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Cimermanova, V.

Publications and source records attributed to Cimermanova, V..

2 recordsLinked to original sources

Distinct activation programs in naive and memory CD8 T cells govern stemness and effector persistence of their progeny

Infection- and vaccination-induced memory CD8+ T cells provide protection upon subsequent exposure to cognate antigen through their increased abundance and robust per-cell responses. However, how prior antigen experience alters T-cell activation programs remains poorly understood. We longitudinally profiled gene expression in naive, central memory, and effector memory CD8+ T cells in response to cognate antigen across multiple models of acute infection. Naive T cells engaged TOX- and TCF7-centered programs and generated early stem-like central memory precursors. Their initially slow proliferation was followed by rapid expansion and the production of large numbers of short-lived effector cells. Central memory T cells rapidly triggered effector and proliferation programs while maintaining a smaller self-renewing population. Effector memory T cells expanded poorly and generated almost exclusively effector progeny. Effector progeny derived from both memory subsets survived contraction more efficiently than naive T-cell-derived progeny and established persistent effector memory populations. These data show that prior antigen experience does not simply accelerate CD8+ T-cell activation but redirects cell-intrinsic programs that shape progeny fate and persistence. These distinct programs may reflect adaptation to primary versus repeated antigen exposure and suggest that infection and vaccination history can shape the balance between stem-like memory and persistent effector populations.

immunology↗

IFNG-producing self-reactive CD4+ T cells drive autoimmune adrenalitis in a mouse model of Addison's disease

Autoimmune Addisons disease (AD) is a rare but life-threatening disorder caused by immune-mediated destruction of the adrenal cortex, and progress in therapy has been limited by insufficient mechanistic insight. Here, we establish a model of Experimental Autoimmune Adrenalitis (EAA) that recapitulates key features of AD and reveals sex-dependent differences in disease manifestation within the model. Immunization with peptides derived from the adrenal self-antigen CYP11A1 induces corticosterone insufficiency. We show that autoimmune adrenalitis is driven by IFNG produced by self-reactive CD4 T cells, promoting granulomatous inflammation in the adrenal cortex. Together, these findings identify IFNG as a central effector of autoimmune adrenalitis and suggest that targeting the IFNG pathway may represent a potential therapeutic strategy for AD. SignificanceAddisons disease (AD) is a rare autoimmune disorder that destroys the adrenal cortex, yet its underlying mechanisms remain unknown. We developed a mouse model of Experimental Autoimmune Adrenalitis (EAA) that mirrors the hormonal and immunological features of AD. Our study reveals that IFNG-producing CD4 T cells drive adrenal inflammation and dysfunction, identifying IFNG as a key pathogenic factor and a potential therapeutic target.

immunology↗