli in Meat and Some Meat Products. EC Nutrition, 14(6).
  75. D'Souza, C., Apaolaza, V., Hartmann, P., Brouwer, A. R., & Nguyen, N. (2021). Consumer acceptance of irradiated food and information disclosure–A retail imperative. Journal of retailing and consumer services, 63, 102699.
  76. Saad, S. M., Hassanin, F. S., Shaltout, F. A., Nassif, M. Z., & Seif, M. Z. (2019). Prevalence of methicillin-resistant Staphylococcus aureus in some ready-to-eat meat products. American Journal of Biomedical Science & Research, 4(6), 460-464.
  77. Shaltout, F. (2019). Pollution of Chicken Meat and Its Products by Heavy Metals. Research and Reviews on Healthcare: Open Access Journal, 4(3), 381-3382.
  78. Putri, M. S., & Susanna, D. (2021). Food safety knowledge, attitudes, and practices of food handlers at kitchen premises in the Port ‘X’area, North Jakarta, Indonesia 2018. Italian Journal of Food Safety, 10(4).
  79. Shaltout, F. A., EL-diasty, E. M., & Mohamed, M. S. (2018). Effects of chitosan on quality attributes fresh meat slices stored at 40C. Benha Veterinary Medical Journal, 35(2), 157-168.
  80. Shaltout, F. A., & Abdel-Aziz, A. M. (2004). Salmonella enterica serovar enteritidis in poultry meat and their epidemiology.
  81. Shaltout, F. A., El-Shorah, H. F., El Zahaby, D. I., & Lotfy, L. M. (2018). Bacteriological profile of chicken meat products. Food Nutr Current Res, 1(3), 83-90.
  82. Otoo, E. A., Ocloo, F. C., & Appiah, V. (2022). Effect of gamma irradiation on shelf life of smoked guinea fowl (Numida meleagris) meat stored at refrigeration temperature. Radiation Physics and Chemistry, 194, 110041.
  83. Shaltout, F., El-Shater, M. A., El-Aziz, A., & Mohamed, W. (2015). Bacteriological assessment of street vended meat products sandwiches in Kalyobia Governorate. Benha Veterinary Medical Journal, 28(2), 58-66.
  84. Sedeh, F. M., Arbabi, K., Fatolahi, H., & Abhari, M. (2007). Using gamma irradiation and low temperature on microbial decontamination of red meat in Iran. Indian journal of microbiology, 47, 72-76.
  85. Fahim, H. M. (2019). Evaluate antibiotic residues in beef and effect of cooking and freezing on it. Benha Veterinary Medical Journal, 36(2), 109-116.
  86. Shaltout, F. A., Zakaria, I. M., & Nabil, M. E. (2018). Incidence of Some Anaerobic Bacteria Isolated from Chicken Meat Products with Special Reference to Clostridium perfringens. Nutrition and Food Toxicology, 2(5), 429-438.
  87. Gunes, G., & Tekin, M. D. (2006). Consumer awareness and acceptance of irradiated foods: Results of a survey conducted on Turkish consumers. LWT-Food Science and Technology, 39(4), 444-448.
  88. Shaltout, F. A., Maarouf, A. A., & Elkhouly, M. E. (2017). Bacteriological Evaluation of Frozen Sausage. Nutrition and Food Toxicology, 1(2017), 174-185.
  89. Rastogi, R. P., Richa, N., Kumar, A., Tyagi, M. B., & Sinha, R. P. (2010). Molecular mechanisms of ultraviolet radiation‐induced DNA damage and repair. Journal of nucleic acids, 2010(1), 592980.
  90. Shaltout, F. A., El-Toukhy, E. I., & Abd El-Hai, M. M. (2019). Molecular Diagnosis of Salmonellae in Frozen Meat and Some Meat Products. Nutrition and Food Technology Open Access, 5(1), 1-6.
  91. Shaltout, F. A., Ali, A. M., & Rashad, S. M. (2016). Bacterial Contamination of Fast Foods. Benha Journal of Applied Sciences (BJAS), 1(2), 45-51.
  92. Shaltout, F. A., Eltanani, J., & Elmelegy, A. S. (2015). Microbiological status of meat and chicken received to University student hostel. Benha Veterinary Medical Journal, 29(2), 187-192.
