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Physicochemical Parameters Affecting Norovirus Adhesion to Ready-To-Eat Foods
Mathilde Trudel-Ferland1, Coralie Goetz1, Maryline Girard1
1Département des Sciences des Aliments, Institut sur la Nutrition et les Aliments Fonctionnels, Université Laval, Québec, Québec, Canada.
Abstract:
The adhesion of noroviruses to strawberry, turkey slices, ham, and cheddar cheese was studied using murine norovirus 1 (MNV-1) as a surrogate for human norovirus (NoV). Based on plaque assay, the recovery and adhesion of MNV-1 depended on the food type (turkey versus strawberry), pH of the initial suspension buffer (pH 4 versus pH 7), and food fat composition (C8 versus C18). Recovery of infectious particles from turkey was 68% compared to 9.4% from strawberry. On turkey, adhesion of MNV-1 was lower at pH 7 (pH of fecal matter), and virus particles adhered to this pH were recovered more easily (33,875 PFU) than at pH 4 (pH of vomitus). The presence of fat and the composition of fatty acids seemed to increase MNV-1 recovery and adherent viral particles recovered but did not affect adhesion (68% on fat-free turkey and regular turkey). Adherent MNV-1 particles recovered from stainless steel coated with saturated fatty acid (C8, C14, C18) increased significantly with chain length (P < 0.05), but adhesion did not seem to change. Using liquid droplet contact angle to measure surface energy, it was deduced that hydrophobic interactions contribute considerably to the adhesion of MNV-1 to stainless steel, polyvinyl chloride, and high-density polyethylene. IMPORTANCE Ready-to-eat (RTE) foods are major vehicles of transmission of foodborne viral pathogens, including NoV. The high incidence of gastroenteritis caused by viruses is due largely to their persistence in the environment and adhesion to different kinds of surfaces in the food industry, including the foods themselves. Compared with bacteria, adhesion of viruses to surfaces is poorly understood. Better knowledge of the physicochemical parameters involved in the adhesion of NoV to ready-to-eat foods is essential to devising effective strategies for reducing the persistence and, thus, the transmission of this virus.
Insights
Norovirus (NoV) adhesion to ready-to-eat foods like turkey and strawberry depends on food type, pH, and fat content. Understanding these factors is crucial for preventing viral transmission in the food industry.
Area of Science:
- Food Microbiology
- Virology
- Surface Chemistry
Background:
- Ready-to-eat foods are significant transmission vehicles for foodborne viral pathogens, including norovirus (NoV).
- Viral persistence and adhesion to food industry surfaces, including foods, contribute to gastroenteritis outbreaks.
- The adhesion mechanisms of viruses to surfaces are less understood compared to bacteria.
Purpose of the Study:
- To investigate the adhesion of norovirus surrogates to various food types and surfaces.
- To determine the influence of physicochemical factors such as pH and fat composition on virus adhesion and recovery.
- To elucidate the role of hydrophobic interactions in norovirus adhesion to food and food contact surfaces.
Main Methods:
- Utilized murine norovirus 1 (MNV-1) as a surrogate for human norovirus (NoV).
- Employed plaque assays to quantify viral recovery and adhesion on different food matrices (strawberry, turkey, ham, cheddar cheese) and surfaces (stainless steel, PVC, HDPE).
- Measured surface energy using liquid droplet contact angle analysis.
Main Results:
- MNV-1 recovery and adhesion varied significantly based on food type, pH, and fatty acid chain length.
- Higher recovery rates were observed for MNV-1 on turkey (68%) compared to strawberry (9.4%).
- Hydrophobic interactions were identified as a major factor in MNV-1 adhesion to various surfaces.
Conclusions:
- Physicochemical properties of food and surfaces critically influence norovirus adhesion and persistence.
- Understanding these parameters is essential for developing effective strategies to mitigate NoV transmission.
- This research provides insights into preventing viral contamination in the food industry.
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