Fumonisin Toxicosis and its Effects on Human Health: Sources, Detection, and Risk Mitigation
Authors
Department of Medical Microbiology, School of Medical Laboratory Sciences, Usmanu Danfodiyo University, Sokoto (Nigeria)
Department of Medical Microbiology, School of Medical Laboratory Sciences, Usmanu Danfodiyo University, Sokoto (Nigeria)
Department of Medical Microbiology, School of Medical Laboratory Sciences, Usmanu Danfodiyo University, Sokoto (Nigeria)
Department of Medical Microbiology, School of Medical Laboratory Sciences, Usmanu Danfodiyo University, Sokoto (Nigeria)
Department of Medical Microbiology, School of Medical Laboratory Sciences, Usmanu Danfodiyo University, Sokoto (Nigeria)
Department of Medical Microbiology, School of Medical Laboratory Sciences, Usmanu Danfodiyo University, Sokoto (Nigeria)
Medical Microbiology Department, Usmanu Danfodiyo University Teaching Hospital, Sokoto (Nigeria)
Article Information
DOI: 10.51244/IJRSI.2026.1315PH00014
Subject Category: Microbiology
Volume/Issue: 13/15 | Page No: 1311-1324
Publication Timeline
Submitted: 2025-12-28
Accepted: 2026-01-03
Published: 2026-01-20
Abstract
Fumonisins are mycotoxins produced primarily by Fusarium species that frequently contaminate maize and other cereal crops, posing significant food safety and public health concerns worldwide. Chronic exposure to fumonisins, particularly fumonisin B₁ (FB₁), has been associated with adverse human health outcomes, including disruption of sphingolipid metabolism, oxidative stress, immunotoxicity, neural tube defects, and increased risk of oesophageal cancer in high-exposure populations. This review synthesizes scientific knowledge on the sources, global occurrence, and epidemiology of fumonisin contamination, highlighting environmental and storage factors that influence toxin production. The key molecular mechanisms of fumonisin toxicity, especially inhibition of ceramide synthase and consequent alterations in membrane lipid homeostasis, are discussed alongside evidence from epidemiological and experimental studies. Advances in fumonisin detection methods and international regulatory guidelines established by WHO and EFSA are also reviewed. The paper emphasizes the need for continued surveillance, improved food safety practices, and effective mitigation strategies, particularly in regions where maize-based diets predominate.
Keywords
Fumonisin, Mycotoxin, Mycotoxicosis
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References
1. Abia, W. A., Foupouapouognigni, Y., Nfombouot, H. P. N., Ngoungoure, L. V. N., Ntungwe, E. N., Salah-Abbès, J. B., & Tchana, A. N. (2025). A scoping review on mycotoxin-induced neurotoxicity. Discover Toxicology, 2(1), 1. https://doi.org/10.1007/s44339-024-00013-7. [Google Scholar] [Crossref]
2. Anumudu, C. K., Ekwueme, C. T., Uhegwu, C. C., Ejileugha, C., Augustine, J., Okolo, C. A., & Onyeaka, H. (2025). A Review of the Mycotoxin Family of Fumonisins, Their Biosynthesis, Metabolism, Methods of Detection and Effects on Humans and Animals. International Journal of Molecular Sciences, 26(1), 184. https://doi.org/10.3390/ijms26010184 [Google Scholar] [Crossref]
3. Astoreca, A., Magnoli, C., & Barbers, C. (2007). Ochratoxin A production in relation to ecophysiological factors by Aspergillus section Nigri strains isolated from different substrates in Argentina. Science of the Total Environment, 388(1-3), 16-23. doi: 10.1016/j.scitotenv.2007.07.028 [Google Scholar] [Crossref]
4. Bankole, S. A., & Adebanjo, A. (2003). Mycotoxins in food in West Africa: Current situation and possibilities of controlling it. African Journal of Biotechnology, 2(7), 254-263. [Google Scholar] [Crossref]
