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Published on: November 6, 2017
Cerebrovascular disease in ageing and Alzheimer's disease
1Institute of Clinical Neurosciences, School of Clinical Sciences, Learning and Research Level 2, Southmead Hospital, University of Bristol, Bristol, BS10 5NB, UK. seth.love@bris.ac.uk.
Insights
Cerebrovascular disease (CVD) and Alzheimer's disease (AD) share risk factors and neuropathology. Non-structural vascular dysfunction, particularly endothelin-1, causes cerebral hypoperfusion in AD, driving disease progression.
Area of Science:
- Neurology
- Neuroscience
- Pathology
Background:
- Cerebrovascular disease (CVD) and Alzheimer's disease (AD) share risk factors and neuropathological overlaps.
- Alzheimer's disease patients frequently exhibit amyloid angiopathy, capillary degeneration, and ischemic abnormalities.
- Vascular contributions to AD pathology are significant, but stereotyped hypoperfusion patterns suggest non-structural factors are key.
Purpose of the Study:
- To investigate the role of non-structural vascular dysfunction in cerebral hypoperfusion in Alzheimer's disease.
- To explore the interaction between Cerebrovascular disease and Alzheimer's disease at cellular and pathological levels.
- To identify novel therapeutic targets for ameliorating ischemic damage and neurodegeneration.
Main Methods:
- Utilized functional MRI and near-infrared spectroscopy to assess cerebral blood flow and oxygenation.
- Conducted biochemical analysis of myelin proteins to evaluate susceptibility to reduced oxygenation.
- Reviewed experimental and clinical observations on the interplay between CVD and AD.
Main Results:
- Cerebral hypoperfusion in AD is primarily due to inadequate blood supply, not reduced metabolic demand.
- Non-structural vascular dysfunction, with endothelin-1 (EDN1) as a key mediator, is implicated in AD hypoperfusion.
- Evidence suggests mechanistic interactions between CVD and AD processes exacerbate both conditions.
Conclusions:
- Non-structural vascular dysfunction, particularly involving endothelin-1, is a critical factor in cerebral hypoperfusion in Alzheimer's disease.
- Interactions between cerebrovascular disease and Alzheimer's disease exacerbate pathology at cellular levels.
- Understanding these mechanisms opens avenues for novel therapeutics to mitigate ischemic damage and slow neurodegeneration.
Abstract:
Cerebrovascular disease (CVD) and Alzheimer's disease (AD) have more in common than their association with ageing. They share risk factors and overlap neuropathologically. Most patients with AD have Aβ amyloid angiopathy and degenerative changes affecting capillaries, and many have ischaemic parenchymal abnormalities. Structural vascular disease contributes to the ischaemic abnormalities in some patients with AD. However, the stereotyped progression of hypoperfusion in this disease, affecting first the precuneus and cingulate gyrus, then the frontal and temporal cortex and lastly the occipital cortex, suggests that other factors are more important, particularly in early disease. Whilst demand for oxygen and glucose falls in late disease, functional MRI, near infrared spectroscopy to measure the saturation of haemoglobin by oxygen, and biochemical analysis of myelin proteins with differential susceptibility to reduced oxygenation have all shown that the reduction in blood flow in AD is primarily a problem of inadequate blood supply, not reduced metabolic demand. Increasing evidence points to non-structural vascular dysfunction rather than structural abnormalities of vessel walls as the main cause of cerebral hypoperfusion in AD. Several mediators are probably responsible. One that is emerging as a major contributor is the vasoconstrictor endothelin-1 (EDN1). Whilst there is clearly an additive component to the clinical and pathological effects of hypoperfusion and AD, experimental and clinical observations suggest that the disease processes also interact mechanistically at a cellular level in a manner that exacerbates both. The elucidation of some of the mechanisms responsible for hypoperfusion in AD and for the interactions between CVD and AD has led to the identification of several novel therapeutic approaches that have the potential to ameliorate ischaemic damage and slow the progression of neurodegenerative disease.
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