Circle of Willis configuration as a determinant of intracranial dolichoectasia

Jose Gutierrez1, Sally Sultan, Ahmet Bagci

  • 1Department of Neurology, Columbia University Medical Center, New York, N.Y., USA.

Insights

Brain artery variants in the Circle of Willis (COW) are linked to intracranial dolichoectasia (DE). Incomplete COW structures, particularly absent arteries, increase the likelihood of DE, suggesting a compensatory mechanism.

Area of Science:

  • Neuroimaging
  • Vascular Neurology
  • Anatomy

Background:

  • The Circle of Willis (COW) exhibits anatomical variations that may impact cerebral arterial caliber.
  • These variations are hypothesized to correlate with the occurrence of intracranial dolichoectasia (DE).

Purpose of the Study:

  • To investigate the association between Circle of Willis variants and the prevalence of intracranial dolichoectasia.
  • To determine if COW anomalies predict the development of DE in a stroke-free population.

Main Methods:

  • Magnetic Resonance Angiography (MRA) was used to assess COW anatomy and DE in 436 stroke-free participants.
  • Arterial caliber was measured, and arteries were classified as hypoplastic or absent based on MRA visibility.
  • Statistical models evaluated predictors of absent/hypoplastic vessels and the odds of DE in relation to COW variants.

Main Results:

  • A significant proportion of participants (56%) had incomplete COW anatomy, with 1 or more absent arteries.
  • DE in posterior circulation arteries showed a weak association with the number of absent posterior circulation arteries.
  • The presence of any absent artery increased the odds of DE in at least one artery (OR 1.27) and specifically in the posterior circulation (OR 1.35).
  • Incomplete posterior COW was linked to anterior circulation DE (OR 1.52). Specific absent segments, like the ACA A1, showed strong associations with contralateral ACA DE (OR up to 34.1).
  • Absence of connecting arteries between anterior and posterior circulation increased the odds of basilar artery DE (OR up to 3.0).

Conclusions:

  • The Circle of Willis demonstrates significant pleomorphism, facilitating collateral blood flow to compensate for arterial deficiencies.
  • Arterial outward remodeling, or dilatation, may occur as a compensatory response to altered flow dynamics.
  • The clinical significance and potential benefits of this compensatory arterial dilatation remain to be elucidated.
Abstract

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