5. Berthiller, F., Cramer, B., Iha, M., Krska, R., Lattanzio, V., MacDonald, S., Malone, R., Maragos, C., Solfrizzo, M., & Stranska-Zachariasova, M. (2018). Developments in mycotoxin analysis: An update for 2016–2017. World Mycotoxin Journal, 11(1), 5-32. [Google Scholar] [Crossref]
6. Bhat, R. V., Shetty, P. H., Amruth, R. P., & Sudershan, R. V. (1997). A foodborne disease outbreak due to the consumption of moldy sorghum and maize containing fumonisin mycotoxins. Clinical Toxicology, 35(3), 249–255. [Google Scholar] [Crossref]
7. Brown, J., Stepien, A. J., & Willem, P. (2020). Landscape of copy number aberrations in esophageal squamous cell carcinoma from a high endemic region of South Africa. BMC Cancer, 20, 281. [Google Scholar] [Crossref]
8. Burgess, L. (1981). General ecology of the fusaria. In P. E. Nelson, T. A. Toussoun, & R. J. Cook (Eds.), Fusarium: Diseases, biology, and taxonomy (pp. 225-235). Pennsylvania State University Press. [Google Scholar] [Crossref]
9. Cendoya, E., Chiotta, M. L., & Zachetti, V. (2018). Fumonisins and fumonisin-producing Fusarium occurrence in wheat and wheat by-products: A review. Journal of Cereal Science, 80, 158-166. doi: 10.1016/j.jcs.2018.02.010 [Google Scholar] [Crossref]
10. Chen, J., Wen, J., Tang, Y., Shi, J., Mu, G., Yan, R., Cai, J., & Long, M. (2021). Research progress on fumonisin B1 contamination and toxicity: A review. Molecules, 26(17), 5238. [Google Scholar] [Crossref]
11. Chen, J., Wei, Z., Wang, Y., Long, M., Wu, W., & Kuca, K. (2021). Fumonisin B1: Mechanisms of toxicity and biological detoxification progress in animals. Food and Chemical Toxicology, 149, 111977. [Google Scholar] [Crossref]
12. Come, J., Cambaza, E., Ferreira, R., da Costa, J. M. C., Carrilho, C., & Santos, L. L. (2019). Esophageal cancer in Mozambique: Should mycotoxins be a concern? Pan African Medical Journal, 33, 187. doi: 10.11604/pamj.2019.33.187.18295. [Google Scholar] [Crossref]
13. Damiani, T., Righetti, L., & Suman, M. (2019). Analytical issue related to fumonisins: A matter of sample comminution? Food Control, 95, 1-5. doi: 10.1016/j.foodcont.2018.07.029 [Google Scholar] [Crossref]
14. Da Rocha, M. E. B., Da Chagas Oliveira Freire, F., Maia, F. E. F., Guedes, M. I. F., & Rondina, D. (2014). Mycotoxins and their effects on human and animal health. Food Control, 36, 159-165. [Google Scholar] [Crossref]
15. Centers for Disease Control and Prevention. (2025). Neural Tube Defects (NTDs). U.S. Department of Health & Human Services. Retrieved from https://www.cdc.gov/birth-defects/about/neural-tube-defects.html [Google Scholar] [Crossref]
16. El-Sayed, A. M. A. A., Soher, E. A., & Sahab, A. F. (2003). Occurrence of certain mycotoxins in corn and corn-based products and thermostability of fumonisin B1 during processing. Food/Nährung, 47(4), 222-225. [Google Scholar] [Crossref]
17. European Mycotoxin Awareness Network (EMAN). (2000). A Thematic Network of the 5th Framework Programme R & D Call Funded by the European Union. EMAN. [Google Scholar] [Crossref]
18. Food and Agriculture Organization. (2009). FAO Statistical Yearbook 2009. Retrieved from http://faostat.fao.org/site/576/17.02.09. [Google Scholar] [Crossref]
19. Farhadi, A., Nowrozi, H., & Kachuei, R. (2019). Metabolism, toxicity, detoxification, occurrence, intake and legislations of fumonisins—a review. Journal of Pharmaceutical Research International, 29(1), 35. [Google Scholar] [Crossref]
