Myocardial contractility in the echo lab: molecular, cellular and pathophysiological basis

Tonino Bombardini1

  • 1Department of Echocardiography, Institute of Clinical Physiology, National Council of Research, Pisa, Italy. tbombardini@yahoo.it

Cardiovascular Ultrasound
|September 10, 2005
PubMed

Insights

Assessing myocardial contractility in the intact heart is crucial. The pressure/volume relationship is a reliable index, but fails to account for heart rate. A noninvasive method is needed for heart failure patients.

Area of Science:

  • Cardiovascular Physiology
  • Cardiac Electrophysiology
  • Heart Failure Pathophysiology

Background:

  • Myocardial contractility, the heart muscle's intrinsic ability to generate force, is fundamentally regulated by intracellular calcium (Ca2+) concentrations.
  • Calcium ions enter myocardial cells via voltage-gated channels, triggering sarcoplasmic reticulum release and initiating the contraction-relaxation cycle.
  • Assessing contractility in vivo has evolved from isolated fiber studies to pressure/volume loop analysis in intact hearts.

Purpose of the Study:

  • To evaluate the pressure/volume relationship as a reliable index of myocardial contractility in intact circulation, independent of preload and afterload.
  • To identify the limitations of the pressure/volume relationship, specifically its failure to account for frequency-dependent contractility regulation.
  • To propose a practical, noninvasive index for assessing contractility changes with varying heart rates, particularly relevant in heart failure.

Main Methods:

  • Utilizing pressure/volume loops in animal studies and clinical settings to assess myocardial contractility.
  • Investigating the role of transmembrane Ca2+ entry and intracellular Ca2+ homeostasis in frequency-dependent contractility.
  • Examining gene expression changes in failing hearts, including the inversion of the force-frequency relation.

Main Results:

  • The pressure/volume relationship is a robust indicator of contractility in intact circulation, largely insensitive to preload and afterload variations.
  • Frequency-dependent regulation of contractility, mediated by Ca2+ influx and accumulation, is critical for short-term cardiac function.
  • Failing hearts exhibit altered gene expression, leading to a diminished force-frequency relation, where contractility slows with increasing heart rates.

Conclusions:

  • While the pressure/volume relationship is valuable, its inability to capture frequency-dependent effects necessitates further investigation.
  • The force-frequency relation is a sensitive indicator of early contractility alterations, especially in heart failure.
  • Noninvasive measurement of the pressure/volume ratio during stress echocardiography presents a promising solution for assessing contractility in a clinical setting with increasing heart failure prevalence.

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