Wall shear rate and energy loss coefficient measures using conventional Doppler ultrasound do not predict carotid

Guillaume Goudot1, Tiffany R Bellomo2, Brandon Gaston2

  • 1Cardiovascular Research Center, Harvard Medical School, Massachusetts General Hospital Boston, USA.

Insights

Doppler ultrasound measurements of wall shear rate (WSR) and energy loss coefficient (ELC) did not reliably predict carotid artery plaque progression. Further research with advanced imaging may be needed to understand plaque development.

Area of Science:

  • Vascular Biology
  • Medical Imaging
  • Cardiovascular Disease

Background:

  • Carotid plaque progression is hypothesized to be linked to blood flow hemodynamics and shear stress.
  • Assessing these factors could offer insights into predicting atherosclerotic disease advancement.

Purpose of the Study:

  • To determine if wall shear rate (WSR) and energy loss coefficient (ELC), measured via Doppler ultrasound, can predict atherosclerotic carotid disease progression.
  • Investigate the predictive value of hemodynamic parameters in carotid plaque development.

Main Methods:

  • Patients with significant carotid plaque underwent Doppler ultrasound for WSR and ELC measurements.
  • Stenosis progression was evaluated using the North American Symptomatic Carotid Endarterectomy Trial (NASCET) criteria over a minimum of 6 months follow-up.

Main Results:

  • The study included 74 plaques with an average annual progression rate of 5.7% NASCET.
  • No significant difference in median WSR (p=0.643) or ELC (p=0.296) was observed between plaques with and without significant progression.
  • Only a small number of plaques showed progression exceeding 20% NASCET.

Conclusions:

  • Wall shear rate and energy loss coefficient, as estimated by Doppler ultrasound, do not reliably predict atherosclerotic plaque progression in the carotid artery.
  • The study suggests that other advanced ultrasound modalities, potentially including 3D imaging, may be necessary to fully assess the role of plaque geometry and hemodynamics in disease progression.