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Updated: May 27, 2026

Longitudinal In Vivo Imaging of the Cerebrovasculature: Relevance to CNS Diseases
Published on: December 6, 2016
Cerebrovascular lesions induce transient β-amyloid deposition
Monica Garcia-Alloza1, Julia Gregory, Kishore V Kuchibhotla
1Alzheimer Research Unit, Department of Neurology, Massachusetts General Hospital and Harvard Medical School, 114 16th Street, Charlestown, MA 02129, USA.
Abstract:
Previous clinical studies have documented a close relationship between cerebrovascular disease and risk of Alzheimer's disease. We examined possible mechanistic interactions through use of experimental stroke models in a transgenic mouse model of β-amyloid deposition (APPswe/PS1dE9). Following middle cerebral artery occlusion, we observed a rapid increase in amyloid plaque burden in the region surrounding the infarction. In human tissue samples, however, we were unable to detect a localized increase in amyloid burden adjacent to cerebral infarcts. To resolve this discrepancy, we generated cerebral microstrokes in amyloid precursor protein mouse models with the photosensitive dye Rose bengal, and monitored plaque formation in real time using multiphoton microscopy. We observed a striking increase in the number of new plaques and amyloid angiopathy in the area immediately surrounding the infarcted area; however, the effect was transient, potentially resolving the discord between mouse and human tissue. We did not detect changes in candidate proteins related to β-amyloid generation or degradation such as β-amyloid-converting enzyme, amyloid precursor protein, presenilin 1, neprylisin or insulin-degrading enzyme. Together, these results demonstrate that strokes can trigger accelerated amyloid deposition, most likely through interference with amyloid clearance pathways. Additionally, this study indicates that focal ischaemia provides an experimental paradigm in which to study the mechanisms of plaque seeding and growth.
Insights
Strokes accelerate amyloid plaque buildup, a key Alzheimer's disease factor, by impairing clearance. This study reveals a transient increase in plaques around stroke areas in mice.
Area of Science:
- Neuroscience
- Neuropathology
- Cerebrovascular Disease Research
Background:
- Clinical studies link cerebrovascular disease to increased Alzheimer's disease (AD) risk.
- Mechanisms underlying this association, particularly concerning amyloid-beta (Aβ) deposition, remain unclear.
Purpose of the Study:
- To investigate the mechanistic link between experimental stroke and Aβ deposition in a mouse model of AD.
- To resolve discrepancies between mouse models and human tissues regarding Aβ plaque burden near infarcts.
Main Methods:
- Utilized a transgenic mouse model (APPswe/PS1dE9) exhibiting β-amyloid deposition.
- Induced experimental stroke via middle cerebral artery occlusion and focal microstrokes using Rose Bengal dye.
- Employed multiphoton microscopy for real-time monitoring of plaque formation and amyloid angiopathy.
Main Results:
- Stroke induction led to a rapid increase in amyloid plaque burden around the infarction in mouse models.
- Real-time imaging revealed a transient surge in new plaques and amyloid angiopathy near microstrokes.
- No significant changes were observed in key proteins regulating Aβ generation or degradation.
Conclusions:
- Focal ischemia, or stroke, can trigger accelerated amyloid deposition, likely by disrupting Aβ clearance pathways.
- The transient nature of plaque increase may explain discrepancies between mouse models and human autopsy studies.
- This experimental model offers a valuable tool for studying the mechanisms of amyloid plaque seeding and growth.
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