Related Experiment Video
Updated: Mar 29, 2026

Lumped-Parameter and Finite Element Modeling of Heart Failure with Preserved Ejection Fraction
Published on: February 13, 2021
Mechanical dyssynchrony and septal-lateral perfusion heterogeneity predict adverse left ventricular remodelling
Simone Cristina Soares Brandão1, Lee Joseph1, Jenifer M Brown1
1Division of Cardiovascular Medicine, Brigham and Women's Hospital, Harvard Medical School, Boston, MA, USA.
Insights
Mechanical dyssynchrony and perfusion heterogeneity predict left ventricular remodeling, regardless of left bundle branch block (LBBB). Integrated imaging can improve cardiomyopathy risk stratification.
Area of Science:
- Cardiology
- Medical Imaging
- Physiology
Background:
- Left bundle branch block (LBBB) is linked to mechanical dyssynchrony, heterogeneous perfusion, and adverse left ventricular (LV) remodeling.
- However, not all LBBB patients develop cardiomyopathy, and dyssynchrony can occur without conduction defects, with the role of microvascular dysfunction unclear.
Purpose of the Study:
- To assess the relationship between mechanical dyssynchrony, perfusion heterogeneity, and LV remodeling/function in patients with and without LBBB.
- To investigate the impact of microvascular dysfunction on these relationships.
Main Methods:
- PET myocardial perfusion imaging was used to analyze 233 LBBB patients and 932 controls.
- Key metrics included mechanical dyssynchrony (phase entropy), LV volumes, ejection fraction (EF), coronary vascular resistance (CVR), myocardial blood flow (MBF), myocardial flow reserve (MFR), and septal-to-lateral MBF ratio (SLR).
Main Results:
- LBBB patients exhibited greater dyssynchrony, larger LV volumes, lower EF, and impaired microvascular function (higher CVR, lower MBF, MFR, SLR) compared to controls.
- Phase entropy and SLR independently predicted LV volumes and EF, with SLR reduction effects amplified in LBBB.
- Phase entropy, MFR, and LVEF were independently associated with adverse outcomes (death or heart failure hospitalization).
Conclusions:
- Mechanical dyssynchrony and perfusion heterogeneity are independent predictors of adverse LV remodeling, irrespective of LBBB.
- Integrated imaging, assessing both dyssynchrony and perfusion, enhances cardiomyopathy stratification.
Aims:
Left bundle branch block (LBBB) is associated with mechanical dyssynchrony, heterogeneous perfusion, and adverse left ventricular (LV) remodelling. However, not all patients with LBBB develop cardiomyopathy, and dyssynchrony can occur without conduction defects. The role of microvascular dysfunction remains uncertain. We aimed to assess how mechanical dyssynchrony and perfusion heterogeneity relate to LV remodelling and function in patients with and without LBBB.
Methods And Results:
We analysed 233 patients with LBBB and 932 matched controls who underwent PET myocardial perfusion imaging, assessing mechanical dyssynchrony (phase entropy), LV volumes, and ejection fraction (EF); coronary vascular resistance (CVR), myocardial blood flow (MBF), myocardial flow reserve (MFR) as markers of microvascular function; and septal-to-lateral MBF ratio (SLR) as a measure of regional perfusion heterogeneity. Compared with controls, LBBB patients had greater dyssynchrony (56% vs. 40%), larger LV volumes, and lower EF (54% vs. 67%) (all P < 0.001), as well as higher stress CVR (37 vs. 34 mmHg/mL·min-1·g-1), and lower MBF (2.4 vs. 2.6 mL/min/g), MFR (2.4 vs. 2.6), and SLR (0.95 vs. 1.00) (all P < 0.05). Among patients with dyssynchrony, SLR <1.0 identified greater remodelling. In multivariable regression, phase entropy and SLR independently predicted LV volumes and EF, with adverse effects of SLR reduction amplified in LBBB (interaction P < 0.01). In Cox analysis, phase entropy (HR:1.02, P = 0.01), MFR (HR:0.62, P < 0.001), and LVEF (HR:0.97, P < 0.001) were independently associated with death or heart failure hospitalization, whereas LBBB was not.
Conclusion:
Mechanical dyssynchrony and perfusion heterogeneity independently predict adverse LV remodelling, irrespective of LBBB. Integrated imaging improves cardiomyopathy stratification.
More Related Videos
12:45Benefits of Cardiac Resynchronization Therapy in an Asynchronous Heart Failure Model Induced by Left Bundle Branch Ablation and Rapid Pacing
Published on: December 11, 2017
07:13A Rat Model of Pressure Overload Induced Moderate Remodeling and Systolic Dysfunction as Opposed to Overt Systolic Heart Failure
Published on: April 30, 2020
Related Concept Videos
Heart Failure II: Pathophysiology
Cardiomyopathy III: Hypertrophic Cardiomyopathy