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Influence of anatomical dominance and hypertension on coronary conduit arterial and microcirculatory flow patterns: a
Jonathan P Mynard1, Joseph J Smolich2
1Heart Research, Clinical Sciences, Murdoch Childrens Research Institute, Parkville, Victoria, Australia; and Department of Paediatrics, University of Melbourne, Parkville, Victoria, Australia jonathan.mynard@mcri.edu.au.
Insights
Coronary artery dominance significantly impacts blood flow, especially in the right coronary artery, under hypertensive conditions. Left dominance has minimal effects on most coronary flows, highlighting complex hemodynamic interactions.
Area of Science:
- Cardiovascular Physiology
- Computational Biology
- Medical Imaging
Background:
- Coronary hemodynamics are influenced by regional and transmural factors.
- Left coronary arterial dominance is linked to increased cardiovascular risk.
- The impact of coronary dominance on flow patterns during hypertension is not well understood.
Purpose of the Study:
- To investigate the effects of left versus right coronary arterial dominance on regional blood flow.
- To analyze these effects under normotensive and hypertensive conditions.
- To explore the interplay between dominance, hypertension, and coronary flow dynamics.
Main Methods:
- Utilized a multiscale numerical model of the human coronary circulation.
- Simulated left and right dominant coronary anatomies.
- Compared flow patterns under normotensive, systemic, and pulmonary hypertension with adapted states.
Main Results:
- Right coronary arterial flow patterns were significantly altered by dominance and hypertension.
- Left coronary arterial and microvascular flows were minimally affected by dominance, except for circumflex flow.
- Systemic hypertension increased perfusion pressure but with regional variations and increased demands.
- Pulmonary hypertension negatively impacted right ventricular and septal flows, especially with increased metabolic demands.
Conclusions:
- Coronary arterial dominance and hypertension interact to modulate coronary hemodynamics.
- Right coronary dominance plays a crucial role in flow alterations during hypertension.
- Understanding these interactions is vital for assessing cardiovascular risk.
Abstract:
Coronary hemodynamics are known to be affected by intravascular and extravascular factors that vary regionally and transmurally between the perfusion territories of left and right coronary arteries. However, despite clinical evidence that left coronary arterial dominance portends greater cardiovascular risk, relatively little is known about the effects of left or right dominance on regional conduit arterial and microcirculatory blood flow patterns, particularly in the presence of systemic or pulmonary hypertension. We addressed this issue using a multiscale numerical model of the human coronary circulation situated in a closed-loop cardiovascular model. The coronary model represented left or right dominant anatomies and accounted for transmural and regional differences in vascular properties and extravascular compression. Regional coronary flow dynamics of the two anatomical variants were compared under normotensive conditions, raised systemic or pulmonary pressures with maintained flow demand, and after accounting for adaptations known to occur in acute and chronic hypertensive states. Key findings were that 1) right coronary arterial flow patterns were strongly influenced by dominance and systemic/pulmonary hypertension; 2) dominance had minor effects on left coronary arterial and all microvascular flow patterns (aside from mean circumflex flow); 3) although systemic hypertension favorably increased perfusion pressure, this benefit varied regionally and transmurally and was offset by increased left ventricular and septal flow demands; and 4) pulmonary hypertension had a substantial negative effect on right ventricular and septal flows, which was exacerbated by greater metabolic demands. These findings highlight the importance of interactions between coronary arterial dominance and hypertension in modulating coronary hemodynamics.
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