Comparison of the Efficiency of Some Non-Thermal Techniques in Detoxifying Aflatoxin B1, Ochratoxin A, and Fumonisin B1 from Feeds of Poultry
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Abstract
Atmospheric pressure corona discharge (APCD), ultraviolet C with ozone (UVC w/ O3), and plasma treated water (PTW) have lately been spotlighted in the food industry as non-thermal techniques (NTTs) for detoxifying mycotoxins, due to their unique features. The efficiency of these techniques in detoxifying aflatoxin B1 (Afla B1), ochratoxin A (Ochra A), and fumonisin B1 (Fum B1) in feeds of poultry and their effects on quality of feed were inspected. Samples of feed were subjected to APCD, UVC w/ O3, and PTW for 10, 20, and 60 min. Mycotoxin concentrations were determined by competitive enzyme-linked immunosorbent assay (ELISA), and outcomes were verified by high-performance liquid chromatography (HPLC). Standard analytical methods were adopted for analyzing feed components and determining peroxide values (PVs). Subjecting samples to APCD, UVC w/ O3, and PTW for 10 min resulted in degradation of Afla B1 to levels of 46.6, 38.9, and 28.9%, Ochra A to 49.8, 35.9, and 29.9%, and Fum B1 to 58.6, 42.6, and 35.9%, respectively, for 20 min to Afla B1 levels of 57.7, 46.6, and 32.9%, Ochra A 68.9, 45.3, and 38.5%, and Fum B1 75.7, 49.9, and 41.6%, respectively, for 60 min to Afla B1 levels of 83.2, 65.7, and 33.8%, Ochra A 84.2, 73.6, and 40.7%, and Fum B1 84.8, 71.2, and 43.4%, respectively. The main conclusion of the study is that APCD and UVC w/ O3 can be adopted to efficiently degrade Afla B1, Ochra A, and Fum B1 in feed while maintaining its quality. According to their impact on feed quality, techniques can be ranked as follows: APCD > UVC w/ O3 > PTW.
Received: 29 October 2025
Revised: 12 December 2025
Accepted:28 December 2025
Published: 28 December 2025
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CO, et al. Mycotoxins affecting animals, foods, humans, and plants: Types, occurrence, toxicities, action mechanisms, prevention, and detoxification strategies-a revisit. Foods. 2021;10(6):1279. https://doi.org/10.3390/foods10061279
2. Al-Taee ZT, Saeed MG. Correlation incidence between infectious bursal disease and aflatoxicosis in broilers chicken farms in Nineveh province. Iraqi J Vet Sci. 2023;37(1):183-190. https://doi.org/10.33899/ijvs.2022.133881.2315
3. Al-Hichamy HH, Al-Saaidi JA. Influence of prepubertal aflatoxicosis on pubertal reproductive activity in male rats. Iraqi J Vet Sci. 2024;38(2):267-273. https://doi.org/10.33899/ijvs.2023.141632.3125
4. Hassan FF, Al- Jibouri MH, Hashim AJ. Isolation and identification of fungal propagation in stored maize and detection of aflatoxin B1 using TLC and ELISA technique. Iraqi J Sci. 2014;55(2B):634-642. https://ijs.uobaghdad.edu.iq/index.php/eijs/article/view/11743
5. Saadullah AA, Abdullah SK. Detection of Aspergillus species in dried fruits collected from Duhok market and study their aflatoxiginic properties. Rafidain J Sci. 2014;25(1):12-18. https://doi.org/10.33899/rjs.2014.86052
6. Dey DK, Kang JI, Bajpai VK, Kim K, Lee H, Sonwal S, et al. Mycotoxins in food and feed: Toxicity, preventive challenges, and advanced detection techniques for associated diseases. Crit Rev Food Sci Nutr. 2023;63(27):8489-510.
