In plane quantification of in vivo muscle elastic anisotropy factor by steered ultrasound pushing beams.

Young's modulus elastography muscle anisotropy shear modulus ultrafast ultrasound

Journal

Physics in medicine and biology
ISSN: 1361-6560
Titre abrégé: Phys Med Biol
Pays: England
ID NLM: 0401220

Informations de publication

Date de publication:
23 Jan 2024
Historique:
medline: 23 1 2024
pubmed: 23 1 2024
entrez: 23 1 2024
Statut: aheadofprint

Résumé

Skeletal muscles are organized into distinct layers and exhibit anisotropic characteristics across various scales. Assessing the arrangement of skeletal muscles may provide valuable biomarkers for diagnosing muscle-related pathologies and evaluating the efficacy of clinical interventions. In this study, we propose a novel ultrafast ultrasound sequence constituted of steered pushing beams was proposed for ultrasound elastography applications in transverse isotropic muscle. Based on the propagation of the shear wave vertical mode, it is possible to fit the experimental results to retrieve in the same imaging plane, the shear modulus parallel to fibers as well as the elastic anisotropy factor (ratio of Young's moduli times the shear modulus perpendicular to fibers). The technique was demonstrated in vitro in phantoms and ex vivo in fusiform beef muscles. At last, the technique was applied in vivo on fusiform muscles (biceps brachii) and mono-pennate muscles (gastrocnemius medialis) during stretching and contraction. This novel sequence provides access to new structural and mechanical biomarkers of muscle tissue, including the elastic anisotropy factor, within the same imaging plane. Additionally, it enables the investigation of multiples parameters during muscle active and passive length changes.

Identifiants

pubmed: 38262052
doi: 10.1088/1361-6560/ad21a0
doi:

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Informations de copyright

© 2024 Institute of Physics and Engineering in Medicine.

Auteurs

Ha-Hien-Phuong Ngo (HH)

Laboratoire d'imagerie biomédicale multimodale à Paris saclay, Université Paris-Sud, CEA, CNRS UMR 9011, INSERM UMR 1281, France, 4 Place du général Leclerc, orsay, Paris-Saclay , 91401, FRANCE.

Ricardo J Andrade (RJ)

UFR STAPS, University of Nantes, 25 bis, boulevard Guy Mollet, Nantes, 44300, FRANCE.

Javier Brum (J)

Universidad de la Republica Instituto de Fisica, Facultad de sciencias, Montevideo, 11400, URUGUAY.

Nicolas Benech (N)

Universidad de la Republica Instituto de Fisica, Facultad de Ciencias, Montevideo, 11400, URUGUAY.

Simon Chatelin (S)

Robotics Vision Control Team (CNRS UMR 7357 University of Strasbourg), Laboratoire ICube, 1 Place de l'Hôpital, Strasbourg, 67000, FRANCE.

Aude Loumeaud (A)

Robotics Vision Control Team (CNRS UMR 7357 University of Strasbourg), Laboratoire ICube, 1 Place de l'Hôpital, Strasbourg, 67000, FRANCE.

Thomas Frappart (T)

2Hologic® - Supersonic Imagine®, 135 Rue Emilien Gautier, Bâtiment C, Aix en Provence, F-13290, FRANCE.

Christophe Fraschini (C)

Hologic® - Supersonic Imagine®, 135 Rue Emilien Gautier, Bâtiment C, Aix en Provence, F-13290, FRANCE.

Antoine Nordez (A)

Laboratoire 'Motricite, Interactions, Performance', Universite de Nantes, JE 2438 UFRSTAPS,, 25 bis Guy Mollet BP 72206, Nantes, F-44000 France, Nantes, 44300, FRANCE.

Jean-Luc Gennisson (JL)

Laboratoire d'imagerie biomédicale multimodale à Paris saclay, Université Paris-Sud, CEA, CNRS UMR 9011, INSERM UMR 1281, France, 4 place du général Leclerc, Paris-Saclay , 91401, FRANCE.

Classifications MeSH