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Measuring Volatile and Non-volatile Antifungal Activity of Biocontrol Products
Published on: December 5, 2020
Predicting and preventing mold spoilage of food products
Stéphane Dagnas1, Jeanne-Marie Membré
1L'Université Nantes Angers Le Mans, Oniris, Nantes F-44322 cédex 3, France.
Abstract:
This article is a review of how to quantify mold spoilage and consequently shelf life of a food product. Mold spoilage results from having a product contaminated with fungal spores that germinate and form a visible mycelium before the end of the shelf life. The spoilage can be then expressed as the combination of the probability of having a product contaminated and the probability of mold growth (germination and proliferation) up to a visible mycelium before the end of the shelf life. For products packed before being distributed to the retailers, the probability of having a product contaminated is a function of factors strictly linked to the factory design, process, and environment. The in-factory fungal contamination of a product might be controlled by good manufacturing hygiene practices and reduced by particular processing practices such as an adequate air-renewal system. To determine the probability of mold growth, both germination and mycelium proliferation can be mathematically described by primary models. When mold contamination on the product is scarce, the spores are spread on the product and more than a few spores are unlikely to be found at the same spot. In such a case, models applicable for a single spore should be used. Secondary models can be used to describe the effect of intrinsic and extrinsic factors on either the germination or proliferation of molds. Several polynomial models and gamma-type models quantifying the effect of water activity and temperature on mold growth are available. To a lesser extent, the effect of pH, ethanol, heat treatment, addition of preservatives, and modified atmospheres on mold growth also have been quantified. However, mold species variability has not yet been properly addressed, and only a few secondary models have been validated for food products. Once the probability of having mold spoilage is calculated for various shelf lives and product formulations, the model can be implemented as part of a risk management decision tool.
Insights
Quantifying mold spoilage involves assessing contamination probability and mold growth kinetics. This helps predict food product shelf life using mathematical models for better risk management.
Area of Science:
- Food Science
- Microbiology
- Risk Assessment
Background:
- Mold spoilage impacts food safety and shelf life.
- Spoilage is driven by fungal spore germination and mycelium growth.
- Quantification is key for predicting product viability.
Purpose of the Study:
- To review methods for quantifying mold spoilage.
- To link spoilage quantification to food product shelf-life prediction.
- To explore mathematical modeling approaches for mold growth.
Main Methods:
- Review of primary and secondary models for mold growth.
- Discussion of factors influencing contamination and growth (e.g., water activity, temperature).
- Consideration of single-spore models for scarce contamination scenarios.
Main Results:
- Mold spoilage probability combines contamination and growth probabilities.
- Mathematical models can describe mold germination and proliferation.
- Intrinsic and extrinsic factors affect mold growth, with models available for water activity and temperature.
Conclusions:
- Quantitative models can predict mold spoilage and inform shelf-life decisions.
- Further research needed on mold species variability and model validation for food products.
- Models can be integrated into risk management tools for food safety.
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