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.