Related Experiment Video
Updated: Jun 28, 2026

A Mouse Model for Vascular Cognitive Impairment and Dementia Based on Needle-guided Asymmetric Bilateral Common Carotid Artery Stenosis
Published on: November 22, 2024
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.
Abstract:
We sought to establish a mouse model of subcortical ischemic vascular dementia (SIVD) that develops predominant white matter (WM) injury and cognitive dysfunction induced by chronic cerebral hypoperfusion. Adult C57Bl/6 male (n = 48) mice were subjected to bilateral common carotid artery stenosis with external microcoils (inner diameters: 0.16 mm, left; 0.18 mm, right). Mice were categorized according to left-side cerebral blood flow (CBF) value on day 6 into those with severe cerebral hypoperfusion (SCH; n = 16, < 30% of preoperative CBF baseline value) or moderate cerebral hypoperfusion (MCH; n = 21, 30-50% of preoperative value). Another 15 mice were sham operated. Neurological dysfunction was evaluated by Morris water maze, rotating rod, and open field tests. Histopathological examination was performed on day 35 after surgery. MCH animals showed persistent hyperlocomotion with reduced anxiety and spatial reference memory dysfunction. Rarefaction and small necrotic lesions were predominantly confined to the WM, with reactive astrocytosis, microglial infiltration, axonal loss, and myelin disruption, and these changes were dominant on the left side. SCH animals had persistent hyperlocomotion and motor dysfunction, and their ischemic lesions extended from the WM to the hippocampus and cortex. In MCH animals, myelin basic protein and neurofilament fiber densities in the WM were correlated with the time spent in the correct area in the water maze probe trials. Our MCH mouse model with the development of several types of neurological dysfunction with high reproducibility would be useful for investigating the pathomechanisms of WM injury in human SIVD.
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.