20. Gazzotti, T., Zironi, E., Lugoboni, B., Barbarossa, A., Piva, A., & Pagliuca, G. (2011). Analysis of fumonisins B1, B2 and their hydrolysed metabolites in pig liver by LC–MS/MS. Food Chemistry, 125(4), 1379–1384. [Google Scholar] [Crossref]
21. Gökışık, C. D., & Kahtalı, M. (2025). Monitoring Fumonisins Contamination in Corn Snacks in 2020-2024 and Assessments of Dietary Exposure (Version 1). Research Square. https://doi.org/10.21203/rs.3.rs-7921707/v1 [Google Scholar] [Crossref]
22. Gullino, M. L., Minuto, A., & Gilardi, G. (2002). Efficacy of azoxystrobin and other strobilurins against Fusarium wilts of carnation, cyclamen and Paris daisy. Crop Protection, 21(1), 57-61. doi: 10.1016/S0261-2194(01)00066-7 [Google Scholar] [Crossref]
23. He, Q., Bhandari, N., & Sharma, R. P. (2002). Fumonisin B₁ alters sphingolipid metabolism and tumor necrosis factor-alpha expression in heart and lung of mice. Life Sciences, 71(17), 2015–2023. https://doi.org/10.1016/S0024-3205(02)01988-4 [Google Scholar] [Crossref]
24. Humpf, H. U., & Voss, K. A. (2004). Effects of thermal food processing on the chemical structure and toxicity of fumonisin mycotoxins. Molecular Nutrition & Food Research, 48(3), 255–269. [Google Scholar] [Crossref]
25. Hussien, T., Carlobos-Lopez, A. L., Cumagun, C., & Yli-Mattila, T. (2017). Identification and quantification of fumonisin producing Fusarium species in grain and soil samples from Egypt and the Philippines. Phytopathologia Mediterranea, 56(1), 145-157. [Google Scholar] [Crossref]
26. Jackson, L. S., Jablonski, J., Bullerman, L. B., Bianchini, A., Hanna, M. A., Voss, K. A., Hollub, A. D., & Ryu, D. (2011). Reduction of fumonisin B1 in corn grits by twin-screw extrusion. Journal of Food Science, 76(4), T150–T155. [Google Scholar] [Crossref]
27. Jedidi, I., Mateo, E. M., Marin, P., Jiménez, M., Said, S., & González-Jaén, M. T. (2021). Contamination of wheat, barley, and maize seeds with toxigenic Fusarium species and their mycotoxins in Tunisia. Journal of AOAC International, 104(3), 959-967. [Google Scholar] [Crossref]
28. Kim, D. H., Lee, I. H., Do, W. H., Nam, W. S., Li, H., Jang, H. S., & Lee, C. (2013). Incidence and levels of deoxynivalenol, fumonisins and zearalenone contaminants in animal feeds used in Korea in 2012. Toxins, 6(1), 20-32. [Google Scholar] [Crossref]
29. Knutsen, H. K., Barregård, L., Bignami, M., Brüschweiler, B., Ceccatelli, S., Cottrill, B., Dinovi, M., Edler, L., & Grasl-Kraupp, B. (2018). Appropriateness to set a group health-based guidance value for fumonisins and their modified forms. EFSA Journal, 16(7), e05172. [Google Scholar] [Crossref]
30. Kos, J., Lević, J., Đuragić, O., Kokić, B., & Miladinović, I. (2014). Occurrence and estimation of aflatoxin M1 exposure in milk in Serbia. Food Control, 38, 41–46. [Google Scholar] [Crossref]
31. Lassallette, E., Pierron, A., Tardieu, D., Reymondaud, S., Gallissot, M., Rodriguez, M. A., Collén, P. N., Roy, O., & Guerre, P. (2025). Biomarkers of Fumonisin Exposure in Pigs Fed the Maximum Recommended Level in Europe. Toxins, 17(2), 69. https://doi.org/10.3390/toxins17020069 [Google Scholar] [Crossref]
32. Lemmer, E. R., de la Motte Hall, P., Omori, N., Omori, M., Shephard, E. G., Gelderblom, W. C. A. (1999). Histopathology and gene expression changes in rat liver during feeding of fumonisin B1, a carcinogenic mycotoxin produced by Fusarium moniliforme. Carcinogenesis, 20(5), 817–824. [Google Scholar] [Crossref]
33. Li, F., Jiang, D., Zheng, F., Chen, J., & Li, W. (2015). Fumonisins B1, B2 and B3 in corn products, wheat flour and corn oil marketed in Shandong province of China. Food Additives & Contaminants: Part B, 8(2), 169-174. [Google Scholar] [Crossref]
