Intracranial arterial wall imaging using high-resolution 3-tesla contrast-enhanced MRI

R H Swartz1, S S Bhuta, R I Farb

  • 1Division of Neuroradiology, Department of Medical Imaging, New East Wing, Toronto Western Hospital, University Health Network, 399 Bathurst St., Toronto, Ontario M5T2S8, Canada.

Neurology
|February 18, 2009
PubMed

Insights

Three-tesla contrast-enhanced MRI shows promise for visualizing intracranial arterial walls. This advanced imaging can differentiate between atherosclerotic plaques, inflammation, and other pathologies, aiding in stroke diagnosis.

Area of Science:

  • Neurology
  • Radiology
  • Vascular Imaging

Background:

  • Conventional arterial imaging lacks specificity due to similar luminal defects from various pathologies.
  • Intracranial wall imaging is limited by resolution and signal constraints, unlike extracranial imaging.
  • Higher-field MRI scanners may enhance visualization of smaller intracranial vessels.

Purpose of the Study:

  • To evaluate the utility of 3-tesla contrast-enhanced MRI for studying intracranial arterial walls.
  • To assess the ability of specific MRI sequences to differentiate various intracranial arterial pathologies.

Main Methods:

  • Consecutive patients with focal neurologic deficits underwent 3-tesla contrast-enhanced MRI.
  • Multiplanar T2-weighted fast spin echo and T1 fluid-attenuated inversion recovery (FLAIR) pre- and postcontrast images were acquired.
  • 37 patients with diverse clinical diagnoses were studied.

Main Results:

  • 12/13 patients with atherosclerotic disease showed eccentric vessel wall enhancement.
  • 2/3 patients with inflammatory diseases exhibited diffuse, concentric vessel wall enhancement.
  • 3/3 patients with dissection displayed T1 bright signal, with 2 showing irregular enhancement, flap, and dual lumen.

Conclusions:

  • 3-tesla contrast-enhanced MRI is feasible for intracranial arterial wall imaging.
  • T2 and T1 FLAIR sequences may differentiate enhancement patterns of intracranial atherosclerosis, inflammation, and other wall pathologies.
  • Prospective studies are needed to establish sensitivity and specificity for differentiating cerebral vascular conditions.
Abstract

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