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Luka, N.

Publications and source records attributed to Luka, N..

2 recordsLinked to original sources

Specific deletion of interleukin-1 beta in microglia improves acute outcome and modulates neurogenesis after ischemic stroke

Interleukin-1 (IL-1) signaling is a major driver of post-ischemic neuroinflammation, yet the cell- and isoform-specific roles of the two major IL-1 receptor type 1 agonists, IL-1 and IL-1{beta}, remain incompletely defined in the context of stroke. Microglia rapidly express IL-1 after cerebral ischemia, whereas IL-1{beta} expression is delayed and restricted to a small subset of microglia and infiltrating immune cells. Here, we investigated for the first time the specific contribution of microglial-derived IL-1{beta} to acute injury and post-stroke neurorepair after transient middle cerebral artery occlusion in male and female mice, through microglial-specific tamoxifen-inducible Cre-loxP-mediated recombination. Deletion of microglial IL-1{beta} improved acute neurological outcome, reduced neutrophil accumulation in the ischemic brain and dampened systemic inflammatory cytokines. These effects were most evident during the acute phase and in female in mice. In contrast, long-term functional recovery was largely unaffected. However, microglial IL-1{beta} deletion differentially regulated post-stroke neurogenesis, enhancing subventricular zone neurogenic responses and ectopic neuroblast migration while limiting hippocampal neurogenesis. Together, these findings identify microglial IL-1{beta} as a key amplifier of early inflammatory injury after stroke, exerting region-specific effects on neurogenic niches, and highlight distinct, non-redundant roles for microglial IL-1 isoforms in ischemic brain injury and repair.

neuroscience↗

25-hydroxycholesterol dysregulates brain endothelial cell function and exacerbates cerebral haemorrhage

The antiviral enzyme cholesterol 25-hydroxylase (CH25H) and its metabolite 25-hydroxycholesterol (25HC), which modulates cholesterol metabolism during infection, have been previously associated with vascular pathology. Viral infections have been linked to risk of intracerebral haemorrhage (ICH) but the molecular mechanisms leading to brain vessel rupture via antiviral responses remain unknown. We hypothesised that the CH25H/25HC pathway may impact neuroendothelial integrity in the context of infection-associated ICH. Here, using a SARS-CoV-2-spike-induced zebrafish ICH model and foetal human SARS-CoV-2-associated cortical tissue containing microbleeds, we identified an upregulation of CH25H in infection-associated cerebral haemorrhage. Using zebrafish ICH models and human brain endothelial cells, we asked whether 25HC may promote neurovascular dysfunction by modulating cholesterol metabolism. We found that 25HC and pharmacological inhibition of HMGCR by atorvastatin interacted to exacerbate brain bleeding in zebrafish larvae and in vitro brain endothelial dysfunction. In vitro 25HC-induced dysfunction was also rescued by cholesterol supplementation. These results demonstrate that the antiviral factor 25HC can dysregulate brain endothelial function by remodelling cholesterol metabolism. We propose that the CH25H/25HC pathway represents an important component in the pathophysiology of brain vessel dysfunction associated with infection and cholesterol dysregulation in the context of ICH. Summary StatementThe antiviral metabolite 25-hydroxycholesterol dysregulates brain endothelial function by remodelling cholesterol metabolism, thereby providing a mechanistic link between viral infection and brain endothelial dysfunction in conditions such as intracerebral haemorrhage.

neuroscience↗