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.

Geroscience
|May 25, 2022
PubMed

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.