Coronary blood flow can always be matched to the metabolic demand of the myocardium due to the regulation of vasoactive segments. Myocardial compressive forces play an important role in determining coronary blood flow but its impact on flow regulation is still unknown. The purpose of this study was to develop a coronary specified flow regulation model, which can integrate myocardial compressive forces and other identified regulation factors, to further investigate the coronary blood flow regulation behavior.A theoretical coronary flow regulation model including the myogenic, shear-dependent and metabolic responses was developed. Myocardial compressive forces were included in the modified wall tension model. Shear-dependent response was esti...
The major factors determining myocardial perfusion and oxygen delivery have been elucidated over the...
• Autoregulation is the term applied to the mechanism (s) which maintain blood flow through an organ...
Coronary blood flow is tightly regulated to ensure that myocardial oxygen delivery meets local metab...
Coronary blood flow can always be matched to the metabolic demand of the myocardium due to the regul...
Coronary blood flow can always be matched to the metabolic demand of the myocardium due to the regul...
Myogenic response, flow-dependent dilation, and direct metabolic control are important mechanisms co...
The heart is uniquely responsible for providing its own blood supply through the coronary circulatio...
Coronary blood flow adapts to metabolic demand ("metabolic regulation") and remains relatively const...
The phasic coronary arterial inflow during the normal cardiac cycle has been explained with simple (...
Myogenic responses (pressure-dependent contractions) of coronary arterioles play a role in autoregul...
This study was designed to define more accurately the respective influences of perfusion pressure an...
Phasic changes in intramyocardial tension during the cardiac cycle interrupt coronary blood flow (CB...
The coronary circulation is tightly regulated in order to ensure an adequate matching between myocar...
Abstract—The phasic coronary arterial inflow during the normal cardiac cycle has been explained with...
In normal tissues, blood supply is closely matched to tissue demand for wide ranges of oxygen demand...
The major factors determining myocardial perfusion and oxygen delivery have been elucidated over the...
• Autoregulation is the term applied to the mechanism (s) which maintain blood flow through an organ...
Coronary blood flow is tightly regulated to ensure that myocardial oxygen delivery meets local metab...
Coronary blood flow can always be matched to the metabolic demand of the myocardium due to the regul...
Coronary blood flow can always be matched to the metabolic demand of the myocardium due to the regul...
Myogenic response, flow-dependent dilation, and direct metabolic control are important mechanisms co...
The heart is uniquely responsible for providing its own blood supply through the coronary circulatio...
Coronary blood flow adapts to metabolic demand ("metabolic regulation") and remains relatively const...
The phasic coronary arterial inflow during the normal cardiac cycle has been explained with simple (...
Myogenic responses (pressure-dependent contractions) of coronary arterioles play a role in autoregul...
This study was designed to define more accurately the respective influences of perfusion pressure an...
Phasic changes in intramyocardial tension during the cardiac cycle interrupt coronary blood flow (CB...
The coronary circulation is tightly regulated in order to ensure an adequate matching between myocar...
Abstract—The phasic coronary arterial inflow during the normal cardiac cycle has been explained with...
In normal tissues, blood supply is closely matched to tissue demand for wide ranges of oxygen demand...
The major factors determining myocardial perfusion and oxygen delivery have been elucidated over the...
• Autoregulation is the term applied to the mechanism (s) which maintain blood flow through an organ...
Coronary blood flow is tightly regulated to ensure that myocardial oxygen delivery meets local metab...