The physiology of external cardiac massage: high-impulse cardiopulmonary resuscitation

Circulation
|July 1, 1984
PubMed

Insights

Optimizing cardiopulmonary resuscitation (CPR) involves chest compression force and rate. Moderate force and higher rates maximize cardiac output and maintain coronary blood flow during CPR.

Area of Science:

  • Cardiology
  • Emergency Medicine
  • Physiology

Background:

  • Cardiopulmonary resuscitation (CPR) is a critical intervention for cardiac arrest.
  • Understanding the hemodynamics of CPR is essential for improving patient outcomes.

Purpose of the Study:

  • To investigate the effects of varying compression force and rate on left ventricular dynamics during CPR in a canine model.
  • To determine the primary mechanism driving stroke volume during manual external cardiac massage.

Main Methods:

  • Chronically instrumented dogs were used to measure cardiac output, coronary blood flow, cardiac dimensions, and pressures.
  • Manual external chest compressions were performed at varying forces (10-30 mm Hg intrathoracic pressure) and rates (60-150/min).
  • Data were analyzed to assess stroke volume, cardiac output, and coronary blood flow in relation to compression parameters.

Main Results:

  • Stroke volume increased with compression force up to approximately 20 mm Hg, then plateaued or declined.
  • Increasing compression rate significantly increased total cardiac output (e.g., 975 ml/min at 150/min).
  • Coronary blood flow was maintained at higher compression rates (75% of control at 150/min), primarily during non-compression periods.

Conclusions:

  • Direct cardiac compression, not just intrathoracic pressure, is the primary determinant of stroke volume during CPR.
  • Optimal CPR involves moderate compression force and increased compression rate to maximize cardiac output while preserving coronary perfusion.
  • Findings in dogs correlated with increased blood pressure in human CPR patients at faster compression rates.

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