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Updated: Feb 17, 2026

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Published on: July 29, 2020
Integrative model of coronary flow in anatomically based vasculature under myogenic, shear, and metabolic regulation
Ravi Namani1, Ghassan S Kassab2, Yoram Lanir3
1Faculty of Biomedical Engineering, Technion-Israel Institute of Technology, Haifa, Israel.
Insights
This study presents an integrative biophysical model of coronary blood flow regulation. The model reveals how vessel mechanics, myocardial loading, and metabolic factors interact to maintain adequate heart oxygen supply.
Area of Science:
- Cardiovascular Physiology
- Biophysics
- Computational Biology
Background:
- Coronary blood flow regulation is vital for matching myocardial oxygen demand to cardiac workload.
- Existing models lack integration of complex factors like vessel mechanics and heterogeneous loading.
- Understanding coronary flow regulation is key to addressing cardiovascular pathologies.
Purpose of the Study:
- To develop an integrative biophysical model of coronary flow regulation.
- To incorporate realistic coronary vasculature morphology, myocardial loading, and multiple regulatory mechanisms.
- To analyze the interplay of myogenic, shear, and metabolic controls on coronary blood flow.
Main Methods:
- Developed a computational model of the coronary vasculature.
- Integrated passive vessel properties, transmural myocardial loading, and active regulatory mechanisms (myogenic, shear, metabolic).
- Simulated coronary blood flow under varying conditions and analyzed regulatory contributions.
Main Results:
- The model accurately predicts autoregulation, reduced flow heterogeneity, and flow reserve.
- Metabolic and myogenic regulations are primary drivers, with shear having a secondary role.
- Myocardial loading enhances coronary flow reserve and the autoregulation pressure range.
Conclusions:
- The integrative model provides novel insights into coronary blood flow regulation.
- It highlights the significant roles of metabolic and myogenic mechanisms.
- The model serves as a tool for investigating coronary physiopathology.
Abstract:
Coronary blood flow is regulated to match the oxygen demand of myocytes in the heart wall. Flow regulation is essential to meet the wide range of cardiac workload. The blood flows through a complex coronary vasculature of elastic vessels having nonlinear wall properties, under transmural heterogeneous myocardial extravascular loading. To date, there is no fully integrative flow analysis that incorporates global and local passive and flow control determinants. Here, we provide an integrative model of coronary flow regulation that considers the realistic asymmetric morphology of the coronary network, the dynamic myocardial loading on the vessels embedded in it, and the combined effects of local myogenic effect, local shear regulation, and conducted metabolic control driven by venous O2 saturation level. The model predicts autoregulation (approximately constant flow over a wide range of coronary perfusion pressures), reduced heterogeneity of regulated flow, and presence of flow reserve, in agreement with experimental observations. Furthermore, the model shows that the metabolic and myogenic regulations play a primary role, whereas shear has a secondary one. Regulation was found to have a significant effect on the flow except under extreme (high and low) inlet pressures and metabolic demand. Novel outcomes of the model are that cyclic myocardial loading on coronary vessels enhances the coronary flow reserve except under low inlet perfusion pressure, increases the pressure range of effective autoregulation, and reduces the network flow in the absence of metabolic regulation. Collectively, these findings demonstrate the utility of the present biophysical model, which can be used to unravel the underlying mechanisms of coronary physiopathology.
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