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Biomedical subjects

C Byhahn

Publications and source records attributed to C Byhahn.

39 records · Page 3Linked to original sources

[Inhalation of nitric oxide in severe lung failure].

Despite intensive therapeutic efforts, adult respiratory distress syndrome (ARDS) is still associated with a lethality ranging from 50 to 80%. Besides hypoxemia, fatal outcome is caused by myocardial insufficiency due to a progressive decrease in pulmonary vascular conductance. Inhalation of NO can selectively dilate pulmonary vessels in ventilated lung regions, thus increasing mean pulmonary artery conductance and decreasing venous admixture. This study determines the effects of NO inhalation in patients with severe ARDS on pulmonary gas exchange, haemodynamics and mortality. Twenty surgical patients (mean age 50.3 +/- 9.25 years) with severe ARDS (Murray score 3.4 +/- 0.3) were treated with variable concentrations of NO during mechanical ventilation with continuous positive pressure. Pulmonary artery catheters were used to measure pressures, flow and venous admixture. Mortality with NO inhalation was compared with that of previous ARDS patients (n = 20) who had not received NO. Mean duration of NO inhalation was 120.1 +/- 33.12 hours (n = 20) (range 40 to 254 hours). Mean NO concentration during the first hour of delivery was 18.5 +/- 3.88 ppm. Sixteen patients had FiO2 of 1.0 when NO was started. Within the first hour of NO inhalation, the PaO2/FiO2 ratio increased from 82.1 +/- 10.28 to 124.6 +/- 28.18. Eighteen patients were responders. Mean ventilatory pressure was lowered. Oxygenation improvement was most marked during the first 36 hours and then gradually declined. Despite the significant increase in NO related oxygenation, pulmonary artery pressures did not consistently decrease. Sixteen patients in the NO group died. In the group without NO 15 patients died. Compared with ARDS patients of similar severity not receiving NO, the NO-treated patients had the same lethality. In severe ARDS, oxygenation significantly improves with the initiation of NO inhalation, but this effect declines over time. With NO, FiO2 and ventilatory pressures can be lowered. Whether the theoretically reduced oxygen toxicity and the reduced invasiveness of mechanical ventilation with NO reduces patient mortality must be determined in larger patient groups.

Administration, Inhalation↗

[Exposure of recovery room personnel to inhalation anesthetics].

Both desflurane and sevoflurane have a favourable blood/gas distribution coefficient. There is concern, however, that environmental contamination is higher when these agents are employed since they must be used in relatively high concentrations. Our study seeks to determine the degree of exposure of recovery room staff to trace amounts of these two agents. Two hundred and seven surgical patients were included in the study. The recovery room studied had a volume of 243 cubic metres. The hourly fresh air supply for this room was 1,845 cubic metres, which results in 7.6 air exchanges per hour without air return. Measurements of trace concentrations of the inhalational agents were taken for 12 days. Concentrations of these anaesthetics were assessed in the recovery room with a real-time infrared spectrometer every 90 seconds. Mean exposure to nitrous oxide in the recovery room was 11.5 +/- 3.97 ppm and to isoflurane 1.4 +/- 0.31 ppm. All measured values were below the standard German threshold values. Trace concentrations of desflurane were 2.8 +/- 0.84 ppm and of sevoflurane 3.2 +/- 0.62 ppm. We conclude that the exposure to the inhalational anaesthetics in the climatised recovery room was low. The threshold values of 100 ppm for nitrous oxide and 10 ppm for isoflurane recommended by German law were not exceeded. When the new volatile anaesthetics are used, exposure of recovery room staff to trace concentrations of these agents is higher, but the concentrations do not exceed the levels allowed applicable German health regulations.

Air Pollutants, Occupational↗

[Maternal protection law and exposure of personnel in the recovery room and surgical intensive care unit by inhalation anesthetics].

UNLABELLED: According to Section 4 of the German maternity law (MuSchG), pregnant and nursing women are not allowed to work in places where they may be exposed to hazardous gases. Due to MuSchG these women are often effered work in the recovery room (RR) and the surgical intensive-care unit (ICU). The present study examined the occupational exposure in the RR and the ICU to nitrous oxide, isoflurane and the new volatile agents desflurane and sevoflurane in accordance with the German work place safety and maternity laws. METHODS: Trace concentrations of inhalational agents which 10 (ICU) and 207 (RR) patients exhaled after anaesthesia were measured in the RR air and the rooms of the ICU. Measurements were effected with a real-time infrared spectrometer continuously every 90 seconds for period of 6 (ICU) and 14.5 (RR) hours. RESULTS: The mean concentrations exceeded both in RR and ICU the legal limits of workplace concentrations prescribed by the German maternity law. Concentrations for both desflurane and seroflurane were up to more than twice as high as those of isoflurane. Exposition levels at the ICU and in the RR exceeded those measured in the operating theatre. The ICU personnel had a higher exposure to anaesthetic gases than those working in the RR. CONCLUSION: To reduce the working-place concentrations below the legal threshold it is necessary to use local scavenging devices in addition to appropriate ventilation systems. According to our data, pregnant and nursing women should not be allowed to work in the RR or to nurse mechanically ventilated patients after surgery in the ICU.

Abnormalities, Drug-Induced↗