  93. Monteiro, M. L. G., Marsico, E. T., Mano, S. B., Teixeira, C. E., Canto, A. C. V. D. C. S., de Carvalho Vital, H., & Conte‐Júnior, C. A. (2013). Influence of good manufacturing practices on the shelf life of refrigerated fillets of tilapia (Oreochromis niloticus) packed in modified atmosphere and gamma‐irradiated. Food Science & Nutrition, 1(4), 298-306.
  94. Saad, S. M., Edris, A. M., Shaltout, F. A., & Edris, S. (2012). Isolation and identification of salmonellae and E. coli from meat and poultry cuts by using A. multiplex PCR. Benha Vet. Med. J. special, (16-26).
  95. Saad, S. M., & Shaltout, F. A. (1998). Mycological evaluation of camel carcasses at Kalyobia abattoirs.
  96. Hassanzadeh, P., Tajik, H., Rohani, S. M. R., Moradi, M., Hashemi, M., & Aliakbarlu, J. (2017). Effect of functional chitosan coating and gamma irradiation on the shelf-life of chicken meat during refrigerated storage. Radiation physics and chemistry, 141, 103-109.
  97. Saad, S. M., Shaltout, F. A., Abou Elroos, N. A., & El-nahas, S. B. (2019). Antimicrobial effect of some essential oils on some pathogenic bacteria in minced meat. Journal of Food Science and Nutrition Research, 2(1), 13-21.
  98. Saad, S. M., Hassanin, F. S., Shaltout, F. A., Nassif, M. Z., & Seif, M. Z. (2019). Prevalence of methicillin-resistant Staphylococcus aureus in some ready-to-eat meat products. American Journal of Biomedical Science & Research, 4(6), 460-464.
  99. Castell-Perez, M. E., & Moreira, R. G. (2021). Irradiation and consumers acceptance. Innovative food processing technologies, 122.
  100. Shaltout, F. A., Saad, M., Abo El-Roos, N., & Saber, E. (2019). Incidence of Staphylococci and E. coli in Meat and Some Meat Products. EC Nutrition, 14(6).
  101. Shaltout, F. A., Riad, E. M., TES, A., & AbouElhassan, A. (2017). Studying the Effect of Gamma Irradiation on Bovine Offal's Infected with Mycobacterium tuberculosis Bovine Type. Journal of Food Biotechnology Research, 1(6), 1-5.
  102. Maherani, B., Hossain, F., Criado, P., Ben-Fadhel, Y., Salmieri, S., & Lacroix, M. (2016). World market development and consumer acceptance of irradiation technology. Foods, 5(4), 79.
  103. Shaltout, F. A., Maarouf, A. A., & Elkhouly, M. E. (2017). Bacteriological Evaluation of Frozen Sausage. Nutrition and Food Toxicology, 1(2017), 174-185.
  104. Shaltout, F. A., Zakaria, I. M., & Nabil, M. E. (2018). Incidence of Some Anaerobic Bacteria Isolated from Chicken Meat Products with Special Reference to Clostridium perfringens. Nutrition and Food Toxicology, 2(5), 429-438.
  105. Faheim, A. S., Mohamed, A. H., & Fatin, S. H. (2004). Thermal inactivation of enterohaemorrhagic escherichia coli o157: h7 and its senstivity to nisin and lactic acid cultures. 1rst Ann Confr FVM Moshtohor.
  106. Arvanitoyannis, I. S. (2010). Consumer behavior toward irradiated food.
  107. Aziz, S., Mahmoud, E. D., El-mesalamy, M., & El-shaer, M. (2014). Study on fungal contamination of some chicken meat products with special reference to the use of PCR for its identification. Veterinary Medical Journal (Giza), 60(2), 1-22.
  108. Aziz, S., Mahmoud, E. D., El-mesalamy, M., & El-shaer, M. (2014). Study on fungal contamination of some chicken meat products with special reference to the use of PCR for its identification. Veterinary Medical Journal (Giza), 60(2), 1-22.
  109. Morrison, R. M. (1990). Economics of food irradiation: Comparison between electron accelerators and cobalt-60. International Journal of Radiation Applications and Instrumentation. Part C. Radiation Physics and Chemistry, 35(4-6), 673-679.
