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Published on: November 6, 2020
Antifungal Treatment Aggravates Sepsis through the Elimination of Intestinal Fungi
Baifa Sheng1,2, Yihui Chen1,3, Lihua Sun1
1Department of General Surgery, Xinqiao Hospital, Army Medical University, Chongqing 400037, China.
Abstract:
Prophylactic antifungal therapy is widely adopted clinically for critical patients and effective in reducing the morbidity of invasive fungal infection and improves outcomes of those diagnosed patients; however, it is not associated with higher overall survival. As intestinal commensal fungi play a fundamental role in the host immune response in health and disease, we propose that antifungal therapy may eliminate intestinal fungi and aggravate another critical syndrome, sepsis. Here, with murine sepsis model, we found that antifungal therapy with fluconazole dismissed intestinal fungal burden and aggravated endotoxin-induced but no gram-positive bacteria-induced sepsis. Nevertheless, antifungal therapy did not exert its detrimental effect on germ-free mice. Moreover, colonizing more commensal fungi in the mouse intestine or administration of fungal cell wall component mannan protected the mice from endotoxin-induced sepsis. On the molecular level, we demonstrated that antifungal therapy aggravated endotoxin sepsis through promoting Gasdermin D cleavage in the distal small intestine. Intestinal colonization with commensal fungi inhibited Gasdermin D cleavage in response to lipopolysaccharide challenge. These findings show that intestinal fungi inhibit Gasdermin D-mediated pyroptosis and protect the mice from endotoxin-induced sepsis. This study demonstrates the protective role of intestinal fungi in the pathogenesis of endotoxin-induced sepsis in the laboratory. It will undoubtedly prompt us to study the relationship between antifungal therapy and sepsis in critical patients who are susceptible to endotoxin-induced sepsis in the future.
Insights
Antifungal therapy may worsen sepsis by eliminating gut fungi, which normally protect against endotoxin-induced sepsis. Restoring gut fungi or using mannan protects mice from sepsis.
Area of Science:
- Microbiology
- Immunology
- Critical Care Medicine
Background:
- Prophylactic antifungal therapy is common in critically ill patients, reducing fungal infections but not improving overall survival.
- Intestinal commensal fungi influence host immune responses, suggesting a potential link between antifungal use and other critical conditions like sepsis.
Purpose of the Study:
- To investigate whether antifungal therapy exacerbates sepsis by affecting the intestinal mycobiome.
- To explore the protective role of intestinal fungi against endotoxin-induced sepsis.
Main Methods:
- A murine model of sepsis was used to assess the effects of fluconazole (antifungal therapy).
- Experiments included germ-free mice, colonization with commensal fungi, and administration of fungal cell wall component mannan.
- Molecular mechanisms involving Gasdermin D cleavage and pyroptosis were examined.
Main Results:
- Antifungal therapy reduced intestinal fungal burden and aggravated endotoxin-induced sepsis, but not sepsis from Gram-positive bacteria.
- This detrimental effect was not observed in germ-free mice.
- Fungal colonization or mannan administration protected against endotoxin-induced sepsis.
- Antifungal therapy promoted Gasdermin D cleavage in the small intestine, while fungal colonization inhibited it.
Conclusions:
- Intestinal fungi play a protective role against endotoxin-induced sepsis by inhibiting Gasdermin D-mediated pyroptosis.
- Antifungal therapy may worsen sepsis in susceptible patients by disrupting this protective mechanism.
- Further research is warranted to explore the clinical implications in critically ill patients.
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