34. Li, R., Guo, C., Zhang, Q., Pang, M., Liu, Y., & Dong, J. (2015). Fumonisins B1 and B2 in maize harvested in Hebei province, China, during 2011-2013. Food Additives & Contaminants: Part B, 8(1), 1-6. [Google Scholar] [Crossref]
35. Ling, S., Pang, J., Yu, J., Wang, R., Liu, L., Ma, Y., Zhang, Y., Jin, N., & Wang, S. (2014). Preparation and identification of monoclonal antibody against fumonisin B1 and development of detection by Ic-ELISA. Toxicon, 80, 64–72. [Google Scholar] [Crossref]
36. Liverpool-Tasie, L. S. O., Turna, N. S., Ademola, O., Obadina, A., & Wu, F. (2019). The occurrence and co-occurrence of aflatoxin and fumonisin along the maize value chain in southwest Nigeria. Food and Chemical Toxicology, 129, 110858. [Google Scholar] [Crossref]
37. Marocco, A., Gavazzi, C., Pietri, A., & Tabaglio, V. (2008). On fumonisin incidence in monoculture maize under no-till, conventional tillage and two nitrogen fertilisation levels. Journal of the Science of Food and Agriculture, 88(7), 1217-1221. doi:10.1002/jsfa.3205 [Google Scholar] [Crossref]
38. Medina, D. A. V., Borsatto, J. V. B., Maciel, E. V. S., & Lancas, F. M. (2021). Current role of modern chromatography and mass spectrometry in the analysis of mycotoxins in food. TrAC Trends in Analytical Chemistry, 135, 116156. [Google Scholar] [Crossref]
39. Milani, J., & Maleki, G. (2014). Effects of processing on mycotoxin stability in cereals. Journal of the Science of Food and Agriculture, 94(11), 2372–2375. [Google Scholar] [Crossref]
40. Miller, J. D., Savard, M. E., Schaafsma, A. W., Seifert, K. A., & Reid, L. M. (1995). Mycotoxin production by Fusarium moniliforme and Fusarium proliferatum from Ontario and occurrence of fumonisin in the 1993 corn crop. Canadian Journal of Plant Pathology, 17(3), 233–239. [Google Scholar] [Crossref]
41. Misihairabgwi, J. M., Ezekiel, C. N., & Sulyok, M. (2017). Mycotoxin contamination of foods in Southern Africa: A 10-year review (2007-2016). Critical Reviews in Food Science and Nutrition, 57(1), 1-16. doi: 10.1080/10408398.2017.1357003 [Google Scholar] [Crossref]
42. Mulisa, G., Pero-Gascon, R., McCormack, V., Bisanz, J. E., Talukdar, F. R., Abebe, T., De Boevre, M., & De Saeger, S. (2025). Multiple mycotoxin exposure assessment through human biomonitoring in an esophageal cancer case-control study in the Arsi-Bale districts of Oromia region of Ethiopia. International Journal of Hygiene and Environmental Health, 263, 114466. [Google Scholar] [Crossref]
43. Nikièma, P. N., Worrillow, L., Traoré, A. S., Wild, C. P., & Turner, P. C. (2004). Fumonisin contamination of maize in Burkina Faso, West Africa. Food Additives & Contaminants, 21(8), 865-870. [Google Scholar] [Crossref]
44. Obafemi, B. A., Adedara, I. A., Delgado, C. P., Obafemi, O. T., Aschner, M., & Rocha, J. B. T. (2025). Fumonisin B1 neurotoxicity: Preclinical evidence, biochemical mechanisms and therapeutic strategies. Toxicology Reports, 14, 101931. [Google Scholar] [Crossref]
45. Omeralfaroug Ali, A., & Szabo, A. (2024). Fumonisin distorts the cellular membrane lipid profile: A mechanistic insight. Journal of Toxicology, 506, 153860. [Google Scholar] [Crossref]
46. Osuchowski, M. F., He, Q., & Sharma, R. P. (2005). Endotoxin exposure alters brain and liver effects of fumonisin B1 in BALB/c mice: Implication of blood barrier. Food and Chemical Toxicology, 43(9), 1389-1397. [Google Scholar] [Crossref]
