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Geginat, J.

Publications and source records attributed to Geginat, J..

3 recordsLinked to original sources

Brain infiltrating T cells mediate microglial dysregulation and neuronal loss following SAH

The contribution of T cells to neuroinflammation after aneurysmal subarachnoid hemorrhage (SAH) remains poorly understood. Using a murine pre-chiasmatic injection model of SAH we demonstrate that T cell infiltration into the brain modulates microglial activation and promotes neuronal death. Targeted transcriptomic profiling revealed a sustained neuroimmune response at 7 days post injury (dpi) characterized by a major involvement of T cells and microglia activation. Immunohistochemistry confirmed focal CD3+ T cell infiltration, predominantly CD4+, in the brain at the site of blood injection (BI), choroid plexus and meninges in SAH mice at 3- and 7-dpi. This temporal pattern was also observed in the CSF of a human SAH cohort. T cell presence spatially correlated with regions of microglial reactivity and neuronal loss. Notably, CD3-knockout mice exhibited reduced microglial activation and preserved neuronal viability. These findings identify T cells as key amplifiers of post-SAH neuroinflammation and neuronal damage. Targeting T cell-microglia crosstalk may represent a novel therapeutic avenue for SAH. Summary statementThis study shows that brain T-cell infiltration after subarachnoid hemorrhage drives microglial activation and neuronal loss in mice, with similar patterns observed in patients. Data indicate T cells as key mediators of post-injury neuroinflammation with therapeutic implications.

neuroscience↗

Autosomal Dominant-Hyper-IgE Syndrome patients contain pre-Th17-cells that are activated by opportunistic pathogens to produce IL-10

BackgroundAutosomal Dominant-Hyper-IgE Syndrome (AD-HIES) is caused by dominant-negative (DN) STAT3 mutations and characterized by high IgE levels, a lack of Th17-cells and recurrent infections with extracellular pathogens. We previously identified an enigmatic population of IL-10 producing CCR6+B-helper T-cells and investigated here their relationship to Th17-cells and STAT3 signalling requirements. MethodsHuman blood lymphocytes were analysed by multiparametric flow cytometry in healthy donors and AD-HIES patients. Analysis was performed by conventional gating or with bioinformatic tools. FACS-purified T-cell subsets were activated in vitro and Th17 differentiation assessed. T-cell antigen specificities were assessed by activation with heat-killed pathogens or antigenic peptide pools. B helper capacities were determined according to antibody secretion in B-T co-cultures by ELISA. ResultsCCR6+Th-cells that lacked subset-defining differentiation markers were mostly non-polarised central memory T-cells (TCM) that produced IL-10 and expressed ROR{gamma}t. They were pre-committed to a Th17 fate, since TCR stimulation in the absence of polarising cytokines induced efficient Th17 differentiation. The latter was promoted by an autocrine loop of STAT3-activating cytokines. CCR6+Th-cells were reduced in patients with DN-STAT3 mutations but contained activated CCR6+TCM that produced IL-10 and responded vigorously to AD-HIES-associated pathogens. These residual CCR6+Th-cells provided B-cell help for IgG and IgE production. ConclusionsTh17 differentiation in AD-HIES patients was not completely impaired but arrested at an intermediate stage of IL-10 producing "pre-Th17"-cells. Surprisingly, DN-STAT3 mutations did not inhibit IL-10 production by CD4+T-cells. Pre-Th17-cells were activated by AD-HIES-associated pathogens and possessed B-helper functions, suggesting that they are not protective but promote aberrant IgE production.

immunology↗

Regulatory T-cells in multiple sclerosis are activated by Epstein-Barr Virus and produce IL-10 in the central nervous system

Regulatory T-cells (Tregs) maintain immune homeostasis, but antigens activating adaptive Tregs in human pathologies are ill-defined. EOMES+type-1 regulatory (Tr1)-like T-cells had a dysregulated homeostasis in multiple sclerosis (MS), which was related to their activation in the central nervous system (CNS). EOMES+Tr1-like cells were enriched and clonally expanded in patients cerebrospinal fluid (CSF) and were the major IL-10-producing T-cell subset in the CNS. Regulatory T-cells from PwMS produced IL-10 and IFN-{gamma} with antigens derived from Epstein-Barr Virus (EBV), but not from myelin. EOMES+Tr1-like cells responded selectively to the latency-associated antigen EBNA1, whereas FOXP3+Tregs and Th1-cells responded also to lytic EBV antigens. EBNA1-specific EOMES+Tr1-like cells were present in patients carrying the HLA-DRB1*15:01 risk allele, were associated with anti-EBNA1 IgG and disappeared upon therapeutic B-cell depletion. IL-10+EOMES+Tr1-like were present in MS brain lesions, and some were in the vicinity of EBV-infected B-cells and CD8+T-cells. Notably, EOMES+Tr1-like cells suppressed CD8+T-cell activation by EBV-infected B-cells. We propose that the insufficient protective functions of Tregs in MS are due to their aberrant anti-viral specificities that promote immune escape of a disease-associated virus.

immunology↗