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Biology subjects

Sey, E. A.

Publications and source records attributed to Sey, E. A..

3 recordsLinked to original sources

A murine model to study chronic airway fungal colonisation that recapitulates human disease

Aspergillus fumigatus is a ubiquitous environmental mould and a leading cause of chronic fungal-associated respiratory disease, yet the mechanisms by which persistent airway colonisation drives immune adaptation and lung pathology remain poorly understood. Progress in this area has been limited by the lack of in vivo models that recapitulate stable, non-invasive fungal persistence without immunosuppression. Here, we developed and optimised a murine model of chronic airway colonisation using agar bead-embedded A. fumigatus conidia delivered intratracheally. Embedding did not impair fungal germination or hyphal growth, and the agar matrix was immunologically inert, supporting its use as a neutral scaffold. This approach established stable fungal persistence in the airways for at least three weeks in immunocompetent mice without inducing invasive disease or systemic morbidity. Colonisation elicited a transient, airway-restricted innate immune response characterised by early neutrophil and monocyte recruitment and increased CXCL1, MIP-1, MIP-1{beta}, and TNF production, which resolved over time. Histopathological analysis revealed a progressive sequence of disease-relevant features, including initial immune containment, followed by mucus hypersecretion, and airway remodelling. At the adaptive level, persistent colonisation induced a dynamic T cell response that transitioned from an early polyfunctional profile to a sustained Th17-dominant phenotype. Importantly, application of this model in CFTR-deficient mice uncovered enhanced collagen deposition and fibrotic remodelling without altered fungal burden, demonstrating its utility in modelling disease-relevant outcomes in susceptible hosts. Together, this study establishes a robust and physiologically relevant platform for investigating host-fungal interactions during chronic airway colonisation. This model provides new opportunities to dissect mechanisms of immune adaptation, fungal persistence, and tissue remodelling, and to identify therapeutic strategies targeting chronic Aspergillus-associated lung disease.

immunology↗

Clec7a-mediated regulation of Killer-like Lectin Receptor expression controls T cell immunity

Clec7a is a C-type lectin receptor (CLR) originally defined for its non-redundant role in anti-fungal immunity. Subsequent work has broadened this view, implicating Clec7a in host defense against diverse pathogens and in the pathogenesis of cancer, autoimmunity, neuroinflammation, and developmental disorders. How a single innate receptor orchestrates such wide-ranging outcomes remains unresolved. We previously demonstrated that dendritic cell (DC)-expressed Clec7a is required for protective anti-fungal immunity in the gastrointestinal tract through regulation of fungus-specific CD4 T cell responses. Here, we show that Clec7a controls the expression of multiple C-type lectins in DCs, including a cluster of killer lectin-like receptors (KLRs). Notably, we reveal that these KLRs directly regulate DC function and control CD4 T cell responses. These findings define a novel Clec7a-KLR axis that integrates innate and adaptive immunity, highlighting a regulatory pathway with broad relevance for immune homeostasis, inflammation, and host defense.

immunology↗

KLRE1 shapes antifungal immunity by tuning dendritic cell and T cell activation through distinct heterodimeric partners

Dendritic cells (DCs) instruct adaptive immunity by integrating inflammatory cues to regulate co-signalling molecules and T cell activation. We recently discovered that the pattern recognition receptor Dectin-1 (Clec7a) controls expression of a network of killer lectin-like receptors (KLRs), including KLRI1 and KLRI2, which regulate adaptive immune responses. Here, we identify KLRE1 as a key regulator of DC phenotype and function, acting through distinct heterodimeric interactions with KLRI1 and KLRI2. KLRE1 is expressed by tissue-resident and bone marrow-derived DCs and is dynamically regulated by inflammatory signals, including fungal stimuli. Mechanistically, KLRE1:KLRI1 heterodimers promote DC activation, increasing CD40, CD80, CD86, and MHC-II, whereas KLRE1:KLRI2 heterodimers restrain activation. Differential regulation of KLRI1 and KLRI2 by inflammatory signals shapes heterodimer availability and immune outcomes under distinct conditions. Functionally, KLRE1 deficiency enhances DC activation and T cell responses in vitro and in vivo during Candida albicans infection. Strikingly, KLRI1- and KLRI2-deficient mice showed opposite survival outcomes during systemic candidiasis, despite similar fungal burdens, implicating KLRE1 heterodimers in disease tolerance rather than pathogen clearance. Protection in KLRI1-deficient mice was associated with a more balanced T cell response, whereas susceptibility to infection associated with KLRI2 deficiency resulted from increased T cell activation and migratory potential, leading to systemic inflammation and renal dysfunction. Thus, KLRE1 heterodimers fine-tune DC-driven T cell immunity, balancing protection and immunopathology during fungal infection.

immunology↗