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Published on: June 20, 2017
Non-CAA angiopathies and their possible interactions with cerebral amyloid angiopathy
1Department of Pathology, UCLA Medical Center, Los Angeles, CA 90095-1732, USA. hvinters@mednet.ucla.edu
Insights
Cerebral amyloid angiopathy (CAA) and other cerebral arteriopathies involve degeneration of arteriolar smooth muscle cells. Injury to these cells, particularly from hypoxia, may drive the progression of these conditions, leading to stroke.
Area of Science:
- Neurology
- Pathology
- Vascular Biology
Background:
- Cerebral amyloid angiopathy (CAA) and arteriosclerosis (AS) are common cerebral arteriopathies in the elderly.
- Other microvascular degenerations include CADASIL and Binswanger subcortical leukoencephalopathy (BSLE).
- These conditions share medial smooth muscle layer degeneration in arteriolar walls.
Purpose of the Study:
- To explore the common mechanisms underlying cerebral angiomyopathies.
- To investigate the role of arteriolar smooth muscle cell injury in disease progression.
Main Methods:
- Comparative analysis of pathological features in CAA, AS, CADASIL, and BSLE.
- In vitro study of arteriolar smooth muscle cells exposed to hypoxia and reoxygenation.
Main Results:
- CAA involves significant replacement of smooth muscle by amyloid.
- Medial smooth muscle hyperplasia is prominent in BSLE.
- Hypoxia and reoxygenation induce upregulation of Abeta-amyloid precursor protein in smooth muscle cells.
Conclusions:
- Arteriolar smooth muscle cell injury is a potential unifying mechanism in cerebral angiomyopathies.
- This injury may contribute to the symptomatic progression of conditions like CAA.
- Understanding these mechanisms could inform future therapeutic strategies.
Abstract:
Cerebral amyloid angiopathy (CAA) is one of the two most common cerebral arteriopathies seen in the brains of elderly patients. The other is arteriosclerosis (AS), historically considered a consequence of chronic hypertension and also described as lipohyalinosis (LH), a clinicopathologic association that is increasingly questioned. These and other less frequently encountered degeneralions of the cerebral microvasculature (CADASIL, Binswanger subcortical leukoencephalopathy) share the common feature of degeneration of the medial smooth muscle layer within arteriolar walls. This can be dramatic in CAA, in the course of which complete replacement of medial smooth muscle by fibrillar amyloid may occur. It is a less prominent feature of CADASIL and BSLE: in the latter condition, medial smooth muscle hyperplasia, possibly a response to some kind of injury, is a more dramatic finding. In some of these "angiomyopathies", fibrinoid necrosis of the arterial wall and microaneurvsm formation may lead to stroke, manifest as cerebral hemorrhage. With CADASIL and BSLE, ischemic brain injury is more common. In the case of CAA, upregulation of the Abeta-amyloid precursor protein occurs when arteriolar smooth muscle cells in culture are exposed to prolonged hypoxia, especially with reoxygenation. Injury to arteriolar smooth muscle cells may be one mechanism by which angiomyopathies progress and become symptomatic.
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