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Why is the subendocardium more vulnerable to ischemia? A new paradigm
Dotan Algranati1, Ghassan S Kassab, Yoram Lanir
1Faculty of Biomedical Engineering, Technion, Israel Institute of Technology, Haifa, Israel.
Insights
Subendocardial vulnerability during myocardial ischemia arises from vascular differences. Reduced perfusion pressure causes blood flow redistribution due to higher subendocardial vascular compliance, worsening ischemia.
Area of Science:
- Cardiovascular Physiology
- Biomedical Engineering
- Myocardial Perfusion Dynamics
Background:
- Myocardial ischemia exhibits transmural heterogeneity, with the subendocardium being more susceptible.
- Stenosis leads to reduced perfusion pressure and blood flow redistribution, increasing subendocardial vulnerability.
Purpose of the Study:
- To investigate the role of subendocardial vascular compliance in flow redistribution during reduced perfusion pressure.
- To test the hypothesis that higher compliance of subendocardial vasculature causes flow redistribution.
Main Methods:
- Network flow simulation using measured coronary anatomy, vessel flow, mechanics, and myocardium-vessel interactions.
- Quantification of flow redistribution via the subendocardial-to-subepicardial perfusion ratio change under a 60-mmHg perfusion pressure reduction.
Main Results:
- Myocardial contraction increases compressive loading, lowering transvascular pressure and increasing subendocardial vascular compliance.
- A 20% drop in the subendocardial-to-subepicardial flow ratio was observed due to nonlinear vessel compliance.
- Thinner subendocardial vessel walls enhance vascular compliance and flow redistribution.
Conclusions:
- Subendocardial vulnerability is primarily due to vascular compliance differences caused by extravascular loading and vessel wall thickness.
- Reducing heart rate or left ventricular pressure can improve subendocardial perfusion under low perfusion pressure conditions.
Abstract:
Myocardial ischemia is transmurally heterogeneous where the subendocardium is at higher risk. Stenosis induces reduced perfusion pressure, blood flow redistribution away from the subendocardium, and consequent subendocardial vulnerability. We propose that the flow redistribution stems from the higher compliance of the subendocardial vasculature. This new paradigm was tested using network flow simulation based on measured coronary anatomy, vessel flow and mechanics, and myocardium-vessel interactions. Flow redistribution was quantified by the relative change in the subendocardial-to-subepicardial perfusion ratio under a 60-mmHg perfusion pressure reduction. Myocardial contraction was found to induce the following: 1) more compressive loading and subsequent lower transvascular pressure in deeper vessels, 2) consequent higher compliance of the subendocardial vasculature, and 3) substantial flow redistribution, i.e., a 20% drop in the subendocardial-to-subepicardial flow ratio under the prescribed reduction in perfusion pressure. This flow redistribution was found to occur primarily because the vessel compliance is nonlinear (pressure dependent). The observed thinner subendocardial vessel walls were predicted to induce a higher compliance of the subendocardial vasculature and greater flow redistribution. Subendocardial perfusion was predicted to improve with a reduction of either heart rate or left ventricular pressure under low perfusion pressure. In conclusion, subendocardial vulnerability to a acute reduction in perfusion pressure stems primarily from differences in vascular compliance induced by transmural differences in both extravascular loading and vessel wall thickness. Subendocardial ischemia can be improved by a reduction of heart rate and left ventricular pressure.
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