https://doi.org/10.1080/10408398.2022.2059650
7. Minati MH, Mohammed-Ameen MK. First report of three kinds of mycotoxins dioxynivalenol, nivalenol and fumonisin B2 in seeds of seven wheat cultivars in Iraq. Iraqi J Vet Med. 2023;43(1):43-49. https://doi.org/10.30539/iraqijvm.v43i1.469
8. Majeed SHA, Khammas EJ. Aflatoxin in chicken's feed and its effects on apoptosis. Iraqi J Vet Med. 2010;34(1):29-43.
https://doi.org/10.30539/iraqijvm.v34i1.656
9. Abbas DA, Faraj MK, Abed AR. Some biochemical and histopathological effects of different oral doses ochratoxin A in male rats. Iraqi J Vet Med. 2012;36(0E):182-189. https://doi.org/10.30539/iraqijvm.v36i0E.414
10. Suhail MT, AL-Musawi MT, Jawad AM. Detection of aflatoxin B1 among early and middle childhood Iraqi patients. Baghdad Sci J. 2020;17(2): 37. https://doi.org/10.21123/bsj.2020.17.2(SI).0604
11. Mehtab U, Tahir M, Abbas R, Abbas A, Hussain K, Siddiqui F, et al. Ochratoxin A occurrence, its pathological effects on poultry health and decontamination apprOchra Aches. J Hellenic Vet Med Soc. 2021;72(4):3257-62. https://doi.org/10.12681/jhvms.29355
12. Al-Naemey HMM, Ja'afar NS, Omran HA. Study of using Thymbra spicata leaves to reduce the toxic immunosuppressive effect of aflatoxin in broilers. Iraqi J Ve Med. 2008;32(1):140-147. https://doi.org/10.30539/iraqijvm.v32i1.774
13. Hassan FF. Detection of aflatoxin B1 in some canned foods and reduction of toxin by ultraviolet radiation. Iraqi J Sci. 2017;58(4C):2343-2349.https://doi.org/10.24996/ijs.2017.58.4C.10
14. Marshall H, Meneely JP, Quinn B, Zhao Y, Bourke P, Gilmore BF, et al. Novel decontamination apprOchra Aches and their potential application for post-harvest aflatoxin control. Trends Food Sci Technol. 2020;106:489-96. https://doi.org/10.1016/j.tifs.2020.11.001
15. Ferreira CD, Lang GH, Lindemann I, Timm N, Hoffmann JF, Ziegler V, et al. Postharvest UV-C irradiation for fungal control and reduction of mycotoxins in brown, black, and red rice during long-term storage. Food Chem. 2021;339:127810.
https://doi.org/10.1016/j.foodchem.2020.127810
16. Ahmed B, Ibrahim B, Mustafa Y. The protective role of natural coumarins derivatives and anpro supplement against aflatoxin B1 pollution in the quails coturnix japonica diet. Mesop J Agric. 2023;51(1):1-13. https://doi.org/10.33899/magrj.2023.136713.1205
17. Nava-Ramirez MJ, Maguey-Gonzalez JA, Gomez-Rosales S, Hernandez-Ramirez JO, Latorre JD, Du X, et al. Efficacy of powdered alfalfa leaves to ameliorate the toxic effects of aflatoxin B1 in turkey poults. Mycotoxin Res. 2024;40(2):269-77.