  110. Shaltout, F. A., & Koura, H. A. (2017). Impact of some essential oils on the quality aspect and shelf life of meat. Benha Veterinary Medical Journal, 33(2), 351-364.
  111. Indiarto, R., Irawan, A. N., & Subroto, E. (2023). Meat irradiation: A comprehensive review of its impact on food quality and safety. Foods, 12(9), 1845.
  112. Shaltout, F. A. E., Farouk, M., Ibrahim, H. A., & Afifi, M. E. (2017). Incidence of Coliform and Staphylococcus aureus in ready to eat fast foods. Benha Veterinary Medical Journal, 32(1), 13-17.
  113. Shaltout, F. A., Zakaria, I. M., & Nabil, M. E. (2017). Detection and typing of Clostridium perfringens in some retail chicken meat products. Benha Veterinary Medical Journal, 33(2), 283-291.
  114. Food and Drug Administration, HHS. (2012). Irradiation in the production, processing, and handling of food. Final rule. Federal register, 77(112), 34212-34215.
  115. Shaltout, F. A. M. (1992). Studies on mycotoxins in meat and meat by-products.
  116. Shaltout, F. A. M. (1996). Mycological and Mycotoxicological profile of Some Meat products.
  117. Shaltout, F. A. (1998). Proteolytic Psychrotrophes in Some Meat products. Alex. Vet. Med. J, 14(2), 97-107.
  118. Shaltout, F. A. (1999). Anaerobic Bacteria in Vacuum Packed Meat Products. Benha Vet. Med. J, 10(1), 1-10.
  119. Fajardo-Guerrero, M., Rojas-Quintero, C., Chamorro-Tobar, I., Zambrano, C., Sampedro, F., & Carrascal-Camacho, A. K. (2020). Exposure assessment of Salmonella spp. in fresh pork meat from two abattoirs in Colombia. Food Science and Technology International, 26(1), 21-27.
  120. Shaltout, F. A. (2000). PROTOZOAL F OODBORNE PATHOGENS IN SOME MEAT PRODCUTS. Assiut Veterinary Medical Journal, 42(84), 54-59.
  121. Shaltout, F. A. (2001). Quality evaluation of sheep carcasses slaughtered at Kalyobia abattoirs. Assiut Veterinary Medical Journal, 46(91), 150-159.
  122. Shahi, S., Khorvash, R., Goli, M., Ranjbaran, S. M., Najarian, A., & Mohammadi Nafchi, A. (2021). Review of proposed different irradiation methods to inactivate food‐processing viruses and microorganisms. Food science & nutrition, 9(10), 5883-5896.
  123. Shaltout, F. A. (2002). Microbiological aspects of semi-cooked chicken meat products. Benha Vet. Med. J, 13(2), 15-26.
  124. Mkhungo, M. C., Oyedeji, A. B., & Ijabadeniyi, O. A. (2018). Food safety knowledge and microbiological hygiene of households in selected areas of Kwa-Zulu Natal, South Africa. Italian journal of food safety, 7(2).
  125. Shaltout, F. A. (2003, April). Yersinia Enterocolitica in some meat products and fish marketed at Benha city. In The Third international conference Mansoura (Vol. 1, pp. 29-30).
  126. Fahim, A. S. (2020). Microbiological Quality of Chicken Carcasses at Modern Poultry Plant. J. Nutrition and Food Processing, 3(1).
  127. Shaltout, F. A., & Abdel-Aziz, A. M. (2004). Salmonella enterica serovar enteritidis in poultry meat and their epidemiology.
  128. Song, B. S., Lee, Y., Park, J. H., Kim, J. K., Park, H. Y., Kim, D. H., ... & Kang, I. J. (2018). Toxicological and radiological safety of chicken meat irradiated with 7.5 MeV X-rays. Radiation Physics and Chemistry, 144, 211-217.
  129. Shaltout, F. A., & Abdel Aziz, A. M. (2004). Escherichia coli strains in slaughtered animals and their public health importence. J. Egypt. Vet. Med. Association, 64(2), 7-21.
  130. Shaltout, F. A., Amin, R. A., Nassif, M. Z., & Abd-Elwahab, S. A. (2014). Detection of aflatoxins in some meat products. Benha Vet Med J, 27(2), 368-374.
  131. Bintsis, T. (2017). Department of International Trade. TEI of West Macedonia, Kastoria, Greece,“Foodborne pathogens,” AIMS Microbiology, 3(3), 529-563.
