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Navarro-Oviedo, M.

Publications and source records attributed to Navarro-Oviedo, M..

2 recordsLinked to original sources

Does Infarct Size Influence Gut Barrier Integrity and Bacterial Translocation after Experimental Stroke?

BackgroundIschemic stroke (IS) triggers brain injury and systemic changes, including gut dysbiosis, intestinal barrier dysfunction (IBD), and bacterial translocation (BT). Although larger infarcts are associated with higher infection risk, it is unclear whether lesion size directly influences gut barrier integrity or bacterial dissemination. MethodsMale C57BL/6 mice underwent permanent middle cerebral artery occlusion (MCAO) proximally or distally to generate large or small infarcts. Seventy-two hours post-ischemia, infarct volume was measured by MRI, and BT was assessed in mesenteric lymph nodes, liver, spleen, and lungs. ZO-1 and MMP9 expression were used to evaluate intestinal barrier integrity. Peripheral and central inflammation were assessed by flow cytometry and immunofluorescence. ResultsProximal MCAO produced larger infarcts than distal MCAO. The proportion of animals exhibiting BT was lower in distal MCAO, but this difference was not statistically significant. ZO-1 expression did not differ between groups, while MMP9 was increased only in animals with BT, independent of infarct size. BT was associated with more pronounced lymphopenia and enhanced microglial activation and T-cell infiltration in the brain. The composition of translocated bacteria was similar across groups. ConclusionsInfarct size alone does not determine IBD or BT, although BT is linked to intestinal and cerebral inflammation. This study evaluates for the first time the effect of lesion magnitude on IBD and BT, highlighting the complex interplay between cerebral injury and gut-systemic interactions.

neuroscience↗

Sub-strain-Dependent Differences in Gut Barrier Permeability, Bacterial Translocation and Post-Stroke Inflammation in Wistar Rats

BackgroundStroke induces profound neuroinflammation and systemic immune dysregulation, including disturbances in gut homeostasis. Experimental evidence suggests that intestinal barrier permeability (IBP) and bacterial translocation (BT) critically influence stroke outcomes. However, biological variability among commonly used rodent sub-strains has received limited attention. MethodsIn this pilot study, we compared post-stroke immune responses in two Wistar rat sub-strains obtained from different suppliers: RccHan (Envigo) and RjHan (Janvier). Following transient middle cerebral artery occlusion, animals were assessed 72 hours later and stratified according to the presence or absence of BT. Immune cell populations in blood and bone marrow were analyzed by flow cytometry, and leukocyte infiltration into ischemic brain tissue was quantified by immunohistochemistry. ResultsBoth sub-strains developed significant infarcts and neurological deficits. RccHan rats displayed larger infarct volumes and more extensive BT across multiple organs. In contrast, RjHan rats exhibited BT mainly confined to mesenteric lymph nodes but showed greater IBP. Although dissemination was broader in RccHan rats, overall bacterial burden was slightly lower compared with RjHan, and extra-intestinal bacterial composition differed between groups. Notably, RjHan rats presented stronger systemic and central immune activation, with marked alterations in lymphocyte and monocyte populations and enhanced granulocyte and T cell infiltration within ischemic lesions. ConclusionsThese findings demonstrate that sub-strain origin profoundly influences post-stroke intestinal barrier integrity, bacterial dissemination, and immune responses. Considering sub-strain-related variability is essential to improve reproducibility and translational relevance in preclinical stroke research.

neuroscience↗