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Updated: Sep 22, 2025

Evaluation of the Cognitive Performance of Hypertensive Patients with Silent Cerebrovascular Lesions
Published on: April 23, 2021
Association of cerebral microvascular dysfunction and white matter injury in Alzheimer's disease
Zsolt Bagi1, Christopher D Kroenke2,3, Katie Anne Fopiano4
1Department of Physiology, Medical College of Georgia, Augusta University, 1120 15th Street, Augusta, GA, 30912, USA. zbagi@augusta.edu.
Abstract:
Patients with Alzheimer's disease (AD) often have cerebral white matter (WM) hyperintensities on MRI and microinfarcts of presumed microvascular origin pathologically. Here, we determined if vasodilator dysfunction of WM-penetrating arterioles is associated with pathologically defined WM injury and disturbances in quantitative MRI-defined WM integrity in patients with mixed microvascular and AD pathology. We analyzed tissues from 28 serially collected human brains from research donors diagnosed with varying degrees of AD neuropathologic change (ADNC) with or without cerebral microinfarcts (mVBI). WM-penetrating and pial surface arteriolar responses to the endothelium-dependent agonist bradykinin were quantified ex vivo with videomicroscopy. Vascular endothelial nitric oxide synthase (eNOS) and NAD(P)H-oxidase (Nox1, 2 and 4 isoforms) expression were measured with quantitative PCR. Glial fibrillary acidic protein (GFAP)-labeled astrocytes were quantified by unbiased stereological approaches in regions adjacent to the sites of WM-penetrating vessel collection. Post-mortem diffusion tensor imaging (DTI) was used to measure mean apparent diffusion coefficient (ADC) and fractional anisotropy (FA), quantitative indices of WM integrity. In contrast to pial surface arterioles, white matter-penetrating arterioles from donors diagnosed with high ADNC and mVBI exhibited a significantly reduced dilation in response to bradykinin when compared to the other groups. Expression of eNOS was reduced, whereas Nox1 expression was increased in WM arterioles in AD and mVBI cases. WM astrocyte density was increased in AD and mVBI, which correlated with a reduced vasodilation in WM arterioles. Moreover, in cases with low ADNC, bradykinin-induced WM arteriole dilation correlated with lower ADC and higher FA values. Comorbid ADNC and mVBI appear to synergistically interact to selectively impair bradykinin-induced vasodilation in WM-penetrating arterioles, which may be related to reduced nitric oxide- and excess reactive oxygen species-mediated vascular endothelial dysfunction. WM arteriole vasodilator dysfunction is associated with WM injury, as supported by reactive astrogliosis and MRI-defined disrupted WM microstructural integrity.
Insights
Alzheimer's disease and microvascular disease impair white matter arteriole function, leading to white matter injury and reduced integrity. This dysfunction is linked to astrocyte changes and nitric oxide reduction.
Area of Science:
- Neurology
- Vascular Biology
- Neuroimaging
Background:
- Alzheimer's disease (AD) patients often exhibit white matter (WM) hyperintensities and microinfarcts.
- Cerebral microinfarcts (mVBI) are presumed to have a microvascular origin.
- Understanding WM pathology in AD is crucial for developing targeted therapies.
Purpose of the Study:
- To investigate vasodilator dysfunction in WM-penetrating arterioles in relation to AD neuropathologic change (ADNC) and mVBI.
- To correlate vascular dysfunction with pathological WM injury and MRI-defined WM integrity.
Main Methods:
- Analysis of 28 human brain tissues with varying ADNC and mVBI.
- Ex vivo videomicroscopy to assess arteriolar response to bradykinin.
- Quantitative PCR for eNOS and Nox expression, stereology for astrocyte density, and post-mortem diffusion tensor imaging (DTI) for WM integrity (ADC, FA).
Main Results:
- WM-penetrating arterioles showed reduced bradykinin-induced dilation in high ADNC/mVBI cases.
- Reduced eNOS and increased Nox1 expression were observed in WM arterioles in AD/mVBI.
- Increased astrocyte density correlated with reduced WM arteriole vasodilation.
- WM arteriole dysfunction correlated with disrupted WM integrity (lower ADC, higher FA).
Conclusions:
- Comorbid ADNC and mVBI synergistically impair WM-penetrating arteriole vasodilation.
- This dysfunction may stem from reduced nitric oxide and increased reactive oxygen species.
- WM arteriole vasodilator dysfunction is linked to WM injury and disrupted microstructural integrity.
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