Pre- and post-harvest aflatoxin contamination and management strategies of Aspergillus spoilage in East African Community maize: review of etiology and climatic susceptibility
- PMID: 39264500
- DOI: 10.1007/s12550-024-00555-0
Pre- and post-harvest aflatoxin contamination and management strategies of Aspergillus spoilage in East African Community maize: review of etiology and climatic susceptibility
Abstract
Globally, maize (Zea mays L.) is deemed an important cereal that serves as a staple food and feed for humans and animals, respectively. Across the East African Community, maize is the staple food responsible for providing over one-third of calories in diets. Ideally, stored maize functions as man-made grain ecosystems, with nutritive quality changes influenced predominantly by chemical, biological, and physical factors. Food spoilage and fungal contamination are convergent reasons that contribute to the exacerbation of mycotoxins prevalence, particularly when storage conditions have deteriorated. In Kenya, aflatoxins are known to be endemic with the 2004 acute aflatoxicosis outbreak being described as one of the most ravaging epidemics in the history of human mycotoxin poisoning. In Tanzania, the worst aflatoxin outbreak occurred in 2016 with case fatalities reaching 50%. Similar cases of aflatoxicoses have also been reported in Uganda, scenarios that depict the severity of mycotoxin contamination across this region. Rwanda, Burundi, and South Sudan seemingly have minimal occurrences and fatalities of aflatoxicoses and aflatoxin contamination. Low diet diversity tends to aggravate human exposure to aflatoxins since maize, as a dietetic staple, is highly aflatoxin-prone. In light of this, it becomes imperative to formulate and develop workable control frameworks that can be embraced in minimizing aflatoxin contamination throughout the food chain. This review evaluates the scope and magnitude of aflatoxin contamination in post-harvest maize and climate susceptibility within an East African Community context. The paper also treats the potential green control strategies against Aspergillus spoilage including biocontrol-prophylactic handling for better and durable maize production.
Keywords: Aspergillus section Flavi; Aflatoxin biosynthesis; Aflatoxins; East African Community; Gene pathways; Maize; Post-harvest practices.
© 2024. The Author(s) under exclusive licence to Society for Mycotoxin (Research Gesellschaft für Mykotoxinforschung e.V.) and Springer-Verlag GmbH Germany, part of Springer Nature.
References
-
- Abbas HK, Zablotowicz RM, Horn BW, Phillips NA, Johnson BJ, Jin X, Abel CA (2011) Comparison of major biocontrol strains of non-aflatoxigenic Aspergillus flavus for the reduction of aflatoxins and cyclopiazonic acid in maize. Food Addit Contam 28(2):198–208. https://doi.org/10.1080/19440049.2010.544680 - DOI
-
- Abdel-Hadi A, Schmidt-Heydt M, Parra R, Geisen R, Magan N (2012) A systems approach to model the relationship between aflatoxin gene cluster expression, environmental factors, growth and toxin production by Aspergillus flavus. J R Soc Interface 9(69):757–767. https://doi.org/10.1098/rsif.2011.0482 - DOI - PubMed
-
- Adhikari BN, Bandyopadhyay R, Cotty PJ (2016) “Degeneration of aflatoxin gene clusters in Aspergillus flavus from Africa and North America.” AMB Express 6(1). https://doi.org/10.1186/s13568-016-0228-6 .
-
- Agbetiameh D, Ortega-Beltran A, Awuah RT, Atehnkeng J, Elzein A, Cotty PJ, Bandyopadhyay R (2020) Field efficacy of two atoxigenic biocontrol products for mitigation of aflatoxin contamination in maize and groundnut in Ghana. Biol Control 150:104351. https://doi.org/10.1016/j.biocontrol.2020.104351 - DOI - PubMed - PMC
-
- Akullo JO, Amayo R, Okello DK, Mohammed A, Muyinda R, Magumba D, Gidoi R, Mweetwa AM (2023) Aflatoxin contamination in groundnut and maize food products in Eastern and Northern Uganda. Cogent Food Agric 9(1):1–13. https://doi.org/10.1080/23311932.2023.2221015 - DOI
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