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Normal and shear strains of the left ventricle in healthy human subjects measured by two-dimensional speckle tracking echocardiography

BACKGROUND: Animal studies have shown that shear deformation of myocardial sheets in transmural planes of left ventricular (LV) wall is an important mechanism for systolic wall thickening, and normal and shear strains of the LV free wall differ from those of the interventricular septum (IVS). We sou...

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Autores principales: Yuan, Li-Jun, Takenaka, Katsu, Uno, Kansei, Ebihara, Aya, Sasaki, Kazuno, Komuro, Takako, Sonoda, Makoto, Nagai, Ryozo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4016487/
https://www.ncbi.nlm.nih.gov/pubmed/24517641
http://dx.doi.org/10.1186/1476-7120-12-7
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author Yuan, Li-Jun
Takenaka, Katsu
Uno, Kansei
Ebihara, Aya
Sasaki, Kazuno
Komuro, Takako
Sonoda, Makoto
Nagai, Ryozo
author_facet Yuan, Li-Jun
Takenaka, Katsu
Uno, Kansei
Ebihara, Aya
Sasaki, Kazuno
Komuro, Takako
Sonoda, Makoto
Nagai, Ryozo
author_sort Yuan, Li-Jun
collection PubMed
description BACKGROUND: Animal studies have shown that shear deformation of myocardial sheets in transmural planes of left ventricular (LV) wall is an important mechanism for systolic wall thickening, and normal and shear strains of the LV free wall differ from those of the interventricular septum (IVS). We sought to test whether these also hold for human hearts. METHODS: Thirty healthy volunteers (male 23 and female 7, aged 34 ± 6 years) from Outpatient Department of the University of Tokyo Hospital were included. Echocardiographic images were obtained in the left decubitus position using a commercially available system (Aloka SSD-6500, Japan) equipped with a 3.5-MHz transducer. The ECG was recorded simultaneously. The peak systolic radial normal strain (length change), shear strain (angle change) and time to peak systolic radial normal strain were obtained non-invasively by two-dimensional speckle tracking echocardiography. RESULTS: The peak systolic radial normal strain in both IVS and LV posterior wall (LVPW) showed a trend to increase progressively from the apical level to the basal level, especially at short axis views, and the peak systolic radial normal strain of LVPW was significantly greater than that of IVS at all three levels. The time to peak systolic radial normal strain was the shortest at the basal IVS, and increased progressively from the base to the apical IVS. It gradually increased from the apical to the basal LVPW in sequence, especially at short axis views. The peak of radial normal strain of LVPW occurred much later than the peak of IVS at all three levels. For IVS, the shear deformation was clockwise at basal level, and counterclockwise at mid and apical levels in LV long-axis view. For LVPW, the shear deformations were all counterclockwise in LV long-axis view and increased slightly from base to the apex. LVPW showed larger shear strains than IVS at all three levels. Bland-Altman analysis shows very good agreement between measurements taken by the same observer and by two independent observers. CONCLUSION: “Myocardial sheets” theory also holds true for intact human LV. Moreover, dyssynchrony exists even in healthy human subjects, which should be considered when evaluating the diseased hearts.
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spelling pubmed-40164872014-05-11 Normal and shear strains of the left ventricle in healthy human subjects measured by two-dimensional speckle tracking echocardiography Yuan, Li-Jun Takenaka, Katsu Uno, Kansei Ebihara, Aya Sasaki, Kazuno Komuro, Takako Sonoda, Makoto Nagai, Ryozo Cardiovasc Ultrasound Research BACKGROUND: Animal studies have shown that shear deformation of myocardial sheets in transmural planes of left ventricular (LV) wall is an important mechanism for systolic wall thickening, and normal and shear strains of the LV free wall differ from those of the interventricular septum (IVS). We sought to test whether these also hold for human hearts. METHODS: Thirty healthy volunteers (male 23 and female 7, aged 34 ± 6 years) from Outpatient Department of the University of Tokyo Hospital were included. Echocardiographic images were obtained in the left decubitus position using a commercially available system (Aloka SSD-6500, Japan) equipped with a 3.5-MHz transducer. The ECG was recorded simultaneously. The peak systolic radial normal strain (length change), shear strain (angle change) and time to peak systolic radial normal strain were obtained non-invasively by two-dimensional speckle tracking echocardiography. RESULTS: The peak systolic radial normal strain in both IVS and LV posterior wall (LVPW) showed a trend to increase progressively from the apical level to the basal level, especially at short axis views, and the peak systolic radial normal strain of LVPW was significantly greater than that of IVS at all three levels. The time to peak systolic radial normal strain was the shortest at the basal IVS, and increased progressively from the base to the apical IVS. It gradually increased from the apical to the basal LVPW in sequence, especially at short axis views. The peak of radial normal strain of LVPW occurred much later than the peak of IVS at all three levels. For IVS, the shear deformation was clockwise at basal level, and counterclockwise at mid and apical levels in LV long-axis view. For LVPW, the shear deformations were all counterclockwise in LV long-axis view and increased slightly from base to the apex. LVPW showed larger shear strains than IVS at all three levels. Bland-Altman analysis shows very good agreement between measurements taken by the same observer and by two independent observers. CONCLUSION: “Myocardial sheets” theory also holds true for intact human LV. Moreover, dyssynchrony exists even in healthy human subjects, which should be considered when evaluating the diseased hearts. BioMed Central 2014-02-11 /pmc/articles/PMC4016487/ /pubmed/24517641 http://dx.doi.org/10.1186/1476-7120-12-7 Text en Copyright © 2014 Yuan et al.; licensee BioMed Central Ltd. http://creativecommons.org/licenses/by/2.0 This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/2.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research
Yuan, Li-Jun
Takenaka, Katsu
Uno, Kansei
Ebihara, Aya
Sasaki, Kazuno
Komuro, Takako
Sonoda, Makoto
Nagai, Ryozo
Normal and shear strains of the left ventricle in healthy human subjects measured by two-dimensional speckle tracking echocardiography
title Normal and shear strains of the left ventricle in healthy human subjects measured by two-dimensional speckle tracking echocardiography
title_full Normal and shear strains of the left ventricle in healthy human subjects measured by two-dimensional speckle tracking echocardiography
title_fullStr Normal and shear strains of the left ventricle in healthy human subjects measured by two-dimensional speckle tracking echocardiography
title_full_unstemmed Normal and shear strains of the left ventricle in healthy human subjects measured by two-dimensional speckle tracking echocardiography
title_short Normal and shear strains of the left ventricle in healthy human subjects measured by two-dimensional speckle tracking echocardiography
title_sort normal and shear strains of the left ventricle in healthy human subjects measured by two-dimensional speckle tracking echocardiography
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4016487/
https://www.ncbi.nlm.nih.gov/pubmed/24517641
http://dx.doi.org/10.1186/1476-7120-12-7
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