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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
Changes in regional myocardial volume during the cardiac cycle: implications for transmural blood flow and cardiac
Hiroshi Ashikaga1, Benjamin A Coppola, Katrina G Yamazaki
1Department of Medicine and Bioengineering, University of California, San Diego, La Jolla, CA, USA. ha8000@gmail.com
Insights
Myocardial volume changes significantly during the cardiac cycle, exceeding estimates from blood flow alone. This suggests internal blood-filled spaces within the heart muscle, impacting cardiac mechanics.
Area of Science:
- Cardiovascular Physiology
- Cardiac Mechanics
- Myocardial Function
Background:
- Previous studies noted systolic myocardial volume reduction.
- Quantitative analysis of myocardial volume changes during the cardiac cycle at high resolution was lacking.
Purpose of the Study:
- To quantitatively analyze the time course of myocardial volume changes in the canine left ventricle (LV) during the cardiac cycle.
- To investigate the relationship between myocardial volume changes, pacing, and intramyocardial pressure.
Main Methods:
- Used transmurally implanted markers and biplane cineradiography (8 ms/frame) in vivo.
- Studied the anterior mid-left ventricular wall in 14 normal canine hearts.
- Utilized atrial and left ventricular (LV) pacing protocols.
Main Results:
- A significant transmural gradient in maximum volume decrease was observed during atrial pacing (subepicardium, midwall, subendocardium).
- Myocardial volume increase during diastole was substantially greater than reported myocardial blood flow.
- In the early activated region during LV pacing, myocardial volume decreased before LV pressure increased.
Conclusions:
- Myocardial volume changes exceed estimates based on average transmural blood flow, implying existence of blood-filled spaces within the myocardium.
- These spaces may communicate with the ventricular lumen.
- Myocardial volume changes are likely driven by myocyte contraction impacting microvasculature, not solely intramyocardial tissue pressure.
Abstract:
Although previous studies report a reduction in myocardial volume during systole, myocardial volume changes during the cardiac cycle have not been quantitatively analyzed with high spatiotemporal resolution. We studied the time course of myocardial volume in the anterior mid-left ventricular (LV) wall of normal canine heart in vivo (n = 14) during atrial or LV pacing using transmurally implanted markers and biplane cineradiography (8 ms/frame). During atrial pacing, there was a significant transmural gradient in maximum volume decrease (4.1, 6.8, and 10.3% at subepi, midwall, and subendo layer, respectively, P = 0.002). The rate of myocardial volume increase during diastole was 4.7 +/- 5.8, 6.8 +/- 6.1, and 10.8 +/- 7.7 ml.min(-1).g(-1), respectively, which is substantially larger than the average myocardial blood flow in the literature measured by the microsphere method (0.7-1.3 ml.min(-1).g(-1)). In the early activated region during LV pacing, myocardial volume began to decrease before the LV pressure upstroke. We conclude that the volume change is greater than would be estimated from the known average transmural blood flow. This implies the existence of blood-filled spaces within the myocardium, which could communicate with the ventricular lumen. Our data in the early activated region also suggest that myocardial volume change is caused not by the intramyocardial tissue pressure but by direct impingement of the contracting myocytes on the microvasculature.
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