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Updated: Jul 4, 2026

In Vivo Quantitative Assessment of Myocardial Structure, Function, Perfusion and Viability Using Cardiac Micro-computed Tomography
Published on: February 16, 2016
Coronary structure and perfusion in health and disease
Jos Spaan1, Christina Kolyva, Jeroen van den Wijngaard
1Department of Medical Physics, Academic Medical Center, University of Amsterdam, Meibergdreef 15, 1105 AZ Amsterdam, The Netherlands. j.a.spaan@amc.uva.nl
Insights
Understanding coronary circulation is key to diagnosing heart conditions. Realistic models are crucial for interpreting pressure and flow data from guide wires used in catheterization labs.
Area of Science:
- Cardiovascular Physiology
- Medical Imaging and Diagnostics
Background:
- Coronary circulation distributes blood to the heart muscle.
- Atherosclerosis and microvascular disease can impede myocardial perfusion.
- Early disease stages are compensated by resistance vessel dilation, but this reserve is limited.
Purpose of the Study:
- To highlight the importance of realistic models for interpreting coronary circulation data.
- To emphasize the need for accurate assessment of coronary flow impediments.
Main Methods:
- Utilizing guide wires with pressure and flow velocity sensors in the catheterization laboratory.
- Positioning sensors distal to stenosis to gather data.
- Developing and employing model-dependent interpretation of signals.
Main Results:
- Sensor data provide insights into stenosis impact on coronary flow.
- Microcirculation status can be evaluated using these signals.
- Model dependency necessitates realistic anatomical and physiological representations.
Conclusions:
- Accurate interpretation of coronary flow and microcirculation requires realistic physiological models.
- Advanced diagnostic tools necessitate sophisticated modeling for clinical application.
Abstract:
Blood flow is distributed through the heart muscle via a system of vessels forming the coronary circulation. The perfusion of the myocardium can be hampered by atherosclerosis creating localized obstructions in the epicardial vessels or by microvascular disease. In early stages of the disease, these impediments to blood flow are offset by dilation of the resistance vessels, which normally compensates for a decrease in perfusion pressure or increased metabolism. However, this dilatory reserve can become exhausted, which in general occurs first at the deeper layers of the heart wall where intramural vessels are subjected to compressive forces related to heart contraction. In the catheterization laboratory, guide wires of 0.33 mm diameter are available that are equipped with a pressure and flow velocity sensor at the tip, which can be positioned distal to the stenosis. These signals provide information about the impediment of the stenosis on coronary flow and allow for the evaluation of the status of the microcirculation. However, the interpretation of these signals is strongly model-dependent and therefore it is of paramount importance to develop realistic models reflecting the anatomy and unique physiology of the coronary circulation.
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