Effects of Global Ripk2 Genetic Deficiency in Aged Mice following Experimental Ischemic Stroke

John Aaron Howell1,2, Jonathan Larochelle1,2, Rachel E Gunraj1,2

  • 1Department of Neuroscience, University of Florida.

Insights

Deleting Receptor-interacting serine/threonine kinase 2 (RIPK2) in aged mice reduced stroke injury and improved neurological function. This suggests RIPK2 signaling exacerbates damage after ischemic stroke.

Area of Science:

  • Neuroscience
  • Immunology
  • Stroke Research

Background:

  • Ischemic stroke causes tissue death through blood loss, oxygen deprivation, and secondary effects like inflammation and oxidative stress.
  • Receptor-interacting serine/threonine kinase 2 (RIPK2) is implicated in the inflammatory response following stroke, activated by cellular debris.
  • The role of RIPK2 in stroke, particularly in aged populations, requires further investigation.

Purpose of the Study:

  • To test the hypothesis that RIPK2 signaling worsens injury and neurological recovery post-stroke.
  • To investigate the protective effects of global Ripk2 deletion in aged mice subjected to ischemic stroke.

Main Methods:

  • Aged male mice (18-24 months) underwent permanent middle cerebral artery occlusion (pMCAO).
  • Neurological function was assessed using vertical grid, weight grip, open field, novel object recognition, and Y-maze tests.
  • Infarct volume and reactive gliosis (Iba1, GFAP staining) were measured post-stroke.

Main Results:

  • Global Ripk2 deletion in aged mice led to smaller infarct volumes compared to wildtype (WT) controls.
  • Aged Ripk2 knockout mice showed improved performance in vertical grid and weight grip tests.
  • Reduced Iba1 staining (a marker of inflammation) 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 confers protection against ischemic stroke in aged mice.
  • RIPK2 represents a potential therapeutic target for mitigating stroke-induced damage.

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