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Cellular Responses and Targets in Food Spoilage Yeasts Exposed to Antifungal Prenylated Isoflavonoids
Sylvia Kalli1, Cindy Vallieres2, Joseph Violet2
1Laboratory of Food Chemistry, Wageningen University & Research, Wageningen, the Netherlands.
Abstract:
Prenylated isoflavonoids are phytochemicals with promising antifungal properties. Recently, it was shown that glabridin and wighteone disrupted the plasma membrane (PM) of the food spoilage yeast Zygosaccharomyces parabailii in distinct ways, which led us to investigate further their modes of action (MoA). Transcriptomic profiling with Z. parabailii showed that genes encoding transmembrane ATPase transporters, including Yor1, and genes homologous to the pleiotropic drug resistance (PDR) subfamily in Saccharomyces cerevisiae were upregulated in response to both compounds. Gene functions involved in fatty acid and lipid metabolism, proteostasis, and DNA replication processes were overrepresented among genes upregulated by glabridin and/or wighteone. Chemogenomic analysis using the genome-wide deletant collection for S. cerevisiae further suggested an important role for PM lipids and PM proteins. Deletants of gene functions involved in biosynthesis of very-long-chain fatty acids (constituents of PM sphingolipids) and ergosterol were hypersensitive to both compounds. Using lipid biosynthesis inhibitors, we corroborated roles for sphingolipids and ergosterol in prenylated isoflavonoid action. The PM ABC transporter Yor1 and Lem3-dependent flippases conferred sensitivity and resistance, respectively, to the compounds, suggesting an important role for PM phospholipid asymmetry in their MoAs. Impaired tryptophan availability, likely linked to perturbation of the PM tryptophan permease Tat2, was evident in response to glabridin. Finally, substantial evidence highlighted a role of the endoplasmic reticulum (ER) in cellular responses to wighteone, including gene functions associated with ER membrane stress or with phospholipid biosynthesis, the primary lipid of the ER membrane. IMPORTANCE Preservatives, such as sorbic acid and benzoic acid, inhibit the growth of undesirable yeast and molds in foods. Unfortunately, preservative tolerance and resistance in food spoilage yeast, such as Zygosaccharomyces parabailii, is a growing challenge in the food industry, which can compromise food safety and increase food waste. Prenylated isoflavonoids are the main defense phytochemicals in the Fabaceae family. Glabridin and wighteone belong to this group of compounds and have shown potent antifungal activity against food spoilage yeasts. The present study demonstrated the mode of action of these compounds against food spoilage yeasts by using advanced molecular tools. Overall, the cellular actions of these two prenylated isoflavonoids share similarities (at the level of the plasma membrane) but also differences. Tryptophan import was specifically affected by glabridin, whereas endoplasmic reticulum membrane stress was specifically induced by wighteone. Understanding the mode of action of these novel antifungal agents is essential for their application in food preservation.
Insights
Prenylated isoflavonoids like glabridin and wighteone show antifungal activity by disrupting yeast plasma membranes. Their distinct modes of action involve lipid metabolism, protein transport, and endoplasmic reticulum stress, offering potential for food preservation.
Area of Science:
- Biochemistry
- Mycology
- Food Science
Background:
- Food spoilage yeasts like Zygosaccharomyces parabailii develop resistance to conventional preservatives.
- Prenylated isoflavonoids, such as glabridin and wighteone, exhibit potent antifungal properties against food spoilage yeasts.
- Understanding the mode of action of these phytochemicals is crucial for developing novel food preservation strategies.
Purpose of the Study:
- To investigate the distinct modes of action of glabridin and wighteone against Zygosaccharomyces parabailii.
- To elucidate the cellular targets and pathways affected by these prenylated isoflavonoids.
- To assess their potential as natural food preservatives.
Main Methods:
- Transcriptomic profiling of Z. parabailii exposed to glabridin and wighteone.
- Chemogenomic analysis using Saccharomyces cerevisiae deletant collection.
- Lipid biosynthesis inhibitor studies.
- Analysis of plasma membrane (PM) lipid asymmetry and tryptophan transport.
Main Results:
- Both compounds upregulated genes involved in transmembrane ATPase transport (e.g., Yor1) and pleiotropic drug resistance (PDR).
- Hypersensitivity to compounds was observed in deletants affecting very-long-chain fatty acid and ergosterol biosynthesis, highlighting the role of PM lipids.
- Glabridin specifically impaired tryptophan import via Tat2, while wighteone induced endoplasmic reticulum (ER) membrane stress and phospholipid biosynthesis.
- PM phospholipid asymmetry, influenced by Yor1 and Lem3-dependent flippases, plays a role in sensitivity and resistance.
Conclusions:
- Glabridin and wighteone share some mechanisms of action, primarily targeting the yeast plasma membrane and lipid metabolism.
- Distinct cellular responses include glabridin's effect on tryptophan import and wighteone's induction of ER stress.
- These prenylated isoflavonoids represent promising natural antifungal agents for food preservation, with their specific modes of action offering avenues for targeted application.
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