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Updated: Mar 18, 2026

Measuring Volatile and Non-volatile Antifungal Activity of Biocontrol Products
Published on: December 5, 2020
Manuscript title: antifungal proteins from moulds: analytical tools and potential application to dry-ripened foods
Josué Delgado1, Rebecca A Owens2, Sean Doyle2
1Food Hygiene and Safety, Institute of Meat Products, University of Extremadura, Cáceres, Spain.
Abstract:
Moulds growing on the surface of dry-ripened foods contribute to their sensory qualities, but some of them are able to produce mycotoxins that pose a hazard to consumers. Small cysteine-rich antifungal proteins (AFPs) from moulds are highly stable to pH and proteolysis and exhibit a broad inhibition spectrum against filamentous fungi, providing new chances to control hazardous moulds in fermented foods. The analytical tools for characterizing the cellular targets and affected pathways are reviewed. Strategies currently employed to study these mechanisms of action include 'omics' approaches that have come to the forefront in recent years, developing in tandem with genome sequencing of relevant organisms. These techniques contribute to a better understanding of the response of moulds against AFPs, allowing the design of complementary strategies to maximize or overcome the limitations of using AFPs on foods. AFPs alter chitin biosynthesis, and some fungi react inducing cell wall integrity (CWI) pathway. However, moulds able to increase chitin content at the cell wall by increasing proteins in either CWI or calmodulin-calcineurin signalling pathways will resist AFPs. Similarly, AFPs increase the intracellular levels of reactive oxygen species (ROS), and moulds increasing G-protein complex β subunit CpcB and/or enzymes to efficiently produce glutathione may evade apoptosis. Unknown aspects that need to be addressed include the interaction with mycotoxin production by less sensitive toxigenic moulds. However, significant steps have been taken to encourage the use of AFPs in intermediate-moisture foods, particularly for mould-ripened cheese and meat products.
Insights
Antifungal proteins (AFPs) show promise for controlling hazardous moulds in fermented foods. Understanding mould resistance mechanisms is key to maximizing AFP efficacy and ensuring food safety.
Area of Science:
- Food microbiology and mycology
- Biochemistry and molecular biology
- Food safety and technology
Background:
- Moulds on dry-ripened foods enhance sensory qualities but can produce hazardous mycotoxins.
- Small cysteine-rich antifungal proteins (AFPs) are stable and inhibit a broad spectrum of fungi.
Purpose of the Study:
- To review analytical tools and strategies for characterizing cellular targets and pathways affected by AFPs.
- To understand mould resistance mechanisms against AFPs for improved food safety applications.
Main Methods:
- Review of analytical tools for characterizing cellular targets and affected pathways.
- 'Omics' approaches, including genome sequencing, are employed to study mould responses to AFPs.
Main Results:
- AFPs disrupt chitin biosynthesis; some fungi resist by upregulating cell wall integrity (CWI) or calmodulin-calcineurin pathways.
- AFPs increase reactive oxygen species (ROS); moulds may resist by enhancing glutathione production.
- Moulds can develop resistance to AFPs through specific signaling pathway modifications.
Conclusions:
- Understanding mould resistance mechanisms is crucial for optimizing AFP use in food preservation.
- AFPs show potential for controlling hazardous moulds in intermediate-moisture foods like cheese and meats.
- Further research is needed on AFP interactions with mycotoxin production in resistant moulds.
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Fungal Group Zygomycota
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