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Different Toxicity Mechanisms for Citrinin and Ochratoxin A Revealed by Transcriptomic Analysis in Yeast
Elena Vanacloig-Pedros1, Markus Proft2, Amparo Pascual-Ahuir3
1Department of Biotechnology, Instituto de Biología Molecular y Celular de Plantas, Universidad Politécnica de Valencia, Ingeniero Fausto Elio s/n, 46022 Valencia, Spain. mevaped@etsia.upv.es.
Abstract:
Citrinin (CIT) and ochratoxin A (OTA) are important mycotoxins, which frequently co-contaminate foodstuff. In order to assess the toxicologic threat posed by the two mycotoxins separately or in combination, their biological effects were studied here using genomic transcription profiling and specific live cell gene expression reporters in yeast cells. Both CIT and OTA cause highly transient transcriptional activation of different stress genes, which is greatly enhanced by the disruption of the multidrug exporter Pdr5. Therefore, we performed genome-wide transcription profiling experiments with the pdr5 mutant in response to acute CIT, OTA, or combined CIT/OTA exposure. We found that CIT and OTA activate divergent and largely nonoverlapping gene sets in yeast. CIT mainly caused the rapid induction of antioxidant and drug extrusion-related gene functions, while OTA mainly deregulated developmental genes related with yeast sporulation and sexual reproduction, having only a minor effect on the antioxidant response. The simultaneous exposure to CIT and OTA gave rise to a genomic response, which combined the specific features of the separated mycotoxin treatments. The application of stress-specific mutants and reporter gene fusions further confirmed that both mycotoxins have divergent biological effects in cells. Our results indicate that CIT exposure causes a strong oxidative stress, which triggers a massive transcriptional antioxidant and drug extrusion response, while OTA mainly deregulates developmental genes and only marginally induces the antioxidant defense.
Insights
Citrinin (CIT) and ochratoxin A (OTA) mycotoxins cause distinct gene expression changes in yeast. CIT induces antioxidant and drug response genes, while OTA affects developmental genes, with combined exposure showing additive effects.
Area of Science:
- Mycology
- Toxicology
- Genomics
Background:
- Citrinin (CIT) and ochratoxin A (OTA) are prevalent mycotoxins often found together in food.
- Assessing their individual and combined toxicological impact is crucial for food safety.
Purpose of the Study:
- To investigate the distinct and combined biological effects of CIT and OTA using yeast models.
- To understand the toxicological threat posed by these co-contaminating mycotoxins.
Main Methods:
- Genome-wide transcription profiling in yeast, including a Pdr5 deletion mutant.
- Utilized specific live cell gene expression reporters and stress-specific mutants.
- Acute exposure to CIT, OTA, or a combination of both mycotoxins.
Main Results:
- CIT and OTA activate largely non-overlapping gene sets, indicating divergent biological effects.
- CIT primarily induces antioxidant and drug extrusion genes, while OTA impacts yeast developmental and sporulation genes.
- Combined CIT/OTA exposure resulted in a genomic response that integrated the individual effects of each mycotoxin.
Conclusions:
- CIT exposure triggers significant oxidative stress and a robust antioxidant and drug extrusion response.
- OTA primarily deregulates developmental pathways with minimal impact on antioxidant defense.
- Yeast models effectively differentiate the distinct cellular responses to CIT and OTA.

