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Candida albicans-Induced Epithelial Damage Mediates Translocation through Intestinal Barriers
Stefanie Allert1, Toni M Förster1, Carl-Magnus Svensson2
1Department of Microbial Pathogenicity Mechanisms, Hans-Knöll-Institute, Jena, Germany.
Abstract:
Life-threatening systemic infections often occur due to the translocation of pathogens across the gut barrier and into the bloodstream. While the microbial and host mechanisms permitting bacterial gut translocation are well characterized, these mechanisms are still unclear for fungal pathogens such as Candida albicans, a leading cause of nosocomial fungal bloodstream infections. In this study, we dissected the cellular mechanisms of translocation of C. albicans across intestinal epithelia in vitro and identified fungal genes associated with this process. We show that fungal translocation is a dynamic process initiated by invasion and followed by cellular damage and loss of epithelial integrity. A screen of >2,000 C. albicans deletion mutants identified genes required for cellular damage of and translocation across enterocytes. Correlation analysis suggests that hypha formation, barrier damage above a minimum threshold level, and a decreased epithelial integrity are required for efficient fungal translocation. Translocation occurs predominantly via a transcellular route, which is associated with fungus-induced necrotic epithelial damage, but not apoptotic cell death. The cytolytic peptide toxin of C. albicans, candidalysin, was found to be essential for damage of enterocytes and was a key factor in subsequent fungal translocation, suggesting that transcellular translocation of C. albicans through intestinal layers is mediated by candidalysin. However, fungal invasion and low-level translocation can also occur via non-transcellular routes in a candidalysin-independent manner. This is the first study showing translocation of a human-pathogenic fungus across the intestinal barrier being mediated by a peptide toxin.IMPORTANCECandida albicans, usually a harmless fungus colonizing human mucosae, can cause lethal bloodstream infections when it manages to translocate across the intestinal epithelium. This can result from antibiotic treatment, immune dysfunction, or intestinal damage (e.g., during surgery). However, fungal processes may also contribute. In this study, we investigated the translocation process of C. albicans using in vitro cell culture models. Translocation occurs as a stepwise process starting with invasion, followed by epithelial damage and loss of epithelial integrity. The ability to secrete candidalysin, a peptide toxin deriving from the hyphal protein Ece1, is key: C. albicans hyphae, secreting candidalysin, take advantage of a necrotic weakened epithelium to translocate through the intestinal layer.
Insights
Candida albicans translocation across the gut barrier is driven by its toxin, candidalysin, causing epithelial damage and enabling bloodstream infections. This study reveals candidalysin
Area of Science:
- Microbiology and Immunology
- Infectious Diseases
- Cell Biology
Background:
- Systemic infections can arise from pathogen translocation across the gut barrier.
- Mechanisms of bacterial gut translocation are known, but fungal translocation, particularly by Candida albicans, remains unclear.
- Candida albicans is a major cause of hospital-acquired fungal bloodstream infections.
Purpose of the Study:
- To investigate the cellular mechanisms of Candida albicans translocation across intestinal epithelia.
- To identify fungal genes involved in the translocation process.
- To elucidate the role of candidalysin in fungal translocation and epithelial damage.
Main Methods:
- Utilized in vitro intestinal epithelial cell culture models.
- Performed a large-scale screen of over 2,000 Candida albicans deletion mutants.
- Analyzed gene requirements for enterocyte damage and translocation, and correlated findings with hypha formation and epithelial integrity.
Main Results:
- Fungal translocation is a dynamic process involving invasion, epithelial damage, and loss of barrier integrity.
- Identified specific Candida albicans genes essential for enterocyte damage and translocation.
- Demonstrated that candidalysin, a peptide toxin, is crucial for enterocyte damage and transcellular translocation, though non-transcellular routes exist independently of candidalysin.
Conclusions:
- Candida albicans translocation across the intestinal barrier is primarily mediated by the peptide toxin candidalysin, which causes necrotic epithelial damage.
- Hypha formation and significant epithelial barrier damage are required for efficient fungal translocation.
- This study is the first to show a human-pathogenic fungus utilizing a peptide toxin for translocation across the intestinal barrier.
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