Innovative Multiparametric Characterization of Carotid Plaque Vulnerability by Ultrasound.

carotid plaque elastography plaque vulnerability ultrafast ultrasound imaging wall shear stress

Journal

Frontiers in physiology
ISSN: 1664-042X
Titre abrégé: Front Physiol
Pays: Switzerland
ID NLM: 101549006

Informations de publication

Date de publication:
2020
Historique:
received: 13 10 2019
accepted: 12 02 2020
entrez: 21 3 2020
pubmed: 21 3 2020
medline: 21 3 2020
Statut: epublish

Résumé

The degree of stenosis of a carotid plaque is a well-established risk factor for ischemic stroke. Nevertheless, the risk of ipsilateral stroke in asymptomatic carotid stenosis remains low and new imaging markers are needed to better target which patients would benefit most from endarterectomy or intensive medical therapy. Ultrafast ultrasound imaging offers parameters helping at characterizing the carotid plaque by shear wave elastography and Ultrafast Doppler (UFD). We aimed at using these techniques to characterize 3 different ultrasound biomarkers: plaque stiffness heterogeneity, wall shear stress (WSS) and intraplaque micro-flows and to correlate these biomarkers with findings on computed tomography angiography (CTA) and the pathological examination. We present the case of a multimodal evaluation of a carotid plaque using ultrasound. Elastography has been coupled to the WSS assessment and the detection of intraplaque micro-flows by UFD. The data have been compared to CTA and to the pathology examination of the tissue after carotid endarterectomy. Elastography allowed at identifying stiff areas corresponding to calcifications, as well as a soft area corresponding to an intraplaque hemorrhage. The flow evaluation with UFD showed an increase of the WSS along the plaque and identified the presence of a plaque rupture, confirmed by the pathologist. Ultrafast ultrasound imaging is an innovative, easily accessible technique that provides imaging modalities on top of the conventional B-mode. Ultrafast ultrasound biomarkers such as plaque stiffness heterogeneity, WSS and intraplaque micro-flows could help to define the vulnerability of the carotid plaque in order to stratify patients that could benefit most from endarterectomy or intensive medical therapy.

Identifiants

pubmed: 32194437
doi: 10.3389/fphys.2020.00157
pmc: PMC7064056
doi:

Types de publication

Journal Article

Langues

eng

Pagination

157

Informations de copyright

Copyright © 2020 Goudot, Khider, Pedreira, Poree, Julia, Alsac, Amemiya, Bruneval, Messas, Pernot and Mirault.

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Auteurs

Guillaume Goudot (G)

Physics for Medicine Paris, INSERM U1273, ESPCI Paris, CNRS FRE 2031, PSL Research University, Paris, France.
Vascular Department, Hôpital Européen Georges Pompidou, APHP, Paris, France.

Lina Khider (L)

Physics for Medicine Paris, INSERM U1273, ESPCI Paris, CNRS FRE 2031, PSL Research University, Paris, France.
Vascular Department, Hôpital Européen Georges Pompidou, APHP, Paris, France.

Olivier Pedreira (O)

Physics for Medicine Paris, INSERM U1273, ESPCI Paris, CNRS FRE 2031, PSL Research University, Paris, France.

Jonathan Poree (J)

Physics for Medicine Paris, INSERM U1273, ESPCI Paris, CNRS FRE 2031, PSL Research University, Paris, France.

Pierre Julia (P)

Vascular Department, Hôpital Européen Georges Pompidou, APHP, Paris, France.

Jean-Marc Alsac (JM)

Vascular Department, Hôpital Européen Georges Pompidou, APHP, Paris, France.

Kisaki Amemiya (K)

INSERM U970 PARCC, Paris University, Paris, France.

Patrick Bruneval (P)

INSERM U970 PARCC, Paris University, Paris, France.

Emmanuel Messas (E)

Vascular Department, Hôpital Européen Georges Pompidou, APHP, Paris, France.
INSERM U970 PARCC, Paris University, Paris, France.

Mathieu Pernot (M)

Physics for Medicine Paris, INSERM U1273, ESPCI Paris, CNRS FRE 2031, PSL Research University, Paris, France.

Tristan Mirault (T)

Physics for Medicine Paris, INSERM U1273, ESPCI Paris, CNRS FRE 2031, PSL Research University, Paris, France.
Vascular Department, Hôpital Européen Georges Pompidou, APHP, Paris, France.
INSERM U970 PARCC, Paris University, Paris, France.

Classifications MeSH