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Cardiovascular magnetic resonance myocardial feature tracking detects quantitative wall motion during dobutamine stress

BACKGROUND: Dobutamine stress cardiovascular magnetic resonance (DS-CMR) is an established tool to assess hibernating myocardium and ischemia. Analysis is typically based on visual assessment with considerable operator dependency. CMR myocardial feature tracking (CMR-FT) is a recently introduced tec...

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Autores principales: Schuster, Andreas, Kutty, Shelby, Padiyath, Asif, Parish, Victoria, Gribben, Paul, Danford, David A, Makowski, Marcus R, Bigalke, Boris, Beerbaum, Philipp, Nagel, Eike
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3217847/
https://www.ncbi.nlm.nih.gov/pubmed/21992220
http://dx.doi.org/10.1186/1532-429X-13-58
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author Schuster, Andreas
Kutty, Shelby
Padiyath, Asif
Parish, Victoria
Gribben, Paul
Danford, David A
Makowski, Marcus R
Bigalke, Boris
Beerbaum, Philipp
Nagel, Eike
author_facet Schuster, Andreas
Kutty, Shelby
Padiyath, Asif
Parish, Victoria
Gribben, Paul
Danford, David A
Makowski, Marcus R
Bigalke, Boris
Beerbaum, Philipp
Nagel, Eike
author_sort Schuster, Andreas
collection PubMed
description BACKGROUND: Dobutamine stress cardiovascular magnetic resonance (DS-CMR) is an established tool to assess hibernating myocardium and ischemia. Analysis is typically based on visual assessment with considerable operator dependency. CMR myocardial feature tracking (CMR-FT) is a recently introduced technique for tissue voxel motion tracking on standard steady-state free precession (SSFP) images to derive circumferential and radial myocardial mechanics. We sought to determine the feasibility and reproducibility of CMR-FT for quantitative wall motion assessment during intermediate dose DS-CMR. METHODS: 10 healthy subjects were studied at 1.5 Tesla. Myocardial strain parameters were derived from SSFP cine images using dedicated CMR-FT software (Diogenes MRI prototype; Tomtec; Germany). Right ventricular (RV) and left ventricular (LV) longitudinal strain (Ell(RV )and Ell(LV)) and LV long-axis radial strain (Err(LAX)) were derived from a 4-chamber view at rest. LV short-axis circumferential strain (Ecc(SAX)) and Err(SAX); LV ejection fraction (EF) and volumes were analyzed at rest and during dobutamine stress (10 and 20 μg · kg(-1)· min(-1)). RESULTS: In all volunteers strain parameters could be derived from the SSFP images at rest and stress. Ecc(SAX )values showed significantly increased contraction with DSMR (rest: -24.1 ± 6.7; 10 μg: -32.7 ± 11.4; 20 μg: -39.2 ± 15.2; p < 0.05). Err(SAX )increased significantly with dobutamine (rest: 19.6 ± 14.6; 10 μg: 31.8 ± 20.9; 20 μg: 42.4 ± 25.5; p < 0.05). In parallel with these changes; EF increased significantly with dobutamine (rest: 56.9 ± 4.4%; 10 μg: 70.7 ± 8.1; 20 μg: 76.8 ± 4.6; p < 0.05). Observer variability was best for LV circumferential strain (Ecc(SAX )) and worst for RV longitudinal strain (Ell(RV)) as determined by 95% confidence intervals of the difference. CONCLUSIONS: CMR-FT reliably detects quantitative wall motion and strain derived from SSFP cine imaging that corresponds to inotropic stimulation. The current implementation may need improvement to reduce observer-induced variance. Within a given CMR lab; this novel technique holds promise of easy and fast quantification of wall mechanics and strain.
