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Survival and Inactivation by Advanced Oxidative Process of Foodborne Viruses in Model Low-Moisture Foods
by
Nasheri, Neda
, Harlow, Jennifer
, Bidawid, Sabah
, Chen, Angela
, Corneau, Nathalie
in
Ambient temperature
/ Chocolate
/ Deactivation
/ Effectiveness
/ Epidemics
/ Food
/ Food availability
/ Food contamination & poisoning
/ Food matrix
/ Foodborne diseases
/ Foodborne pathogens
/ Genomes
/ Hepatitis A
/ Hydrogen peroxide
/ Hydrogen peroxide vapor
/ Inactivation
/ Infectivity
/ Moisture
/ Norovirus
/ Pathogens
/ Pistachio nuts
/ Plant viruses
/ Plaque assay
/ Polyethylene glycol
/ Polymerase chain reaction
/ Risk management
/ Risk reduction
/ Survival
/ Viruses
2021
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Survival and Inactivation by Advanced Oxidative Process of Foodborne Viruses in Model Low-Moisture Foods
by
Nasheri, Neda
, Harlow, Jennifer
, Bidawid, Sabah
, Chen, Angela
, Corneau, Nathalie
in
Ambient temperature
/ Chocolate
/ Deactivation
/ Effectiveness
/ Epidemics
/ Food
/ Food availability
/ Food contamination & poisoning
/ Food matrix
/ Foodborne diseases
/ Foodborne pathogens
/ Genomes
/ Hepatitis A
/ Hydrogen peroxide
/ Hydrogen peroxide vapor
/ Inactivation
/ Infectivity
/ Moisture
/ Norovirus
/ Pathogens
/ Pistachio nuts
/ Plant viruses
/ Plaque assay
/ Polyethylene glycol
/ Polymerase chain reaction
/ Risk management
/ Risk reduction
/ Survival
/ Viruses
2021
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Do you wish to request the book?
Survival and Inactivation by Advanced Oxidative Process of Foodborne Viruses in Model Low-Moisture Foods
by
Nasheri, Neda
, Harlow, Jennifer
, Bidawid, Sabah
, Chen, Angela
, Corneau, Nathalie
in
Ambient temperature
/ Chocolate
/ Deactivation
/ Effectiveness
/ Epidemics
/ Food
/ Food availability
/ Food contamination & poisoning
/ Food matrix
/ Foodborne diseases
/ Foodborne pathogens
/ Genomes
/ Hepatitis A
/ Hydrogen peroxide
/ Hydrogen peroxide vapor
/ Inactivation
/ Infectivity
/ Moisture
/ Norovirus
/ Pathogens
/ Pistachio nuts
/ Plant viruses
/ Plaque assay
/ Polyethylene glycol
/ Polymerase chain reaction
/ Risk management
/ Risk reduction
/ Survival
/ Viruses
2021
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Survival and Inactivation by Advanced Oxidative Process of Foodborne Viruses in Model Low-Moisture Foods
Journal Article
Survival and Inactivation by Advanced Oxidative Process of Foodborne Viruses in Model Low-Moisture Foods
2021
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Overview
Enteric viruses, such as human norovirus (NoV) and hepatitis A virus (HAV), are the major causes of foodborne illnesses worldwide. These viruses have low infectious dose, and may remain infectious for weeks in the environment and food. Limited information is available regarding viral survival and transmission in low-moisture foods (LMF). LMFs are generally considered as ready-to-eat products, which undergo no or minimal pathogen reduction steps. However, numerous foodborne viral outbreaks associated with LMFs have been reported in recent years. The objective of this study was to examine the survival of foodborne viruses in LMFs during 4-week storage at ambient temperature and to evaluate the efficacy of advanced oxidative process (AOP) treatment in the inactivation of these viruses. For this purpose, select LMFs such as pistachios, chocolate, and cereal were inoculated with HAV and the norovirus surrogates, murine norovirus (MNV) and feline calicivirus (FCV), then viral survival on these food matrices was measured over a four-week incubation at ambient temperature, by both plaque assay and droplet-digital RT-PCR (ddRT-PCR) using the modified ISO-15216 method as well as the magnetic bead assay for viral recovery. We observed an approximately 0.5 log reduction in viral genome copies, and 1 log reduction in viral infectivity for all three tested viruses following storage of select inoculated LMFs for 4 weeks. Therefore, the present study shows that the examined foodborne viruses can persist for a long time in LMFs. Next, we examined the inactivation efficacy of AOP treatment, which combines UV-C, ozone, and hydrogen peroxide vapor, and observed that while approximately 100% (4 log) inactivation can be achieved for FCV, and MNV in chocolate, the inactivation efficiency diminishes to approximately 90% (1 log) in pistachios and 70% (< 1 log) in cereal. AOP treatment could therefore be a good candidate for risk reduction of foodborne viruses from certain LMFs depending on the food matrix and surface of treatment.
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