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Magnetic Resonance Derived Myocardial Strain Assessment Using Feature Tracking
Published on: February 12, 2011
Age- and gender-related normal left ventricular deformation assessed by cardiovascular magnetic resonance feature
Florian Andre1, Henning Steen2, Philipp Matheis3
1Department of Cardiology, Angiology and Pneumology, University of Heidelberg, Im Neuenheimer Feld 410, Heidelberg, 69120, Germany. florian.andre@med.uni-heidelberg.de.
Insights
Cardiovascular magnetic resonance feature tracking imaging (FTI) provides reliable assessment of left ventricular function. This study establishes reference values for myocardial deformation in healthy adults, highlighting differences across age and gender.
Area of Science:
- Cardiology
- Medical Imaging
- Biomedical Engineering
Background:
- Left ventricular (LV) function assessment is crucial in cardiovascular magnetic resonance (CMR).
- Impaired LV deformation predicts cardiovascular outcomes in heart diseases.
- Establishing reference values for myocardial deformation is essential for accurate diagnosis.
Purpose of the Study:
- To provide reference values for myocardial deformation using CMR feature tracking imaging (FTI).
- To assess global LV deformation in a healthy reference population.
- To analyze variations in deformation parameters based on age and gender.
Main Methods:
- Feature tracking imaging (FTI) applied to standard CMR cine sequences in 150 healthy volunteers.
- Measurements included global peak systolic strain (radial, circumferential, longitudinal) and early diastolic strain rates.
- Data acquired on a 1.5T MR scanner using a standardized protocol.
Main Results:
- Defined reference values for various myocardial strain and strain rate parameters.
- Observed significant differences in strain and strain rates between genders and age groups.
- Demonstrated the robustness of FTI with low coefficients of variation for repeated measurements.
Conclusions:
- Myocardial deformation analysis using FTI is a robust technique for quantifying global LV function from standard CMR images.
- The study provides specific reference values for myocardial deformation, accounting for age and gender.
- Application of these reference values enables reliable and objective assessment of LV deformation.
Background:
Assessment of left (LV) ventricular function is one of the most important tasks of cardiovascular magnetic resonance (CMR). Impairment of LV deformation is a strong predictor of cardiovascular outcome in various cardiac diseases like ischemic heart disease or cardiomyopathies. The aim of the study was to provide reference values for myocardial deformation derived from the CMR feature tracking imaging (FTI) algorithm in a reference population of healthy volunteers.
Methods:
FTI was applied to standard short axis and 2-, 3- and 4-chamber views of vector-ECG gated CMR cine SSFP sequences of 150 strictly selected healthy volunteers (75 male/female) of three age tertiles (mean age 45.8 yrs). Global peak and mean radial, circumferential and longitudinal endo- and myocardial systolic strain values as well as early diastolic strain rates were measured using FTI within a standard protocol on a 1.5T whole body MR scanner.
Results:
Global peak systolic values were 36.3 ± 8.7% for radial, -27.2 ± 4.0% for endocardial circumferential, -21.3 ± 3.3% for myocardial circumferential, -23.4 ± 3.4% for endocardial longitudinal and -21.6 ± 3.2% for myocardial longitudinal strain. Global peak values were -2.1 ± 0.5 s(-1) for radial, 2.1 ± 0.6 s(-1) for circumferential endocardial, 1.7 ± 0.5 s(-1) for circumferential myocardial, 1.8 (1.5-2.2) s(-1) for longitudinal endocardial, 1.6 (1.4-2.0) s(-1) for longitudinal myocardial early diastolic strain rates. Men showed a higher radial strain than women whereas the circumferential and longitudinal strains were lower resulting in less negative values. Circumferential and longitudinal strain rates were significantly higher in female subjects. Radial strain increased significantly with age whereas the diastolic function measured by the radial, circumferential and longitudinal strain rates showed a decrease. The coefficients of variation determined in ten further subjects, who underwent two CMR examinations within 12 days, were -4.8% for circumferential and -4.5% for longitudinal endocardial mean strains.
Conclusions:
Myocardial deformation analysis using FTI is a novel technique and robust when applied to standard cine CMR images providing the possibility of a reliable, objective quantification of global LV deformation. Since strain values and strain rates differed partly between genders as well as between age groups, the application of specific reference values as provided by this study is recommendable.
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