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Published on: August 25, 2023
Myocardial perfusion and flow reserve in the asynchronous heart: mechanistic insight from a computational model
Anneloes G Munneke1, Joost Lumens1, Theo Arts1
1Department of Biomedical Engineering, CARIM School for Cardiovascular Diseases, Maastricht University, Maastricht, The Netherlands.
Insights
Myocardial oxygen demand and supply coupling persists during asynchronous activation like left bundle branch block (LBBB). Chronic asynchronous activation leads to wall growth, homogenizing myocardial perfusion and flow reserve by adjusting oxygen demand.
Area of Science:
- Cardiovascular Physiology
- Computational Biology
- Medical Imaging
Background:
- The relationship between myocardial oxygen demand and supply is well-established but debated during asynchronous activation, such as in left bundle branch block (LBBB).
- The impact of chronic asynchronous activation on cardiac wall growth and its influence on myocardial perfusion distribution is not fully understood.
Purpose of the Study:
- To investigate the persistence of myocardial oxygen demand-supply coupling under asynchronous activation using a computational model.
- To determine if cardiac wall growth due to chronic asynchronous activation can explain variations in myocardial perfusion.
Main Methods:
- Developed a modeling framework coupling cardiac mechanics and perfusion, incorporating coronary autoregulation.
- Simulated regional coronary flow based on demand estimated from fiber stress-strain.
- Adapted left ventricular wall segment volumes to achieve homogeneous oxygen demand per tissue weight under chronic asynchronous activation.
Main Results:
- Decreased oxygen demand and supply in early activated regions; increased in late-activated regions.
- Regional hyperemic flow remained unaffected, but myocardial flow reserve decreased with increased oxygen demand and reduced wall thickness.
- Septal hypoperfusion in LBBB appears to be an autoregulatory response to reduced oxygen demand.
Conclusions:
- Oxygen demand-driven remodeling explains asymmetric hypertrophy and homogenization of myocardial perfusion and flow reserve.
- Inconsistencies in myocardial perfusion and flow reserve in asynchronous activation are explained by dyssynchrony, hypertrophy, and imaging modality.
- The model provides insights into resting and hyperemic myocardial flow during acute and chronic asynchronous activation.
Abstract:
The tight coupling between myocardial oxygen demand and supply has been recognized for decades, but it remains controversial whether this coupling persists under asynchronous activation, such as during left bundle branch block (LBBB). Furthermore, it is unclear whether the amount of local cardiac wall growth, following longer-lasting asynchronous activation, can explain differences in myocardial perfusion distribution between subjects. For a better understanding of these matters, we built upon our existing modeling framework for cardiac mechanics-to-perfusion coupling by incorporating coronary autoregulation. Regional coronary flow was regulated with a vasodilator signal based on regional demand, as estimated from regional fiber stress-strain area. Volume of left ventricular wall segments was adapted with chronic asynchronous activation toward a homogeneous distribution of myocardial oxygen demand per tissue weight. Modeling results show that 1) both myocardial oxygen demand and supply are decreased in early activated regions and increased in late-activated regions; 2) but that regional hyperemic flow remains unaffected; while 3) regional myocardial flow reserve (the ratio of hyperemic to resting myocardial flow) decreases with increases in absolute regional myocardial oxygen demand as well as with decreases in wall thickness. These findings suggest that septal hypoperfusion in LBBB represents an autoregulatory response to reduced myocardial oxygen demand. Furthermore, oxygen demand-driven remodeling of wall mass can explain asymmetric hypertrophy and the related homogenization of myocardial perfusion and flow reserve. Finally, the inconsistent observations of myocardial perfusion distribution can primarily be explained by the degree of dyssynchrony, the degree of asymmetric hypertrophy, and the imaging modality used.NEW & NOTEWORTHY This versatile modeling framework couples myocardial oxygen demand to oxygen supply and myocardial growth, enabling simulation of resting and hyperemic myocardial flow during acute and chronic asynchronous ventricular activation. Model-based findings suggest that reported inconsistencies in myocardial perfusion and flow reserve responses with asynchronous ventricular activation between patients can primarily be explained by the degree of dyssynchrony and wall mass remodeling, which together determine the heterogeneity in regional oxygen demand and, hence, supply with autoregulation.
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