https://doi.org/10.1007/s12550-024-00527-4
18. Rahawi AM, Al-Taee SK, Ali FF, Altaey OY, Abdullah DA. Protective role of biosynthetic silver nanoparticles in broilers with aflatoxicosis through histopathological study of spleen. Iraqi J Vet Sci. 2024;38(3):565-572. https://doi.org/10.33899/ijvs.2024.146024.3414
19. Ujilestari T, Adli DN, Alifian MD, Irawan A, Nurfitriani RA, Hudaya MF, et al. Evaluating zeolite stability as a mycotoxin binder in broiler chickens' growth performance: A meta-analysis. Iraqi J Vet Sci. 2025;39(3):511-519. 10.33899/ijvs.2025.157757.4148
20. Allai FM, Azad AA, Mir NA, Gul K. Recent advances in non-thermal processing technologies for enhancing shelf life and improving food safety. Appl Food Res. 2023;3(1):100258. https://doi.org/10.1016/j.afres.2022.100258
21. Puligundla P, Lee T, Mok C. Effect of corona discharge plasma jet treatment on the degradation of aflatoxin B1 on glass slides and in spiked food commodities. Lebensm Wiss Technol. 2019;124(1):108333. https://doi.org/10.1016/j.lwt.2019.108333
22. Yousefi M, Mohammadi MA, Khajavi MZ, Ehsan A, Scholtz V. Application of novel non-thermal physical technologies to degrade mycotoxins. J Fungi. 2021;7(5):395.https://doi.org/10.3390/jof7050395
23. Thirumdas R, Kothakota A, Annapure U, Siliveru K, Blundell R, Gatt R, et al. Plasma activated water (PTW): Chemistry, physico-chemical properties, applications in food and agriculture. Trends Food Sci Technol. 2018;77:21-31.https://doi.org/10.1016/j.tifs.2018.05.007
24. Malajowicz J, Khachatryan K, Kozłowska M. Properties of water activated with low temperature plasma in the context of microbial activity. Beverages. 2022;8(4):63. https://doi.org/10.3390/beverages8040063
25. Zhou RW, Zhou RS, Wang PY, Xian YB, MaiProchnow A, Lu XP, et al. Plasma-treated water: Generation, origin of reactive species and biological applications. J Phys D Appl Phys. 2020;53(30):303001. https://doi.org/10.1088/1361-6463/ab81cf
26. Xu H, Fang C, Huang Q. Achieving improved efficiency for removal of aflatoxin B1 by combination use of cold atmospheric-pressure plasma and plasma-treated water. J Water Process Eng. 2023;54(38):104004. https://doi.org/10.1016/j.jwpe.2023.104004
27. Stanley JS, Patras A, Pendyala B, Vergne MJ, Bansode RR. Performance of a UV-A LED system for degradation of aflatoxins B1 and M1 in pure water: Kinetics and cytotoxicity study. Sci Rep. 2020;10(1):13473. https://doi.org/10.1038/s41598-020-70370-x
28. He J, Evans NM, Liu H, Zhu Y, Zhou T, Shao S. UV treatment for degradation of chemical contaminants in food: A review. Compr Rev Food Sci Food Saf. 2021;20(2):1857-1886.https://doi.org/10.1111/1541-4337.12698
29. Claus H. Ozone generation by ultraviolet lamps. Photochem Photobiol. 2021;97(3):471-476. https://doi.org/10.1111/php.13391
30. Li H, Xiong Z, Gui D, Pan Y, Xu M, Guo Y, et al. Effect of ozonation and UV irradiation on aflatoxin degradation of peanuts. J Food Process Preserv. 2019;43(11):e13914.https://doi.org/10.1111/jfpp.13914
31. Hubner U, Spahr S, Lutze H, Wieland A, Ruting S, Gernjak W, et al. Advanced oxidation processes for water and wastewater treatment - Guidance for systematic future research. Heliyon. 2024;10(9):e30402.https://doi.org/10.1016/j.heliyon.2024.e30402
32. Alnaemi HS, Dawood TN, Algwari QT. Aflatoxin B1, ochratoxin A, and fumonisin B1 detoxification from poultry feeds by corona discharge application. J Adv Vet Anim Res. 2024;11(4):819-834. https://doi.org/10.5455/javar.2024.k834
33. Alnaemi HS, Dawood TN, Algwari QT. Plasma-treated water application for detoxification of aflatoxin B1, ochratoxin A, and fumonisin B1 in poultry feeds. Open Vet J. 2023;13(12):1654-1668. https://doi.org/10.5455/OVJ.2023.v13.i12.15
34. AOAC (Association of Official Analytical Chemists). Moisture in animal feed, method (930.15) Official Methods of Analysis, 1990. In: Undersander D, Mertens DR, Thiex N, editors. Forage analyses procedures. National Forage Testing Association; 1993. https://fyi.extension.wisc.edu/forage/files/2014/01/NFTA-Forage-Analysis-Procedures.pdf
35. Alnaemi H, Dawood TN, Algwari Q. Ultraviolet C and ozone application for detoxification of aflatoxin B1, ochratoxin A, and fumonisin B1 in poultry feeds. Egypt J Vet Sci. 2025;56(4):797-813. https://doi.org/10.21608/ejvs.2024.277904.1937
36. Kim EK, Shon DH, Yoo JY, Ryu D, Lee C, Kim YB. Natural occurrence of aflatoxins in Korean meju. Food Addit Contam. 2001;18(2):151-6.
