Intensity of chronic cerebral hypoperfusion determines white/gray matter injury and cognitive/motor dysfunction in

Kazunori Miki1, Satoru Ishibashi, Liyuan Sun

  • 1Department of Neurology and Neurological Science, Graduate School of Medicine, Tokyo Medical and Dental University, Tokyo, Japan.

Insights

This study developed a reproducible mouse model of subcortical ischemic vascular dementia (SIVD) by inducing chronic cerebral hypoperfusion, revealing white matter injury and cognitive deficits relevant to human SIVD.

Area of Science:

  • Neuroscience
  • Vascular Biology
  • Animal Models

Background:

  • Subcortical ischemic vascular dementia (SIVD) is a significant cause of cognitive decline.
  • Existing models often lack specific white matter (WM) injury or reproducibility.
  • Chronic cerebral hypoperfusion is a key factor in SIVD pathogenesis.

Purpose of the Study:

  • To establish a novel mouse model of SIVD characterized by predominant WM injury.
  • To investigate the effects of chronic cerebral hypoperfusion on neurological function and brain pathology.
  • To provide a reproducible model for studying SIVD mechanisms.

Main Methods:

  • Adult male C57Bl/6 mice underwent bilateral common carotid artery stenosis.
  • Mice were categorized into moderate (MCH) and severe (SCH) cerebral hypoperfusion groups based on cerebral blood flow (CBF).
  • Neurological function was assessed using behavioral tests (Morris water maze, rotating rod, open field); histopathology was performed on day 35.

Main Results:

  • MCH mice exhibited spatial memory deficits, reduced anxiety, and WM lesions (rarefaction, necrosis, astrocytosis, microglial infiltration, axonal loss, myelin disruption).
  • SCH mice showed motor dysfunction and lesions extending to the hippocampus and cortex.
  • WM myelin basic protein and neurofilament densities correlated with spatial memory performance in MCH mice.

Conclusions:

  • The developed MCH mouse model reliably reproduces key features of SIVD, including WM injury and cognitive dysfunction.
  • This model offers a valuable tool for elucidating the pathomechanisms of WM damage in human SIVD.
  • The findings highlight the critical role of WM integrity in cognitive function within the context of chronic cerebral hypoperfusion.

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