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Advanced Mycotoxin Control and Decontamination Techniques in View of an Increased Aflatoxin Risk in Europe Due to Climate Change

Overview
Journal Front Microbiol
Specialty Microbiology
Date 2023 Feb 10
PMID 36762096
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Abstract

Aflatoxins are toxic secondary metabolites produced by spp. found in staple food and feed commodities worldwide. Aflatoxins are carcinogenic, teratogenic, and mutagenic, and pose a serious threat to the health of both humans and animals. The global economy and trade are significantly affected as well. Various models and datasets related to aflatoxins in maize have been developed and used but have not yet been linked. The prevention of crop loss due to aflatoxin contamination is complex and challenging. Hence, the set-up of advanced decontamination is crucial to cope with the challenge of climate change, growing population, unstable political scenarios, and food security problems also in European countries. After harvest, decontamination methods can be applied during transport, storage, or processing, but their application for aflatoxin reduction is still limited. Therefore, this review aims to investigate the effects of environmental factors on aflatoxin production because of climate change and to critically discuss the present-day and novel decontamination techniques to unravel gaps and limitations to propose them as a tool to tackle an increased aflatoxin risk in Europe.

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References
1.
Farkas Z, Orszagh E, Engelhardt T, Csorba S, Kerekes K, Zentai A . A Systematic Review of the Efficacy of Interventions to Control Aflatoxins in the Dairy Production Chain-Feed Production and Animal Feeding Interventions. Toxins (Basel). 2022; 14(2). PMC: 8878089. DOI: 10.3390/toxins14020115. View

2.
Baidya S, Duran R, Lohmar J, Harris-Coward P, Cary J, Hong S . VeA is associated with the response to oxidative stress in the aflatoxin producer Aspergillus flavus. Eukaryot Cell. 2014; 13(8):1095-103. PMC: 4135802. DOI: 10.1128/EC.00099-14. View

3.
Wu F, Guclu H . Aflatoxin regulations in a network of global maize trade. PLoS One. 2012; 7(9):e45151. PMC: 3458029. DOI: 10.1371/journal.pone.0045151. View

4.
Jayashree T, Subramanyam C . Oxidative stress as a prerequisite for aflatoxin production by Aspergillus parasiticus. Free Radic Biol Med. 2000; 29(10):981-5. DOI: 10.1016/s0891-5849(00)00398-1. View

5.
Malhotra N, Lee J, Liman R, Ruallo J, Villaflores O, Ger T . Potential Toxicity of Iron Oxide Magnetic Nanoparticles: A Review. Molecules. 2020; 25(14). PMC: 7397295. DOI: 10.3390/molecules25143159. View