Related Experiment Video
Updated: Nov 18, 2025

Quantification of Mouse Heart Left Ventricular Function, Myocardial Strain, and Hemodynamic Forces by Cardiovascular Magnetic Resonance Imaging
Published on: May 24, 2021
Myocardial deformation assessed among heart failure entities by cardiovascular magnetic resonance imaging
Djawid Hashemi1,2, Laura Motzkus1, Moritz Blum1
1Department of Internal Medicine and Cardiology, Charité-Universitätsmedizin Berlin, Campus Virchow Klinikum, Berlin, Germany.
Insights
This study found significant differences in myocardial strain (global longitudinal strain and global circumferential strain) between heart failure (HF) subtypes and controls, with the left ventricular septum most affected. These strain measures offer a more sensitive assessment of HF than cardiac index.
Area of Science:
- Cardiology
- Medical Imaging
- Biomedical Engineering
Background:
- Heart failure (HF) presents a significant burden on healthcare systems, necessitating improved diagnostic and assessment tools.
- Current non-invasive methods for assessing hemodynamics and myocardial function in HF lack standardization and comparability.
- Myocardial deformation patterns across different HF classifications (HFrEF, HFmrEF, HFpEF) remain underexplored.
Purpose of the Study:
- To compare myocardial function impairment using strain analysis in patients with guideline-defined heart failure entities and control subjects.
- To investigate the regional distribution of myocardial deformation within the left ventricle (LV) across different HF types.
- To assess the utility of cardiovascular magnetic resonance imaging (CMR) in characterizing HF-specific myocardial dysfunction.
Main Methods:
- Prospective study involving 56 stable HF outpatients (HFrEF, HFmrEF, HFpEF) and 12 controls.
- Cardiovascular magnetic resonance imaging (CMR) was used to assess myocardial function, including cardiac index, LV global longitudinal strain (GLS), and LV global circumferential strain (GCS).
- Regional strain distribution patterns within the LV myocardium were analyzed and compared across all groups.
Main Results:
- No significant differences in cardiac index were observed between HF groups and controls.
- Significant differences were found in LV GLS and LV GCS across all groups (Controls, HFpEF, HFmrEF, HFrEF).
- Regional strain analysis revealed the left ventricular septum as the most affected area, with progressively worsening strain values from HFpEF to HFrEF.
Conclusions:
- Myocardial strain parameters (GLS and GCS) are more sensitive indicators of cardiac dysfunction in HF than cardiac index.
- The left ventricular septum exhibits significant, progressive impairment in contractility across HF subtypes, even when ejection fraction is preserved.
- CMR-derived strain analysis provides valuable insights into HF pathophysiology and can differentiate between HF entities.
Aims:
Although heart failure (HF) is a leading cause for hospitalization and mortality, normalized and comparable non-invasive assessment of haemodynamics and myocardial action remains limited. Moreover, myocardial deformation has not been compared between the guideline-defined HF entities. The distribution of affected and impaired segments within the contracting left ventricular (LV) myocardium have also not been compared. Therefore, we assessed myocardial function impairment by strain in patients with HF and control subjects by magnetic resonance imaging after clinically phenotyping these patients.
Methods And Results:
This prospective study conducted at two centres in Germany between 2017 and 2018 enrolled stable outpatient subjects with HF [n = 56, including HF with reduced ejection fraction (HFrEF), HF with mid-range ejection fraction (HFmrEF), and HF with preserved ejection fraction (HFpEF)] and a control cohort (n = 12). Parameters assessed included measures for external myocardial function, for example, cardiac index and myocardial deformation measurements by cardiovascular magnetic resonance imaging, left ventricular global longitudinal strain (GLS), the global circumferential strain (GCS) and the regional distribution of segment deformation within the LV myocardium, as well as basic phenotypical characteristics. Comparison of the cardiac indices at rest showed no differences neither between the HF groups nor between the control group and HF patients (one-way ANOVA P = 0.70). The analysis of the strain data revealed differences between all groups in both LV GLS (One-way ANOVA: P < 0.01. Controls vs. HFpEF: -20.48 ± 1.62 vs. -19.27 ± 1.25. HFpEF vs. HFmrEF: -19.27 ± 1.25 vs. -15.72 ± 2.76. HFmrEF vs. HFrEF: -15.72 ± 2.76 vs. -11.51 ± 3.97.) and LV GCS (One-way ANOVA: P < 0.01. Controls vs. HFpEF: -19.74 ± 2.18 vs. -17.47 ± 2.10. HFpEF vs. HFmrEF: -17.47 ± 2.10 vs. -12.78 ± 3.47. HFrEF: -11.41 ± 3.27). Comparing the segment deformation distribution patterns highlighted the discriminating effect between the groups was much more prominent between the groups (one-way ANOVA P < 0.01) when compared by a score combining regional effects and a global view on the LV. Further analyses of the patterns among the segments affected showed that while the LVEF is preserved in HFpEF, the segments impaired in their contractility are located in the ventricular septum. The worse the LVEF is, the more segments are affected, but the septum remains an outstanding location with the most severe contractility impairment throughout the HF entities.
Conclusions:
While cardiac index at rest did not differ significantly between controls and stable HF patients suffering from HFrEF, HFmrEF, or HFpEF, the groups did differ significantly in LV GLS and LV GCS values. Regional strain analysis revealed that the LV septum is the location affected most, with reduced values already visible in HFpEF and further reductions in HFmrEF and HFrEF.
More Related Videos
Related Concept Videos
Imaging Studies for Cardiovascular System IV: CMRI
Cardiomyopathy III: Hypertrophic Cardiomyopathy
Cardiomyopathy II: Dilated Cardiomyopathy

