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Biology subjects

Bataclan, M.

Publications and source records attributed to Bataclan, M..

2 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↗

Crosstalk between the RNA-binding proteins Regnase-1 and -3 shapes mast cell survival and cytokine expression

Post-transcriptional regulation of immune-related transcripts by RNA-binding proteins (RBPs) impacts immune cell responses, including mast cell functionality. Despite their importance in immune regulation, the functional role of most RBPs remains to be understood. By manipulating the expression of specific RBPs in mast cells, coupled with mass spectrometry and transcriptomic analyses, we found that the Regnase family of proteins acts as a potent regulator of mast cell physiology. Specifically, Regnase-1 is required to maintain basic cell proliferation and survival, while both Regnase-1 and -3 cooperatively regulate the expression of inflammatory transcripts upon mast cell activation, with Tnf being a primary target of both proteins. In mast cells, Regnase-3 directly interacts with Regnase-1 and is necessary to restrain Regnase-1 expression through the destabilization of its transcript. Overall, our study identifies protein interactors of endogenously expressed Regnase factors, characterizes the regulatory interplay between Regnase family members in mast cells, and establishes their role in the control of mast cell homeostasis and inflammatory responses.

immunology↗