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Naziri, H.

Publications and source records attributed to Naziri, H..

2 recordsLinked to original sources

Astrocyte-derived extracellular vesicles as antigen-specific therapy for neuromyelitis optica spectrum disorder in the mouse model

Neuromyelitis optica spectrum disorder (NMOSD) is an autoimmune inflammatory disease of the central nervous system (CNS), characterized by Th17 cell responses and serum antibodies against the water channel aquaporin-4 (AQP4) on astrocytes. To avoid systemic immunosuppression by current therapies, an approach is to induce antigen (Ag)-specific tolerance by injecting an AQP4 epitope used to trigger the disease (e.g., AQP4201-220). The prerequisite for Ag-specific therapy is identification of the target Ag; however, dozens of epitopes of AQP4 and certain non-AQP4 astrocyte Ags have been identified as auto-Ags in NMOSD patients and in animal models. This uncertainty regarding relevant astrocyte Ags would hinder the translation of this and similar experimental strategies into Ag-specific therapy for NMOSD patients. In our study, we developed a therapeutic approach for an experimental NMOSD (eNMOSD) mouse model that relies on astrocyte-derived extracellular vesicles (AST-EVs), which theoretically contain all astrocyte Ags. Intravenous injection of AST-EVs mitigates disease progression in an AQP-4 Ag-dependent manner in the eNMOSD model with ongoing disease. AST-EVs suppressed inflammation by decreasing immune cell infiltration of the CNS, inducing T cell apoptosis, and increasing the frequency of regulatory T cells and IL-35-producing B cells. Furthermore, we defined that IFN-{gamma} is crucial for successful i.v. tolerance induction by AST-EVs in eNMOSD. These novel findings represent a pioneering and considerable step toward a new therapeutic approach for NMOSD.

immunology↗

GM-CSF production by immune cells in steady state and autoimmune neuroinflammation mapped using fate reporting mice

The full GM-CSF expression spectrum in immune cells remains unclear, while CD4{square} T cells are the primary source. Using novel GM-CSF reporter/fate reporter transgenic mice, we tracked ongoing and past (YFP+) GM-CSF expression in various immune cells. GM-CSF was produced by diverse immune cells, including CD4+, CD8+, {gamma}{delta} T, NK, B, and CD11b+ cells, with expression patterns varying by cell type and organ with liver CD4+ T cells and NK cells showing the highest expression history in both naive and mice with EAE. GM-CSF expression was transient and permanently lost in most cells over time. In a mouse model of multiple sclerosis, effector memory CD4{square} T cells were the dominant CNS GM-CSF source, with higher expression than in other organs. CD4+YFP+ T cells, strongly expressing CXCR6, produced multiple cytokines. Transcriptomic analysis showed distinct gene expression profiles in effector memory CD4+ T cells compared to naive cells. YFP{square} Tregs represent functionally distinct subsets mirroring effector Th cells, expressing cytokines associated with Th lineages, especially during neuroinflammation. These findings identified distinct GM-CSF cellular sources across organs, highlighting a transient tissue microenvironment influence on GM-CSF production linked to CXCR6 expression.

immunology↗