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Effects of global Ripk2 genetic deficiency in aged mice following experimental ischemic stroke
John Aaron Howell1,2, Jonathan Larochelle1,2, Rachel E Gunraj1,2
1University of Florida, Department of Neuroscience, United States.
Abstract:
Besides the loss of blood and oxygen reaching the ischemic tissue, many secondary effects of ischemic stroke can cause additional tissue damage, including inflammation, oxidative stress, and proteomic disturbances. Receptor-interacting serine/threonine kinase 2 (RIPK2) is an important mediator in the post-stroke inflammatory cascade that responds to signals and molecular patterns released by dead or dying cells in the ischemic area. We hypothesize that RIPK2 signaling worsens injury and neurological recovery post-stroke and that global deletion of Ripk2 is protective following ischemic stroke in aged mice. Aged (18-24 months) male mice were subjected to permanent middle cerebral artery occlusion (pMCAO). Vertical grid, weight grip, and open field were conducted at baseline and on days 1, 2, 3, 8, 15, and 22 post-stroke. Cognitive tests (novel object recognition and Y-maze) were performed at baseline and day 28 post-stroke. Infarct size was measured using cresyl violet staining, and reactive gliosis was measured using Iba1 and GFAP staining at day 28 post-stroke. Global deletion of Ripk2 (Ripk2-/- ) in aged mice resulted in smaller infarct volume and improved performance on vertical grid and weight grip tests compared to aged wildtype (WT) mice. Additionally, aged Ripk2 -/- mice had less Iba1 staining in the ipsilateral cortex than the aged WT control mice. This study further elucidates the role of RIPK2 signaling in the ischemic cascade and expands our knowledge of RIPK2 in stroke to aged mice. These results support the hypothesis that RIPK2 signaling worsens injury post-stroke and may be an attractive candidate for therapeutic intervention.
Insights
Deleting Receptor-interacting serine/threonine kinase 2 (RIPK2) in aged mice reduced stroke-induced brain damage and improved motor function. This suggests RIPK2 signaling exacerbates ischemic injury and may be a therapeutic target for stroke recovery.
Area of Science:
- Neuroscience
- Immunology
- Molecular Biology
Background:
- Ischemic stroke causes secondary damage via inflammation, oxidative stress, and proteomic changes.
- Receptor-interacting serine/threonine kinase 2 (RIPK2) mediates inflammatory responses to cell death in the ischemic area.
- RIPK2 signaling is implicated in post-stroke injury and neurological recovery.
Purpose of the Study:
- To investigate the role of RIPK2 signaling in ischemic stroke injury and neurological recovery in aged mice.
- To test the hypothesis that global deletion of Ripk2 is protective following ischemic stroke in aged mice.
Main Methods:
- Aged male mice underwent permanent middle cerebral artery occlusion (pMCAO).
- Behavioral tests (vertical grid, weight grip, open field, novel object recognition, Y-maze) assessed neurological function.
- Infarct volume and reactive gliosis (Iba1, GFAP staining) were quantified post-stroke.
Main Results:
- Global Ripk2 deletion in aged mice led to smaller infarct volumes compared to wildtype (WT) mice.
- Aged Ripk2 knockout mice showed improved performance in vertical grid and weight grip tests.
- Less Iba1 staining (indicating reduced microglial activation) was observed in the ipsilateral cortex of aged Ripk2 knockout mice.
Conclusions:
- RIPK2 signaling exacerbates injury and impairs neurological recovery following ischemic stroke in aged mice.
- Global deletion of Ripk2 demonstrates a protective effect in aged mice post-stroke.
- RIPK2 represents a potential therapeutic target for mitigating stroke-related damage and improving recovery.
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