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Microbiome-mycotoxin interactions and probiotic strategies: implications for gut health and cancer
Alice N Mafe1, Dietrich Büsselberg2
1Faculty of Sciences, Department of Biological Sciences, Taraba State University, Jalingo, Nigeria.
Abstract:
This structured, hypothesis-driven narrative review examines how mycotoxins, pervasive food contaminants, disrupt intestinal microbial balance, epithelial barrier integrity, xenobiotic metabolism, and carcinogenic signaling. Emerging evidence indicates that bidirectional interactions between the gut microbiome and mycotoxins modulate these effects, with microbial detoxification enzymes influencing toxin metabolism, immune responses, and epithelial resilience. However, the mechanistic understanding of microbiome-mycotoxin interplay remains incomplete, particularly regarding enzymatic pathways, microbial metabolites, and cancer-associated signaling. This review synthesizes recent (2016-2025) mechanistic studies on gut microbiota-mediated mycotoxin biotransformation, enzymatic detoxification, and probiotic interventions as strategies to mitigate mycotoxin-induced gut and cancer-related damage, focusing on key dietary toxins such as aflatoxin B₁, deoxynivalenol, zearalenone, ochratoxin A, fumonisins, and patulin. Evidence indicates that microbial enzymes, including de-epoxidases, lactonases, and reductases, contribute to mycotoxin biotransformation, while probiotics can enhance epithelial barrier function, restore microbial ecosystem balance, and modulate immune responses through toxin binding, competitive exclusion, and anti-inflammatory actions. The review further highlights the strain-specific nature of detoxification, the impact of mycotoxin-induced dysbiosis on short-chain fatty acid production and inflammation, and the modulation of cancer-related pathways including NF-κB, STAT3, and IL-6. Finally, it provides an integrated framework linking microbial mechanisms, bioactive microorganisms, and regulatory considerations, identifies critical knowledge gaps, and outlines mechanistically informed probiotic strategies for mitigating mycotoxin exposure and its associated health risks.
Insights
Mycotoxins disrupt gut health and promote cancer. The gut microbiome can detoxify these toxins, and probiotics offer a promising strategy to mitigate mycotoxin-induced damage.
Area of Science:
- Microbiology
- Toxicology
- Gastroenterology
Background:
- Mycotoxins are common food contaminants with detrimental effects on gut health.
- Gut microbiome interactions with mycotoxins influence detoxification, immunity, and barrier function.
- Mechanistic understanding of these interactions, especially concerning cancer signaling, is incomplete.
Purpose of the Study:
- To review recent mechanistic studies (2016-2025) on gut microbiota-mediated mycotoxin biotransformation.
- To explore enzymatic detoxification pathways and probiotic interventions for mitigating mycotoxin-induced damage.
- To provide a framework for understanding microbiome-mycotoxin interplay in gut health and cancer.
Main Methods:
- Narrative review of mechanistic studies focusing on mycotoxin biotransformation by gut microbiota.
- Analysis of enzymatic detoxification pathways (de-epoxidases, lactonases, reductases).
- Evaluation of probiotic strategies including toxin binding, competitive exclusion, and immune modulation.
Main Results:
- Microbial enzymes significantly contribute to mycotoxin biotransformation.
- Probiotics enhance gut barrier function, restore microbial balance, and reduce inflammation.
- Mycotoxin-induced dysbiosis impacts short-chain fatty acid production and cancer-related signaling pathways (NF-κB, STAT3, IL-6).
Conclusions:
- Gut microbiota plays a crucial role in mitigating mycotoxin toxicity.
- Probiotic interventions show potential for reducing mycotoxin-associated gut and cancer risks.
- Further research is needed to elucidate strain-specific detoxification and optimize probiotic strategies.
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