https://doi.org/10.1080/02652030010006104
37. Nesheim S, Stack ME, Trucksess MW, Eppley RM, Krogh P. Rapid solvent-efficient method for liquid chromatographic determination of ochratoxin A in corn, barley, and kidney: Collaborative study. J AOAC Int. 1992;75(3):481-7. https://doi.org/10.1093/jaoac/75.3.481
38. Shephard GS, Sydenham EW, Thiel PG, Gelderblom WC. Quantitative determination of fumonisins B1 and B2 by high-performance liquid chromatography with fluorescence detection. J Liq Chromatogr. 1990;13(10):2077-87. https://doi.org/10.1080/01483919008049014
39. Thiex N, Novotny L, Crawford A. Determination of ash in animal feed: AOAC official method 942.05 revisited. J AOAC Int. 2012;95(5):1392-7. https://doi.org/10.5740/jaoacint.12-129
40. AOAC (Association of Official Analytical Chemists). Protein (crude) determination in animal feed: Copper catalyst kjeldahl method (984.13) Official Methods of Analysis, 1990. In: Undersander D, Mertens DR, Thiex N, editors. Forage analyses procedures. National Forage Testing Association; 1993. https://fyi.extension.wisc.edu/forage/files/2014/01/NFTA-Forage-Analysis-Procedures.pdf
41. DuBois M, Gilles KA, Hamilton JK, Rebers PA, Smith F. Colorimetric method for determination of sugars and related substances. Anal Chem. 1956;28:350-6. https://doi.org/10.1021/ac60111a017
42. AOAC (Association of Official Analytical Chemists). In: Latimer GW, editor. Official Methods of Analysis of AOAC International. 18th edition. Gaithersburg, MD, AOAC International; 2006. https://www.scribd.com/document/480055415/AOAC-920-39
43. AOAC (Association of Official Analytical Chemists). AOAC official method 965.33: Peroxide value. In: Horwitz W, editor. Official Method of Analysis of AOAC International. 17th edition. Gaithersburg, Md, AOAC International; 1969. 12 p. https://www.scribd.com/document/501494648/AOAC-965-33-Peroxide-Value
44. Steel RG, Torrie JH. Principles and procedures of statistics. New York: McGraw-Hill Book Company; 1961. 481 p. 10.2134/agronj1961.00021962005300050002x
45. Duncan DB. Multiple range and multiple F tests. Biometrics. 1955;11(1):1-42. https://www.jstor.org/stable/3001478?origin=crossref
https://doi.org/10.2307/3001478
46. Wang Y, Shang J, Cai M, Liu Y, Yang K. Detoxification of mycotoxins in agricultural products by non-thermal physical technologies: A review of the past five years. Crit Rev Food Sci Nutr. 2023;63(33):11668-11678. https://doi.org/10.1080/10408398.2022.2095554
47. Molina-Hernandez JB, Grande-Tovar CD, Neri L, Delgado-Ospina J, Rinaldi M, Cordero-Bueso GA, et al. Enhancing postharvest food safety: The essential role of non-thermal technologies in combating fungal contamination and mycotoxins. Front Microbiol. 2025; 16:1543716. https://doi.org/10.3389/fmicb.2025.1543716
48. Hojnik N, Modic M, Tavcar-Kalcher G, Babic J, Walsh JL, Cvelbar U. Mycotoxin decontamination efficacy of atmospheric pressure air plasma. Toxins. 2019;11(4):219. https://doi.org/10.3390/toxins11040219
49. Chen H, Arcega R, Herianto S, Hou C, Lin C. Mycotoxin decontamination of foods using nonthermal plasma and plasma-treated water. In: Alina Marc R, editor. Mycotoxins and food safety - recent advances. IntechOpen; 2022. https://doi.org/10.5772/intechopen.103779
50. Nesic KD, Pisinov BP, Jaksic SM, Tasic AМ, Savic BM, Pavlovic NJ. Comparison of ELISA and HPLC methods for the detection of mycotoxins by analyzing proficiency test results. Zbornik Matice srpske za prirodne nauke. 2017;2017(133):79-93.