  132. Shaltout, F. A., & Afify, J. R. EM and Abo Elhasan, Asmaa, A.(2012): Improvement of microbiological status of oriental sausage. Journal of Egyptian Veterinary Medical Association, 72(2), 157-167.
  133. Shaltout, F. A. (2023). Chemical analytical studies on rabbit meat and liver. Benha Veterinary Medical Journal (Egypt), 7(2).
  134. Shaltout, F. A., & Edris, A. M. (1999). Contamination of shawerma with pathogenic yeasts. Assiut Veterinary Medical Journal, 41(81), 170-176.
  135. Oh, H., Yoon, Y., Yoon, J. W., Oh, S. W., Lee, S., & Lee, H. (2023). Salmonella risk assessment in poultry meat from farm to consumer in Korea. Foods, 12(3), 649.
  136. Shaltout, F. A., Eldiasty, E., & Mohamed, M. S. (2014, June). Incidence of lipolytic and proteolytic fungi in some chicken meat products and their public health significance. In Animal Health Research Institute: First International Conference on Food Safety and Technology (pp. 19-23).
  137. Ehlermann, D. A. (2016). Particular applications of food irradiation: Meat, fish and others. Radiation Physics and Chemistry, 129, 53-57.
  138. Shaltout, F. A., El-diasty, E. M., Salem, R. M., & Hassan, A. M. (2016). Mycological quality of chicken carcasses and extending shelf-life by using preservatives at refrigerated storage. Veterinary Medical Journal–Giza, 62(3), 1-10.
  139. Diab, F. (2016). Mycological evaluation of some ready to eat meat products with special reference to molecular characterization. Veterinary Medical Journal (Giza), 62(3), 9-14.
  140. Farkas, J., & Mohácsi-Farkas, C. (2011). History and future of food irradiation. Trends in Food Science & Technology, 22(2-3), 121-126.
  141. Shaltout, F., El-Shater, M. A., El-Aziz, A., & Mohamed, W. (2015). Bacteriological assessment of street vended meat products sandwiches in Kalyobia Governorate. Benha Veterinary Medical Journal, 28(2), 58-66.
  142. Shaltout, F. A., Gerges, M. T., & Shewail, A. A. (2014). Impact of organic acids and their salts on microbial quality and shelf life of beef meat.
  143. da Vinha, A. C. M. F. (2022). Overview of irradiation: Advantages to foods of plant origin. South Florida Journal of Health, 3(3), 248-262.
  144. Shaltout, F. A., Ghoneim, A. M., Essmail, M. E., & Yousseif, A. (2001). Studies on aflatoxin B1 residues in rabbits and their pathological effects. J. Egypt. Vet. Med. Association, 61(2), 85-103.
  145. Ahn, D. U., Kim, I. S., & Lee, E. J. (2013). Irradiation and additive combinations on the pathogen reduction and quality of poultry meat. Poultry science, 92(2), 534-545.
  146. Shaltout, F. A., & Hanan, M. T. El–Laewndy,(2003): Heavy metal residues in Shawerma. Beni-Sueif Vet. Med. J, 12(1), 213-224.
  147. Shaltout, F. A. (2002). Microbiological aspects of semi-cooked chicken meat products. Benha Vet. Med. J, 13(2), 15-26.
  148. Yeh, Y., De Moura, F. H., Van Den Broek, K., & De Mello, A. S. (2018). Effect of ultraviolet light, organic acids, and bacteriophage on Salmonella populations in ground beef. Meat science, 139, 44-48.
  149. Fahim, S. A., Mohammed, H. F., & Saber, E. N. (2015). Detection of some heavy metals in fish (Tilapia nilotica and Clarias lazera) at Menofia governorate. Benha Veterinary Medical Journal, 29(1), 124-128.
  150. Shaltout, F. A., & Ibrahim, H. M. (1997). Quality evaluation of luncheon and Alexandrian sausage. Benha Vet. Med. J, 10(1), 1-10.
  151. Gómez, I., Janardhanan, R., Ibañez, F. C., & Beriain, M. J. (2020). The effects of processing and preservation technologies on meat quality: Sensory and nutritional aspects. Foods, 9(10), 1416.
