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Bastarache, J. A.

Publications and source records attributed to Bastarache, J. A..

3 recordsLinked to original sources

Candida albicans activates Staphylococcus aureus virulence regulatory systems to drive toxin-mediated human cell death

Co-infection with Staphylococcus aureus and Candida albicans leads to worsened disease severity compared to mono-microbial infection. Because our understanding of the mechanisms driving enhanced disease severity during co-infection is limited, we sought to evaluate how interactions with C. albicans regulate S. aureus virulence towards host cells. We determined that C. albicans enhances S. aureus cytotoxicity towards murine monocytes via a mechanism requiring the Agr system. Agr is a major regulator of S. aureus virulence factors and was previously shown to be activated by C. albicans, but the Agr-regulated virulence factors driving immune cell death are unknown. We identified that enhanced murine monocyte cell death requires the -type phenol soluble modulins and {psi}-hemolysin. Because several S. aureus toxins have species-specific effects, we also tested how co-culture impacts cytotoxicity towards human monocytes. Unexpectedly, we discovered that C. albicans induces robust cytotoxicity of an S. aureus agr mutant ({Delta}agr), which is completely non-toxic towards murine monocytes. Using reporter strains and combinatorial mutants, we identified that co-culture activates the SaeRS regulatory system in S. aureus, and SaeRS is required for human-specific cytotoxicity. We further discovered that the SaeRS-regulated toxin Panton-Valentine Leukocidin (PVL) drives S. aureus {Delta}agr cytotoxicity following co-culture. Finally, we observed similar cytotoxicity phenotypes using both S. aureus and C. albicans clinical isolates, demonstrating broad conservation of this interaction. Interestingly, the magnitude by which C. albicans isolates induce cytotoxicity of S. aureus {Delta}agr varies among strains tested. Overall, this study identifies that C. albicans activates a major S. aureus virulence regulatory system in a typically non-toxic strain, triggering S. aureus to induce potent human-selective cell death.

microbiology↗

Advanced Age in Mice Exacerbates Sepsis-Induced Inflammation, Vascular Permeability, and Multi-Organ Dysfunction

Sepsis is a life-threatening syndrome marked by a dysregulated immune response to an infection and significant endothelial vascular permeability, often leading to multi-organ failure. Elderly patients are particularly vulnerable to sepsis, with higher morbidity and mortality rates. We hypothesized that advanced age exacerbates sepsis-induced inflammation and endothelial vascular permeability, resulting in a delayed recovery, persistent inflammation, and sustained organ injury. Using a polymicrobial sepsis model in young (3-month-old) and aged (18-month-old) C57BL/6 mice, sepsis was induced via intraperitoneal cecal slurry (CS) injection. Outcomes were assessed during the acute (24-hour; 1.6mg/g CS) and recovery (8-day; 1.0 mg/g CS) phases. During the acute phase, aged mice exhibited worse physiologic dysfunction, higher systemic (plasma TNF-a: young septic 202.1 pg/mL [17.44, 398.9] vs. aged septic 482.6 pg/mL [279.8, 711.7]; p = 0.0352 Mann-Whitney) and organ-specific inflammation, increased endothelial injury and vascular permeability, as well as greater kidney and liver dysfunction compared to young mice. During recovery, aged mice had sustained physiologic dysfunction, prolonged systemic and organ-specific inflammation, and sustained organ injury (kidney tissue NGAL: young septic 291.5 RE [203.7, 373.2] vs. aged septic 821 RE [456, 1258] protein normalized to beta actin; p = 0.0008 Mann-Whitney) compared to young mice. These results support the hypothesis that advanced age worsens sepsis severity and outcomes and delays recovery, emphasizing the need for aged models and multi-organ evaluations to develop effective therapies for this vulnerable population.

physiology↗

Metabolic Adaptations Rewire CD4 T Cells in a Subset-Specific Manner in Human Critical Illness with and without Sepsis

Host immunity in sepsis has features of hyperinflammation together with progressive immunosuppression, particularly among CD4 T cells, that can predispose to secondary infections and ineffectual organ recovery. Metabolic and immunologic dysfunction are archetypal findings in critically ill patients with sepsis, but whether these factors are mechanistically linked remains incompletely defined. We characterized functional metabolic properties of human CD4 T cells from critically ill patients with and without sepsis and healthy adults. CD4 T cells in critical illness showed increased subset-specific metabolic plasticity, with regulatory T cells (Tregs) acquiring glycolytic capacity that stabilized suppressive markers FOXP3 and TIGIT and correlated with clinical illness severity. Single-cell transcriptomics identified differential kynurenine metabolism in Tregs, which was validated ex vivo as a mechanism of Treg glycolytic adaptation and suppressive rewiring. These findings underscore immunometabolic dysfunction as a driver of CD4 T cell remodeling in sepsis and suggest therapeutic avenues to restore an effective immune response.

immunology↗