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Published in: The International Journal of Cardiovascular Imaging 2/2012

01-02-2012 | Original Paper

Left ventricular torsion and longitudinal shortening: two fundamental components of myocardial mechanics assessed by tagged cine-MRI in normal subjects

Authors: Francesc Carreras, Jaume Garcia-Barnes, Debora Gil, Sandra Pujadas, Chi Hion Li, Ramon Suarez-Arias, Ruben Leta, Xavier Alomar, Manel Ballester, Guillem Pons-Llado

Published in: The International Journal of Cardiovascular Imaging | Issue 2/2012

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Abstract

Cardiac magnetic resonance imaging (Cardiac MRI) has become a gold standard diagnostic technique for the assessment of cardiac mechanics, allowing the non-invasive calculation of left ventricular long axis longitudinal shortening (LVLS) and absolute myocardial torsion (AMT) between basal and apical left ventricular slices, a movement directly related to the helicoidal anatomic disposition of the myocardial fibers. The aim of this study is to determine AMT and LVLS behaviour and normal values from a group of healthy subjects. A group of 21 healthy volunteers (15 males) (age: 23–55 y.o., mean: 30.7 ± 7.5) were prospectively included in an observational study by Cardiac MRI. Left ventricular rotation (degrees) was calculated by custom-made software (Harmonic Phase Flow) in consecutive LV short axis planes tagged cine-MRI sequences. AMT was determined from the difference between basal and apical planes LV rotations. LVLS (%) was determined from the LV longitudinal and horizontal axis cine-MRI images. All the 21 cases studied were interpretable, although in three cases the value of the LV apical rotation could not be determined. The mean rotation of the basal and apical planes at end-systole were −3.71° ± 0.84° and 6.73° ± 1.69° (n:18) respectively, resulting in a LV mean AMT of 10.48° ± 1.63° (n:18). End-systolic mean LVLS was 19.07 ± 2.71%. Cardiac MRI allows for the calculation of AMT and LVLS, fundamental functional components of the ventricular twist mechanics conditioned, in turn, by the anatomical helical layout of the myocardial fibers. These values provide complementary information about systolic ventricular function in relation to the traditional parameters used in daily practice.
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Metadata
Title
Left ventricular torsion and longitudinal shortening: two fundamental components of myocardial mechanics assessed by tagged cine-MRI in normal subjects
Authors
Francesc Carreras
Jaume Garcia-Barnes
Debora Gil
Sandra Pujadas
Chi Hion Li
Ramon Suarez-Arias
Ruben Leta
Xavier Alomar
Manel Ballester
Guillem Pons-Llado
Publication date
01-02-2012
Publisher
Springer Netherlands
Published in
The International Journal of Cardiovascular Imaging / Issue 2/2012
Print ISSN: 1569-5794
Electronic ISSN: 1875-8312
DOI
https://doi.org/10.1007/s10554-011-9813-6

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