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Garcia-Culebras, A.

Publications and source records attributed to Garcia-Culebras, A..

2 recordsLinked to original sources

CIRCADIAN MODULATION OF NEUTROPHIL FUNCTION DETERMINES COLLATERAL PERFUSION AND OUTCOME AFTER ISCHEMIC STROKE

Stroke is a leading cause of mortality and disability, driven by complex and time-dependent mechanisms that aggravate ischemic damage. Among them, collateral perfusion determines the initial size of the ischemic core, the rate of its expansion, and the extent of the penumbra both at stroke onset and over time. Insufficiency of collaterals may occur due to genetic factors or other determinants, such as aging or cardiovascular risk factors, which reduce the number of collaterals or the diameter of those that remain. But aspects of less structural nature could also affect the effectiveness of these pathways by decreasing their patency. We hereby show that diurnal fluctuations in infarct volume in ischemic stroke mouse models are neutrophil phenotype-dependent, since differences in infarct volumes were abolished by depleting neutrophils or blocking their circadian clock, and linked to the collateral circulation: during the inactive phase of mice (daytime), collateral perfusion in the ipsilesional hemisphere was reduced, coinciding with an increase in intravascular neutrophil accumulation, suggestive of microvascular stalling. Single-cell transcriptomics, ex vivo functional assays and in vivo pharmacological and genetic strategies confirmed enhanced neutrophil extracellular traps (NETs) formation at this time. Importantly, in a cohort of human stroke patients, we identified diurnal oscillations in neutrophil and NET-related biomarkers, peaking during the human inactive phase (evening/night), and similarly associated with reduced collateral flow and poorer clinical outcomes. These findings underscore the critical role of neutrophils, their circadian dynamics and NET release in driving collateral insufficiency and ischemic brain damage, suggesting novel personalized therapeutic strategies based on circadian rhythms for the treatment of stroke.

immunology↗

IPSILESIONAL HIPPOCAMPAL GABA CORRELATES WITH COGNITIVE IMPAIRMENT AND MALADAPTIVE NEUROGENESIS AFTER STROKE IN MICE

BackgroundCognitive dysfunction is a frequent stroke sequela but its pathogenesis and treatment remain unresolved. Involvement of aberrant hippocampal neurogenesis and maladaptive circuitry remodelling has been proposed but their mechanisms are unknown. Our aim was to evaluate potential underlying molecular/cellular events implicated. MethodsStroke was induced by permanent occlusion of the middle cerebral artery (MCAO) in 2-month-old C57BL/6 male mice. Hippocampal metabolites/neurotransmitters were analysed longitudinally by in vivo magnetic resonance spectroscopy (MRS). Cognitive function was evaluated with the contextual fear conditioning test. Microglia, astrocytes, neuroblasts and interneurons were analysed by immunofluorescence. ResultsApproximately 50% of mice exhibited progressive post-MCAO cognitive impairment. Notably, immature hippocampal neurons in the impaired group displayed more severe aberrant phenotypes than those from the non-impaired group. Using MRS, significant bilateral changes in hippocampal metabolites such as myo-Inositol (mIns) or N-acetylaspartic acid (NAA) were found that correlated, respectively, with numbers of glia and immature neuroblasts in the ischemic group. Importantly, some metabolites were specifically altered in the ipsilateral hippocampus suggesting its involvement in aberrant neurogenesis and remodelling processes. Specifically, MCAO animals with higher hippocampal GABA levels displayed worse cognitive outcome. Implication of GABA in this setting was supported by the amelioration of ischemia-induced memory deficits and aberrant hippocampal neurogenesis after blocking pharmacologically GABAergic neurotransmission. These data suggest that GABA exerts its detrimental effect, at least partly, by affecting morphology and integration of newborn neurons into the hippocampal circuits. ConclusionsHippocampal GABAergic neurotransmission could be considered a novel diagnostic and therapeutic target for post-stroke cognitive impairment.

animal behavior and cognition↗