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At least 19 recordsLinked to original sources

Clinical implications of blood gas analysis of chest tube drainage.

Blood gas analysis of chest tube drainage following thoracostomy for experimental and clinical penetrating chest injuries was evaluated to determine its usefulness in predicting the etiology of the injury. Twenty dogs were divided into four groups and sustained right chest injury as follows: Group I--closed chest lung laceration; Group II--open chest lung laceration; Group IIII-gunshot wounds; Group IV--thoracotomy and injection of autologous, mixed venous blood. All animals and 14 patients who sustained penetrating chest injury were made simultaneously from chest tube draininage, systemic artery, and central vein in all dogs and patients. Eight patients (Group A) had pneumothorax; six patients (Group B) did not. Mean control canine aortic PO2 and pulmonary arterial PO2 values in Group I did not differ significantly from those in the other three canine groups, nor from the two human groups. Group II dogs exhibited chest tube PO2 which was significantly (p less than 0.01) above aortic PO2. In Group IV, chest tube PO2 was increased significantly above pulmonary arterial blood. Patients without pneumothorax had values for PO2 in chest tube drainage and aorta which were not significantly different, whereas when pneumothorax was present, PO2 of chest tube drainage was significantly higher than that of aortic PO2. Thus blood gas determinations on chest tube drainage may reflect the nature of the injury; however, the presence of air in the pleural space can result in oxygenation of contained blood well above systemic arterial levels.

Animals

Non-polarographic blood gas analysis. II. In vivo evaluation of gas chromatograph system.

Evaluation of a new system, based on gas chromatography, providing arterial blood gas tensions without requiring drawn blood samples is continued in an animal model. A series of in vivo dog experiments is discussed evaluating flow dependence and other performance characteristics. Results confirm the laboratory bench performance reported earlier; clinical trials are now indicated.

Animals

[Heparin-induced changes in blood gas analysis (author's transl)].

In modern blood gas analysis heparin is used for preventing coagulation in the syringe and the analyzer. If the amount of heparin added is too large the pH of the blood sample falls and so an artificial metabolic acidosis is induced. Consequently the amount of heparin used should be just enough to prevent blood coagulation without changing appreciably the acid-base status of the sample. High concentrations of inspired oxygen have no additional effect on the ability of heparin to alter the pH values.

Acid-Base Equilibrium

[Non-invasive determination of oxygen saturation with the oxygenmet pulse wave oximeter on fingers, metacarpus and wrist of infants. Comparison with the oxygen saturation calculated from the pH and pO2 of the blood gas analysis (author's transl)].

Oxygen saturation was determined non-invasively with the oxygenmet pulse wave oximeter 1471 and mathematically from the pH and pO2 of the blood gas analysis. The determination of the oxygen saturation by the aid of the oximetric method was carried out on fingers, metacarpus and wrist of 80 infants (male = 44, female = 36 - ages: 1 day - 1 year and 8 months). Blood gas analysis was done just behind the oximetric analysis and oxygen saturation was calculated from the pH and pO2. The comparison of the oxygen saturations determined non-invasively on fingers, metacarpus and wrist among themselves, showed no statistical significant differences. Also no statistical significant differences were observed between the results obtained with the pulse wave oximeter and the results calculated from the blood gas analysis. The comparison of the oxygen saturations determined with the oxygenmet oximeter (mean of fingers, metacarpus, wrist) with the oxygen saturations calculated from the blood gas analysis showed a very close correlation. The correlation coefficient was 0.930.

Blood Gas Analysis

Regional quality control survey of blood-gas analysis.

We undertook an external quality control survey of blood-gas analysis in 16 laboratories at 13 hospitals. All samples were prepared in the laboratories under investigation by equilibration of blood or serum with gas mixtures of known composition. pH of serum was measured with no significant bias but with an SD of random error 0.026 pH units, which was almost twice the SD of the reference range (0.015). An acceptable random error (half SD of reference range) was not obtained in a longitudinal internal quality control suvey although there were acceptable results for buffer pH in both field and internal surveys. Blood PO2 was measured with no significant bias but with SD of random error 1.38 kPa which reduced to 0.72 kPa by excluding one egregious result. The latter value was just over half of the SD of the reference range (1.2 kPa). PCO2 of blood was also measured without significant bias but with a much smaller SD of random error of 0.28 kPa (by excluding one egregious result), which was again just over half the SD of the reference range (0.51 kPa). Measurements of blood PO2 and PCO2 seem generally acceptable in relation to their respective reference ranges but measurements of pH were unsatisfactory in both internal and external trials.

Blood Gas Analysis

[Cardiac output, blood gas analysis and the acid-base state of the blood in chronic cor pulmonale].

In 61 patients with chronic cor pulmonale with compensation and decompensation of circulation, the stroke and minute heart volume were studied as well as the indices, characterizing the blood-gas contents and acid-base blood state. The minute heart volume in the patients examined proved to be with normal values. Stroke heart volume is decreased in all patients examined with chronic cor pulmonale. The acceleration of heart activity enables the maintenance of normal minute volume. Hypoxemia has a cardiac depressive effect as regards minute volume and heart rate. The moderate hypercapnia has a certain stimulating effect on heart. A direct proportional correlation exists between the hypercapnia degree and the tendency of minute volume increase and especially of heart rate. The campaign against hypoxemia is an essential element in the prophylaxis and early treatment of chronic cor pulmonale.

Acid-Base Equilibrium

Interpretation of blood gas analysis by physicians in a community teaching hospital.

Forty-two interns and residents on the staff of a community teaching hospital were questioned to assess their understanding of blood gas abnormalities. Misunderstandings were such that 24% of the residents and interns might have given inadequate care had their interpretations dictated practice. Few therapeutic misadventures in fact occurred, largely because of supervision. Even without supervision, it is unlikely that much harm would have come about, partly because pattern recognition and rules of thumb provided adequate guidance and partly because no notice was taken of the results of the blood gas analysis anyway. Those who wish to promote rational practice should direct their educational efforts to improved understanding of the mechanisms of hypoxaemia and of the chemical, physiological and pathophysiological interactions of PCO2, bicarbonate and pH in the various acid-base disorders.

Blood Gas Analysis

Inline blood gas analysis by gas chromatography in patients during and after coronary artery surgery.

A system was evaluated of measuring Pao2 and Pao2 by an inline sensor in the brachial artery and gas chromatography. Eight patients having coronary artery vein grafts were studied during anaesthesia, operation, perfusion and for 24 hours afterward. Compared to conventional blood gas analysis by polarography (electrodes), the chromatographic method gave readings for Pao2 which were not significantly different during normothermia. During hypothermic perfusion, the chromatographic system read significantly higher than the bench electrode, due at least in part to a difference in temperature correction. For Pao2 the correlation between the two methods was close and differences were clinically insignificant. The Sentorr blood-gas analyser provides a sensitive, accurate indicator of changes in oxygenation, ventilation and circulation during anaesthesia and in the intensive care unit.

Anesthesia, Inhalation