  152. Shaltout, F. A., Marionette, Z. N., & Shakran, A. M. (2014). Quality of battered and breaded chicken meat products.
  153. Shaltout, F. A., Amani, M. S., Mahmoud, A. H., & Abd Elraheem, K. A. (2013). Bacterial aspect of cooked meat and edible offal at street vendors level. J. Benha vet. Med, 24(1), 320-328.
  154. Shaltout, F. A., & Salem, R. M. T. (2000). Moulds, aflatoxin B1 and ochratoxin A in forzen livers and meat products.
  155. Indiarto, R., Irawan, A. N., & Subroto, E. (2023). Meat irradiation: A comprehensive review of its impact on food quality and safety. Foods, 12(9), 1845.
  156. Al-Tarazi, Y., Al-Zamil, A., Shaltout, F., & Abdel-Samei, H. (2003). Sanitary status of raw cow milk marketed in northern Jordan. Assiut Veterinary Medical Journal, 49(96), 180-194.
  157. Shaltout, F. A., Zakaria, I. M., & Nabil, M. E. (2018). Incidence of Some Anaerobic Bacteria Isolated from Chicken Meat Products with Special Reference to Clostridium perfringens. Nutrition and Food Toxicology, 2(5), 429-438.
  158. Shaltout, F. A., Eldiasty, E., & Mohamed, M. S. (2014, June). Incidence of lipolytic and proteolytic fungi in some chicken meat products and their public health significance. In Animal Health Research Institute: First International Conference on Food Safety and Technology (pp. 19-23).
  159. Shaltout, F. A., El-diasty, E. M., Salem, R. M., & Hassan, A. M. (2016). Mycological quality of chicken carcasses and extending shelf-life by using preservatives at refrigerated storage. Veterinary Medical Journal–Giza, 62(3), 1-10.
  160. Borrego-Soto, G., Ortiz-López, R., & Rojas-Martínez, A. (2015). Ionizing radiation-induced DNA injury and damage detection in patients with breast cancer. Genetics and molecular biology, 38, 420-432.
  161. Shaltout, F. A., Salem, R. M., El-Diasty, E. M., & Hassan, W. I. M. (2019). Effect of Lemon fruits and turmeric extracts on fungal pathogens in refrigerated chicken fillet meat. Global Veterinaria, 21(3), 156-160.
  162. Aziz, S., Mahmoud, E. D., El-mesalamy, M., & El-shaer, M. (2014). Study on fungal contamination of some chicken meat products with special reference to the use of PCR for its identification. Veterinary Medical Journal (Giza), 60(2), 1-22.
  163. Diab, F. (2016). Mycological evaluation of some ready to eat meat products with special reference to molecular characterization. Veterinary Medical Journal (Giza), 62(3), 9-14.
  164. Lima, F., Vieira, K., Santos, M., & de Souza, P. M. (2018). Effects of radiation technologies on food nutritional quality. Descriptive food science, 1(17), 10-5772.
  165. Fahim, A. S., Ahmed, A. A., & Eman, M. K. Heavy Metal Residues in chicken cuts up and processed chicken meat products.
  166. Shaltout, F. A. (2024). Values of Essential Oils of Plant Origin on The Micro-Organisms During the Meat Storage. Clinical research and Clinical reports, 3(4).
  167. Shaltout, F. (2020). Prevalence of some food poisoning bacteria in semi cooked chicken meat products at Kaliobyia governorate with using of recent Vitek 2 compact and PCR techniques. Benha Veterinary Medical Journal, 38(2), 88-92.
  168. EFSA Panel on Biological Hazards (BIOHAZ). (2011). Scientific Opinion on the efficacy and microbiological safety of irradiation of food. EFSA Journal, 9(4), 2103.
  169. Sobhy, A., & Shaltout, F. (2020). Detection of some food poisoning bacteria in some semi cooked chicken meat products marketed at Kaliobyia governorate. Benha Veterinary Medical Journal, 38(2), 93-96.
  170. Shaltout, F. A. (2024). Abattoir and Bovine Tuberculosis as A Reemerging Foodborne Disease. Clinical Reviews and Case Reports, 3(2).
  171. Shaltout, F. A. (2023). Viruses in Beef, Mutton, Chevon, Venison, Fish and Poultry Meat Products. Mathews Journal of Veterinary Science, 7(5), 1-12.

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