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Quintanilla, D.

Publications and source records attributed to Quintanilla, D..

3 recordsLinked to original sources

Diabetes and Immunosuppression Drive Distinct Patterns of Candidozyma auris Skin Colonization and Dissemination in Mice

Candidozyma auris is an emerging, multidrug-resistant (MDR) fungal pathogen that persistently colonizes human skin and disproportionately causes invasive infections in patients with metabolic or immune dysfunction. Despite strong epidemiological links to diabetes and immunosuppression, how these host conditions shape skin colonization, immune defense, and dissemination remain poorly defined. Here, we establish complementary murine model of C. auris skin colonization under immunocompetent, immunosuppressed, and diabetic ketoacidosis (DKA) conditions. DKA mice exhibited significantly increased skin fungal burden, impaired clearance, and frequent systemic dissemination. Notably, DKA permitted dissemination despite preserved granulocyte and neutrophil recruitment to the skin, indicating a functional rather than quantitative defect in innate immunity. Consistent with this, phagocytes from DKA mice displayed impaired antifungal activity characterized by reduced phagocytosis and killing despite elevated reactive oxygen species production. Hyperglycemic and ketone-rich conditions (BHB) remodel the C. auris cell wall, reducing mannan, increasing chitin, and upregulating adhesins, thereby enhancing adhesion and inflammatory activation while impairing neutrophil killing. Together, these findings reveal host metabolic dysfunction as a primary driver of persistent C. auris skin colonization and dissemination, identify qualitative defects in innate antifungal immunity as a key determinant of invasive risk and highlight metabolic condition as a critical target for infection prevention strategies. Short SummaryThis study establishes the first physiologically relevant murine model of Candidozyma auris skin colonization under diabetic ketoacidosis and immunosuppression, revealing distinct immune dysfunction and systemic dissemination that can inform targeted antifungal strategies.

microbiology↗

Metabolic imprinting drives epithelial memory during mucosal fungal infection

Epithelial cells at barrier sites are emerging as active participants in innate immune memory, yet the underlying metabolic and epigenetic mechanisms remain unclear. Here, we uncover a previously unrecognized form of trained immunity in oral epithelial cells that enhances protection against fungal infection. Using a mouse model, we show that mucosal exposure to Candida albicans confers sustained protective memory that is independent of adaptive immunity and myeloid cells. Mechanistically, mucosal memory is driven by proline catabolism via proline dehydrogenase (Prodh) in epithelial cells, which sustains mitochondrial function, epigenetic remodeling, and promotes cytokine production upon secondary challenge. Unlike classical trained immunity in immune cells, epithelial memory is independent of glycolysis but partially sustained by fatty acid oxidation via carnitine palmitoyltransferase-I (CPT1). These findings uncover a distinct metabolic-epigenetic axis that underlines long-term epithelial memory in the oral mucosa and reveal novel non-hematopoietic mechanisms of mucosal defense against fungal pathogens.

immunology↗

Candida auris skin colonization is mediated by Als4112 and interactions with host extracellular matrix proteins

Candida auris is an often multidrug-resistant fungal pathogen notorious for persistent skin colonization and transmission in healthcare settings. However, the mechanisms driving its adherence to skin remain poorly understood. Here, we developed in vitro systems to allow for detailed analysis of early skin colonization events and identified critical host and pathogen mediators of attachment. Across multiple strains and clades of C. auris, we identified that Als4112, a conserved adhesin, is required for skin colonization via keratinocyte attachment and direct interactions with host extracellular matrix (ECM) proteins, especially basement membrane proteins such as laminin. In a murine epicutaneous infection and human skin explants, deletion of ALS4112 significantly reduced skin colonization, underscoring its essential role in establishing cutaneous persistence. Als4112 also contributes to systemic infection, highlighting the connection between adherence and pathogenicity in this organism. Finally, coating plastic and catheter surfaces with collagen I or III markedly inhibited C. auris attachment and biofilm formation, offering an approach to curb nosocomial transmission. Our study highlights the critical role of Als4112 in C. auris colonization and virulence in vivo, making it an attractive target for future vaccine development. This study also explores the potential of specific collagen coatings as a novel strategy to prevent C. auris adherence to abiotic surfaces, offering new therapeutic avenues to control the spread of C. auris in healthcare settings.

microbiology↗