White matter lesions and glial activation in a novel mouse model of chronic cerebral hypoperfusion

Masunari Shibata1, Ryo Ohtani, Masafumi Ihara

  • 1Department of Neurology, Faculty of Medicine, Kyoto University, Sakyo-Ku, Kyoto 606-8507 Japan. mshibata@kuhp.kyoto-u.ac.jp

Stroke
|October 9, 2004
PubMed
Abstract

Insights

This study developed a mouse model of chronic cerebral hypoperfusion to study white matter (WM) lesions. The model successfully induced WM lesions, offering a new tool for understanding cognitive impairment and gait disorders.

Area of Science:

  • Neuroscience
  • Cerebrovascular Research
  • Animal Models

Background:

  • Cerebrovascular white matter (WM) lesions are linked to cognitive decline and gait issues in older adults.
  • Chronic cerebral hypoperfusion is a key factor in the development of WM lesions.
  • A robust animal model is needed for molecular analysis of these lesions.

Purpose of the Study:

  • To establish and validate a mouse model of chronic cerebral hypoperfusion.
  • To investigate the induction and characteristics of WM lesions in this model.
  • To provide a tool for studying the pathophysiology of WM lesions and cognitive impairment.

Main Methods:

  • Adult male C57Bl/6 mice underwent bilateral common carotid artery stenosis (BCAS) with varying microcoil sizes.
  • Cerebral blood flow (CBF) was measured using laser-Doppler flowmetry.
  • Brain tissue was analyzed histologically and immunohistochemically for glial markers.

Main Results:

  • BCAS induced significant, sustained reductions in CBF, with severity dependent on stenosis level.
  • WM lesions, primarily in the corpus callosum, developed after 14 days in moderate stenosis groups (0.20-0.18 mm).
  • Microglial and astroglial proliferation was observed in WM, indicating an inflammatory response.

Conclusions:

  • A mouse model of chronic cerebral hypoperfusion successfully induced WM lesions with relative gray matter preservation.
  • This model is suitable for cognitive and genetic analyses, aiding research into WM lesion pathophysiology.
  • The model offers a valuable platform for developing strategies to combat age-related cognitive and gait disorders.

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