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J Bisera

Publications and source records attributed to J Bisera.

34 records · Page 2Linked to original sources

Mechanism of blood flow generated by precordial compression during CPR. I. Studies on closed chest precordial compression.

The mechanism of forward flow produced by precordial compression during CPR was investigated with the aid of echocardiographic and hemodynamic measurements in anesthetized, mechanically ventilated domestic pigs. Both mitral and tricuspid valves opened during compression diastole and closed during compression systole. Valve motion persisted throughout resuscitation in 17 of 22 animals which were hemodynamically resuscitated. There was a 25 percent reduction in left ventricular area during compression systole. Maximum pressure generated during compression systole in the aorta exceeded that of the right atrium throughout the 12-min interval of precordial compression in successfully resuscitated animals. These observations provide evidence of direct cardiac compression as the mechanism accounting for effective forward blood flow during CPR. The persistence of valve function, chamber compression, and pressure gradients during precordial compression was predictive of successful resuscitation. The absence of these factors prognosticates failure of resuscitation and explains, in part, the inconsistency of prior reports.

Adult

Cardiopulmonary resuscitation in the rat.

A standardized method of cardiopulmonary resuscitation in rodents has been developed for anesthetized, mechanically ventilated rats. Ventricular fibrillation was induced and maintained by an alternating current delivered to the right ventricular endocardium. After 4 min of ventricular fibrillation, the chest was compressed with a pneumatic piston device. Eight of 14 animals were successfully resuscitated with DC countershock after 6 min of cardiac arrest. In confirmation of earlier studies from our laboratories in dogs, pigs, and human patients, this rodent model of cardiopulmonary resuscitation demonstrated large venoarterial [H+] and PCO2 gradients associated with reduced pulmonary excretion of CO2 during the low-flow state. Mean aortic pressure, coronary perfusion pressure, and end-tidal CO2 during chest compression were predictive of successful resuscitation.

Acid-Base Equilibrium

Expired carbon dioxide: a noninvasive monitor of cardiopulmonary resuscitation.

End-tidal CO2 concentration (ETCO2) may serve as a simple noninvasive measurement of the blood flow generated by precordial compression during cardiopulmonary resuscitation (CPR). In a mechanically ventilated porcine preparation of ventricular fibrillation, onset of fibrillation was associated with a rapid decrease in ETCO2 from 4.0 +/- 0.2% to less than 0.7 +/- 0.2%. With precordial compression, it increased to 1.9 +/- 0.3%. Animals that were successfully defibrillated after 12 min of CPR demonstrated an immediate increase in ETCO2. The ETCO2 increased from 1.9 +/- 0.3% to 4.9 +/- 0.3% over an interval of between 30 and 60 sec. These changes in ETCO2 were closely related to proportionally similar decreases and increases in cardiac output (CO), and a close correlation between ETCO2 and CO was demonstrated (r = .92). A similar highly significant correlation between ETCO2 and CO was also demonstrated during open-chest cardiac massage (r = .95). ETCO2 therefore serves as a noninvasive measure of pulmonary blood flow and therefore CO. In 17 successfully resuscitated animals. ETCO2 during precordial compression averaged 1.7 +/- 0.2%, whereas it was only 0.5 +/- 0.1% in five animals in whom resuscitation procedures were unsuccessful (p less than .001). Accordingly, ETCO2 prognosticates outcome during CPR and immediately identifies restoration of spontaneous circulation.

Animals

Selective acidosis in venous blood during human cardiopulmonary resuscitation: a preliminary report.

During experimental CPR, a marked venoarterial gradient in PCO2 has been reported. This is accompanied by a disproportionate decrease in venous pH and a simultaneous increase in arterial pH. This study includes a case report of human CPR in which simultaneous arterial and mixed venous blood gases were obtained before and after cardiac arrest. Similar venoarterial PCO2 gradients were observed subsequently in six additional patients during arrest. These clinical data indicate that arterial blood gases fail to reflect striking increases in venous PCO2 and decreases in pH due to respiratory acidosis on the venous side of the circulation.

Acidosis

Echocardiographic observations during cardiopulmonary resuscitation: a preliminary report.

Echocardiographic studies were conducted during CPR to establish whether blood flow through the heart was passive or whether cardiac compression accounted for forward blood flow. M-mode and two-dimensional echocardiographic studies were performed on anesthetized minipigs during external CPR and open-chest cardiac massage. With external compression, mitral valve closure was observed during compression systole and valve opening during compression diastole. The aortic valve opened during compression systole and closed during compression diastole. Identical observations were made during open-chest cardiac compression. Left ventricular area was computed during compression systole. A 24% reduction in the area of the left ventricle during precordial compression confirmed left ventricular ejection of blood. Saline tracer was injected into the right and left ventricles. Echocardiographic observation of the tracer demonstrated forward blood flow across the pulmonic and aortic outflow tracts during compression. There was minimal valvular regurgitation. These findings support the concept of cardiac compression as a mechanism for forward blood flow during open- and closed-chest CPR.

Animals

Cardiac output and end-tidal carbon dioxide.

Previous studies demonstrated selective increases in mixed venous carbon dioxide tension (PvCO2) during CPR in a porcine model of cardiac arrest. This was associated with a decrease in end-tidal carbon dioxide concentration (ETCO2), possibly due to a critical reduction in cardiac output and therefore pulmonary blood flow during CPR. We investigated the relationship between ETco2 and cardiac output before cardiac arrest and during CPR. Observations in 19 minipigs confirmed a high linear correlation between ETco2 and cardiac output. We conclude that the increase in Pvco2 and the concurrent decrease in ETco2 reflect a critical reduction in cardiac output, which reduces alveolar blood flow to the extent that carbon dioxide clearance by the lung fails to keep pace with systemic CO2 production.

Animals

End-tidal CO2 as a guide to successful cardiopulmonary resuscitation: a preliminary report.

Utilizing a well-established porcine model of cardiac arrest, we found that end-tidal CO2 concentration (ETCO2) strikingly decreased to approximately 24% of control levels, immediately after cardiac arrest and before precordial compression. During precordial compression, ETCO2 progressively increased to 46% of control values in successfully resuscitated animals but only to 26% in animals which failed to respond to resuscitation efforts. After successful resuscitation, ETCO2 rapidly returned to baseline values. These data indicate that ETCO2 may be a useful monitor for assessing the adequacy of CPR.

Animals

An "oncometer" of clinical measurement of colloid osmotic pressure of plasma.

Measurement of colloid osmotic pressure complements measurements of pulmonary artery wedge pressure for assessing the risks of pulmonary edema and constitutes an increasingly important reference for purposes of guiding selection of colloid or crystalloid fluids in patients with acute cardiac disease. We describe a simple device for its routine clinical measurement. A membrane, selectively impermeable to molecules of relative molecular mass (Mr) greater than 30000, is rigidly mounted between a sample chamber and a reference chamber filled with isotonic saline. A pressure transducer measures the negative pressure developed in the reference chamber and displays it on a digital panel meter. The sensor chamber accommodates samples of 50 to 300 microliter. Equilibration is completed within 2 min. A control solution of human serum albumin (50 g/liter) is measured to confirm the accuracy of calibration of the system, with reproducible readings of 25.9 g/cm2 within one SD (equivalent to 0.4 g/cm2). Technical simplicity of operation and modest costs of disposables have made feasible the routine measurement of colloid osmotic pressure.

Colloids