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.

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