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1.
Article in English | MEDLINE | ID: mdl-38530071

ABSTRACT

This review analyzes the occurrence and co-exposure of aflatoxins and fumonisins in conventional and organic corn, and compares the vulnerability to contamination of both. The risks of fungal contamination in corn are real, mainly by the genera Aspergillus and Fusarium, producers of aflatoxins and fumonisins, respectively. Aflatoxins, especially AFB1, are related to a high incidence of liver cancer, and the International Agency Research of Cancer (IARC) classified them in group 1A 'carcinogenic to humans'. The occurrence in conventional corn is reported in many countries, including at higher levels than those established by legislation. IARC classified fumonisins in group 2B 'possibly carcinogenic to humans' due to their link with incidence of esophageal cancer. However, comparing corn and organic and conventional by-products from different regions, different results are observed. The co-occurrence of both mycotoxins is a worldwide problem; nevertheless, there is little data on the comparison of the co-exposure of these mycotoxins in corn and derivatives between both systems. It was found that the agricultural system is not a decisive factor in the final contamination, indicating the necessity of effective strategies to reduce contamination and co-exposure at levels that do not pose health risks.


Subject(s)
Aflatoxins , Food Contamination , Fumonisins , Zea mays , Zea mays/chemistry , Fumonisins/analysis , Aflatoxins/analysis , Food Contamination/analysis , Humans , Aspergillus , Fusarium
2.
Braz J Microbiol ; 51(2): 779-785, 2020 Jun.
Article in English | MEDLINE | ID: mdl-31452069

ABSTRACT

Novel processing technologies can be used to improve both the microbiological safety and quality of food products. The application of high pressure processing (HPP) in combination with dimethyl dicarbonate (DMDC) represents a promising alternative to classical thermal technologies. This research work was undertaken to investigate the combined effect of HPP and DMDC, which was aimed at reaching over 5-log reduction in the reference pathogens Escherichia coli O157:H7, Salmonella enterica, and Listeria monocytogenes inoculated in apple juice. Different strains of each species were tested. The pressure (ranging from 100 to 600 MPa), dwell time (from 26 to 194 s), and DMDC (from 116 to 250 mg/L) were tested based on a central composite rotatable design. The dwell time, in the studied range, did not have a significant effect (p > 0.1) on the pathogens´ reduction. All treatments achieved a greater than 5-log reduction for E. coli O157:H7 and L. monocytogenes. The reductions for S. enterica were also greater than 5-log for almost all tested combinations. The results for S. enterica suggested that it is more resistant to HPP and DMDC compared with E. coli O157:H7 and L. monocytogenes. The findings of this study showed that DMDC at low concentrations can be added to apple juice to reduce the parameters conventionally applied in HPP. The combined use of HPP and DMDC was highly effective under the conditions of this study.


Subject(s)
Atmospheric Pressure , Bacteria/drug effects , Diethyl Pyrocarbonate/analogs & derivatives , Fruit and Vegetable Juices/microbiology , Malus/microbiology , Microbial Viability/drug effects , Bacteria/pathogenicity , Colony Count, Microbial , Diethyl Pyrocarbonate/pharmacology , Escherichia coli O157/drug effects , Food Microbiology/methods , Listeria monocytogenes/drug effects , Salmonella enterica/drug effects
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