47. Penagos-Tabares, F., Todorov, A., Raj, J., Farkaš, H., Grubješić, G., Jakovčević, Z., Ćujić, S., Nedeljković-Trailović, J., & Vasiljević, M. (2025). Multi-Mycotoxin Contamination in Serbian Maize During 2021–2023: Climatic Influences and Implications for Food and Feed Safety. Toxins, 17(5), 227. https://doi.org/10.3390/toxins17050227 [Google Scholar] [Crossref]
48. Perera, D., Savocchia, S., Prenzler, P., Thomson, P., & Steel, C. C. (2021). Occurrence of fumonisin-producing black aspergilli in Australian wine grapes: Effects of temperature and water activity on fumonisin production by A. niger and A. welwitschiae. Mycotoxin Research, 37(3), 327–339. [Google Scholar] [Crossref]
49. Qu, L., Wang, L., Ji, H., Fang, Y., Lei, P., Zhang, X., Jin, L., Sun, D., & Dong, H. (2022). Toxic mechanism and biological detoxification of fumonisins. Toxins, 14(3), 182. doi: 10.3390/toxins14030182. [Google Scholar] [Crossref]
50. Rheeder, J. P., Marasas, W. F. O., Thiel, P. G., Sydenham, E. W., Shephard, G. S., & Vanschalkwyk, D. J. (1992). Fusarium moniliforme and fumonisins in corn in relation to human esophageal cancer in Transkei. Phytopathology, 82(3), 353-357. [Google Scholar] [Crossref]
51. Rheeder, J. P., Van der Westhuizen, L., Imrie, G., & Shephard, G. S. (2016). Fusarium species and fumonisins in subsistence maize in the former Transkei region, South Africa: A multi-year study in rural villages. Food Additives & Contaminants: Part B, 9(3), 176–184. [Google Scholar] [Crossref]
52. Riley, R. T., Torres, O., Showker, J. L., (2020). Mechanisms of fumonisin toxicity and oxidative stress: current understanding and future perspectives. Food and Chemical Toxicology, 145, 111701. [Google Scholar] [Crossref]
53. Schambri, P., Brunet, S., Bailly, J.-D., Kleiber, D., & Levasseur-Garcia, C. (2021). Effect of popcorn (Zea mays var. everta) popping mode (microwave, hot oil, and hot air) on fumonisins and deoxynivalenol contamination levels. Toxins, 13(7), 486. [Google Scholar] [Crossref]
54. Schieszl, T., Jozwiak, Á., Süth, M., Nemes, I., Kovács, M., & Zentai, A. (2025). Fumonisin Intake from Consumption of Wheat- and Corn-Based Products in Hungary. Toxins, 17(12), 566. https://doi.org/10.3390/toxins17120566 [Google Scholar] [Crossref]
55. Scientific Committee on Food. (2000). Opinion of the Scientific Committee on Food on Fusarium toxins. Part 3: Fumonisin B1 (FB1). Retrieved October 17, 2000. [Google Scholar] [Crossref]
56. Seefelder, W., Humpf, H.-U., Schwerdt, R., Freudinger, R., & Gekle, M. (2003). Induction of apoptosis in cultured human proximal tubule cells by fumonisins and fumonisin metabolites. Toxicology and Applied Pharmacology, 192(2), 146–153 [Google Scholar] [Crossref]
57. Seo, D.-G., Phat, C., Kim, D.-H., & Lee, C. (2013). Occurrence of Fusarium mycotoxin fumonisin B1 and B2 in animal feeds in Korea. Mycotoxin Research, 29(2), 159-167. [Google Scholar] [Crossref]
58. Stathas, I. G., Sakellaridis, A. C., Papadelli, M., Kapolos, J., Papadimitriou, K., & Stathas, G. J. (2023). The effects of insect infestation on stored agricultural products and the quality of food. Foods, 12(11), 2046. [Google Scholar] [Crossref]
59. Shephard, G. S. (1998). Chromatographic determination of the fumonisin mycotoxins. Journal of Chromatography A, 815(2), 31-39. doi: 10.1016/S0021-9673(98)00187-3 [Google Scholar] [Crossref]
60. Stockmann-Juvala, H., Alenius, H., & Savolainen, K. (2008). Effects of fumonisin B1 on the expression of cytokines and chemokines in human dendritic cells. Food and Chemical Toxicology, 46(4), 1444–1451. [Google Scholar] [Crossref]