https://doi.org/10.2298/ZMSPN1733079N
51. Diao E, Li X, Zhang Z, Ma W, Ji N, Dong H. Ultraviolet irradiation detoxification of aflatoxins. Trends Food Sci Technol. 2015;42(1):64-69.
https://doi.org/10.1016/j.tifs.2014.12.001
52. Perna A, Gambacorta E, Simonetti A, Grassi G, Scopa A. Effect of ozone treatment exposure time on oxidative stability of cream milk. Eur J Lipid Sci Technol. 2022;124(8):2100238. https://doi.org/10.1002/ejlt.202100238
53. Zare L, Mollakhalili-Meybodi N, Fallahzadeh H, Arab M. Effect of atmospheric pressure cold plasma (ACP) treatment on the technological characteristics of quinOchra A flour. LWT-Food Sci Tech. 2021;155(2):112898. https://doi.org/10.1016/j.lwt.2021.112898
54. Zhao YM, Oliveira M, Burgess CM, Cropotova J, Rustad T, Sun DW, et al. Combined effects of ultrasound, plasma-treated water, and peracetic acid on decontamination of mackerel fillets. LWT-Food Sci Tech. 2021;150(2):111957. https://doi.org/10.1016/j.lwt.2021.111957
55. Mohammadi S, Imani S, Dorranian D, Tirgari S, Shojaee M. The effect of non-thermal plasma to control of stored product pests and changes in some characters of wheat materials. J Biodivers Environ Sci. 2015;7(5):150-6. https://www.innspub.net/wp-content/uplOchra Ads/2022/12/JBES-V7-No5-p150-156.pdf
56. Ribeiro DF, Faroni LR, Pimentel MA, Prates LH, Heleno FF, De Alencar ER. Ozone as a fungicidal and detoxifying agent to maize contaminated with fumonisins. Ozone: Sci Eng. 2022;44(1):38-49. https://doi.org/10.1080/01919512.2021.1924616
57. Celik O, Sivri GT, Okur AA. Gaseous ozone application on microbial properties of broiler feeds. Ital J Anim Sci. 2021;20(1):1094-1102.
https://doi.org/10.1080/1828051X.2021.1945960
58. Sarangapani C, Devi RY, Thirumdas R, Trimukhe AM, Deshmukh RR, Annapure US. Physico-chemical properties of low-pressure plasma treated black gram. LWT-Food Sci Tech. 2017a;79(2):102-110. https://doi.org/10.1016/j.lwt.2017.01.017
59. Dale N. National research council nutrient requirements of poultry. 9th revised edition. J Appl Poult Res. 1994;3(1):101-101.