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spelling pubmed-32178472011-11-17 Cardiovascular magnetic resonance myocardial feature tracking detects quantitative wall motion during dobutamine stress Schuster, Andreas Kutty, Shelby Padiyath, Asif Parish, Victoria Gribben, Paul Danford, David A Makowski, Marcus R Bigalke, Boris Beerbaum, Philipp Nagel, Eike J Cardiovasc Magn Reson Research BACKGROUND: Dobutamine stress cardiovascular magnetic resonance (DS-CMR) is an established tool to assess hibernating myocardium and ischemia. Analysis is typically based on visual assessment with considerable operator dependency. CMR myocardial feature tracking (CMR-FT) is a recently introduced technique for tissue voxel motion tracking on standard steady-state free precession (SSFP) images to derive circumferential and radial myocardial mechanics. We sought to determine the feasibility and reproducibility of CMR-FT for quantitative wall motion assessment during intermediate dose DS-CMR. METHODS: 10 healthy subjects were studied at 1.5 Tesla. Myocardial strain parameters were derived from SSFP cine images using dedicated CMR-FT software (Diogenes MRI prototype; Tomtec; Germany). Right ventricular (RV) and left ventricular (LV) longitudinal strain (Ell(RV )and Ell(LV)) and LV long-axis radial strain (Err(LAX)) were derived from a 4-chamber view at rest. LV short-axis circumferential strain (Ecc(SAX)) and Err(SAX); LV ejection fraction (EF) and volumes were analyzed at rest and during dobutamine stress (10 and 20 μg · kg(-1)· min(-1)). RESULTS: In all volunteers strain parameters could be derived from the SSFP images at rest and stress. Ecc(SAX )values showed significantly increased contraction with DSMR (rest: -24.1 ± 6.7; 10 μg: -32.7 ± 11.4; 20 μg: -39.2 ± 15.2; p < 0.05). Err(SAX )increased significantly with dobutamine (rest: 19.6 ± 14.6; 10 μg: 31.8 ± 20.9; 20 μg: 42.4 ± 25.5; p < 0.05). In parallel with these changes; EF increased significantly with dobutamine (rest: 56.9 ± 4.4%; 10 μg: 70.7 ± 8.1; 20 μg: 76.8 ± 4.6; p < 0.05). Observer variability was best for LV circumferential strain (Ecc(SAX )) and worst for RV longitudinal strain (Ell(RV)) as determined by 95% confidence intervals of the difference. CONCLUSIONS: CMR-FT reliably detects quantitative wall motion and strain derived from SSFP cine imaging that corresponds to inotropic stimulation. The current implementation may need improvement to reduce observer-induced variance. Within a given CMR lab; this novel technique holds promise of easy and fast quantification of wall mechanics and strain. BioMed Central 2011-10-12 /pmc/articles/PMC3217847/ /pubmed/21992220 http://dx.doi.org/10.1186/1532-429X-13-58 Text en Copyright ©2011 Schuster 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
Schuster, Andreas
Kutty, Shelby
Padiyath, Asif
Parish, Victoria
Gribben, Paul
Danford, David A
Makowski, Marcus R
Bigalke, Boris
Beerbaum, Philipp
Nagel, Eike
Cardiovascular magnetic resonance myocardial feature tracking detects quantitative wall motion during dobutamine stress
title Cardiovascular magnetic resonance myocardial feature tracking detects quantitative wall motion during dobutamine stress
title_full Cardiovascular magnetic resonance myocardial feature tracking detects quantitative wall motion during dobutamine stress
title_fullStr Cardiovascular magnetic resonance myocardial feature tracking detects quantitative wall motion during dobutamine stress
title_full_unstemmed Cardiovascular magnetic resonance myocardial feature tracking detects quantitative wall motion during dobutamine stress
title_short Cardiovascular magnetic resonance myocardial feature tracking detects quantitative wall motion during dobutamine stress
title_sort cardiovascular magnetic resonance myocardial feature tracking detects quantitative wall motion during dobutamine stress
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3217847/
https://www.ncbi.nlm.nih.gov/pubmed/21992220
http://dx.doi.org/10.1186/1532-429X-13-58
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