61. Tian, Y., Zhang, D., Cai, P., Lin, H., Ying, H., Hu, Q.-N., & Wu, A. (2022). Elimination of Fusarium mycotoxin deoxynivalenol (DON) via microbial and enzymatic strategies: Current status and future perspectives. Trends in Food Science & Technology, 124, 96-107. [Google Scholar] [Crossref]
62. Van der Westhuizen, L., Shephard, G., & Van Schalkwyk, D. (2001). The effect of repeated gavage doses of fumonisin B1 on the sphinganine and sphingosine levels in vervet monkeys. Toxicon, 39(6), 969–972. [Google Scholar] [Crossref]
63. Voss, K. A., Smith, G. W., & Haschek, W. M. (2007). Fumonisins: Toxicokinetics, mechanism of action and toxicity. Animal Feed Science and Technology, 137(1-2), 299-325. [Google Scholar] [Crossref]
64. Voss, K. A., Riley, R. T., Moore, N. D., & Burns, T. D. (2013). Alkaline cooking (nixtamalisation) and the reduction in the in vivo toxicity of fumonisin-contaminated corn in a rat feeding bioassay. Food Additives & Contaminants: Part A, 30(8), 1415–1421. [Google Scholar] [Crossref]
65. Vujanovic, V., St-Arnaud, M., & Barabé, D. (2000). Viability testing of orchid seed and the promotion of colouration and germination. Annals of Botany, 86(1), 79-86. doi: 10.1006/anbo.2000.1162 [Google Scholar] [Crossref]
66. Wangia-Dixon, R. N., & Nishimwe, K. (2020). Molecular toxicology and carcinogenesis of fumonisins: A review. Journal of Environmental Science and Health, Part C, 38(1), 44–67. [Google Scholar] [Crossref]
67. World Health Organization & Food and Agriculture Organization of the United Nations. (2018). Safety evaluation of certain contaminants in food: Fumonisins. WHO Food Additives Series. WHO. [Google Scholar] [Crossref]
68. World Health Organization. (2002). IARC monographs on the evaluation of carcinogenic risks to humans: Some traditional herbal medicines, some mycotoxins, naphthalene and styrene (Vol. 82, pp. 301-366). IARC Press. [Google Scholar] [Crossref]
69. World Health Organization. (2001). Safety evaluation of certain mycotoxins in food (WHO food additives series 47). International Programme on Chemical Safety. (pp. 103-279). [Google Scholar] [Crossref]
70. Wu, F., Bhatnagar, D., Bui-Klimke, T., Carbone, I., Hellmich, R., Munkvold, G., Paul, P., Payne, G., & Takle, E. (2011). Climate change impacts on mycotoxin risks in US maize. World Mycotoxin Journal, 4(1), 79–93. [Google Scholar] [Crossref]
71. Xing, F., Hua, H., Selvaraj, J. N., Yuan, Y., Zhao, Y., Zhou, L., & Liu, Y. (2014). Degradation of fumonisin B1 by cinnamon essential oil. Food Control, 38, 37–40. [Google Scholar] [Crossref]
72. Xue, K. S., Tang, L., Sun, G., Wang, S., Hu, X., & Wang, J. S. (2019). Mycotoxin exposure is associated with increased risk of esophageal squamous cell carcinoma in Huaian area, China. BMC Cancer, 19(1), 1218. doi: 10.1186/s12885-019-6439-x. [Google Scholar] [Crossref]
73. Yin, J. J., Smith, M. H., Eppley, R. M., Page, S. W., & Sphon, J. A. (1998). Effects of fumonisin B1 on lipid peroxidation in membranes. Biochimica et Biophysica Acta, 1371(1), 134–142. [Google Scholar] [Crossref]
74. Zakaria, L. (2023). Fusarium species associated with diseases of major tropical fruit crops. Horticulturae, 9(2), 322. [Google Scholar] [Crossref]
75. Zhang, Z., Fang, Q., Xie, T., & Gong, X. (2024). Mechanism of ceramide synthase inhibition by fumonisin B1. Structure, 32(9), 1419-1428.e4. https://doi.org/10.1016/j.str.2024.06.002 [Google Scholar] [Crossref]
76. Zhou, D., Wang, X., Chen, G., Sun, S., Yang, Y., Zhu, Z., & Duan, C. (2018). The major Fusarium species causing maize ear and kernel rot and their toxigenicity in Chongqing, China. Toxins, 10(2), 90. [Google Scholar] [Crossref]
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