https://doi.org/10.1093/japr/3.1.101
60. Yi-gang Y, Han-ruo M, Rui H, Yu-qian T, Xing-long X. Degradation of deoxynivalenol in flour by ozone and ultraviolet light and their effects on flour quality. Mod Food Sci Technol. 2016;32(9):196-202. 10.13982/j.mfst.1673-9078.2016.9.029
61. Starek-Wojcicka A, Rozylo R, Niedzwiedz I, Kwiatkowski M, Terebun P, Polak-Berecka M, et al. Pilot study on the use of cold atmospheric plasma for preservation of bread. Sci Rep. 2022;12(1):22003. https://doi.org/10.1038/s41598-022-26701-1
62. Garg N, Aggarwal M, Javed S, Khandal R. Studies for optimization of conditions for reducing aflatoxin contamination in peanuts using ultraviolet radiations. Int J Drug Dev Res. 2013;5(3):408-424.https://www.ijddr.in/drug-development/studies-for-optimization-of-conditions-for-reducing-aflatoxincontamination-in-peanuts-using-ultraviolet-radiations.pdf
63. Ali EM, Abdallah BM. The potential use of ozone as antifungal and antiaflatoxigenic agent in nuts and its effect on nutritional quality. Braz J Biol. 2022;84:e263814. https://doi.org/10.1590/1519-6984.263814
64. Deng S, Ruan R, Mok CK, Huang G, Lin X, Chen P. Inactivation of Escherichia coli on almonds using non thermal plasma. J Food Sci. 2007;72(2):M62-6. https://doi.org/10.1111/j.1750-3841.2007.00275.x
65. Herianto S, Hou CY, Lin CM, Chen HL. Nonthermal plasma-treated water: A comprehensive review of this new tool for enhanced food safety and quality. Compr Rev Food Sci Food Safety. 2021;20(1):583-626. https://doi.org/10.1111/1541-4337.12667
66. Wang L, Shao H, Luo X, Wang R, Li Y, Li Y, et al. Effect of ozone treatment on deoxynivalenol and wheat quality. PLoS One. 2016;11(1):e0147613. https://doi.org/10.1371/journal.pone.0147613
67. Choi EJ, Park HW, Kim SB, Ryu S, Lim J, Hong EJ, et al. Sequential application of plasma-treated water and mild heating improves microbiological quality of ready to-use shredded salted Chinese cabbage (Brassica pekinensis L.). Food Control. 2018;98:501-509.
https://doi.org/10.1016/j.foodcont.2018.12.007
68. Zheng Y, Wu S, Dang J, Wang S, Liu Z, Fang J, et al. Reduction of phoxim pesticide residues from grapes by atmospheric pressure nonthermal air plasma activated water. J hazard mater. 2019;377:98-105. https://doi.org/10.1016/j.jhazmat.2019.05.058
69. Xiang Q, Zhang R, Fan L, Ma Y, Wu D, Li K, et al. Microbial inactivation and quality of grapes treated by plasma-treated water combined with mild heat. LWT-Food Sci Tech. 2020;126:109336. https://doi.org/10.1016/j.lwt.2020.109336
70. Wealleans AL, Bierinckx K, Witters E, di Benedetto M, Wiseman J. Assessment of the quality, oxidative status and dietary energy value of lipids used in non-ruminant animal nutrition. J Sci Food Agric. 2021;101(10):4266-77. https://doi.org/10.1002/jsfa.11066
71. Jung S, Kim HJ, Park S, Yong HI, Choe JH, Jeon HJ, et al. The use of atmospheric pressure plasma-treated water as a source of nitrite for emulsion-type sausage. Meat Sci. 2015;108:132-137. https://doi.org/10.1016/j.meatsci.2015.06.009
72. Sarangapani C, Keogh DR, Dunne J, Bourke P, Cullen PJ. Characterization of cold plasma treated beef and dairy lipids using spectroscopic and chromatographic methods. Food Chem. 2017b;235(3):324-333. https://doi.org/10.1016/j.foodchem.2017.05.016
73. Shen MH, Singh RK. Effective UV wavelength range for increasing aflatoxins reduction and decreasing oil deterioration in contaminated peanuts. Food Res Int. 2022;154:111016. https://doi.org/10.1016/j.foodres.2022.111016
74. Zhang B, Tan C, Zou F, Sun Y, Shang N, Wu W. Impacts of cold plasma technology on sensory, nutritional and safety quality of food: A review. Foods. 2022;11(18):2818. https://doi.org/10.3390/foods11182818
