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Biomedical subjects

L Heyer

Publications and source records attributed to L Heyer.

7 recordsLinked to original sources

Effects of prone position on alveolar recruitment and oxygenation in acute lung injury.

OBJECTIVE: To investigate the effects of prone position (PP) on alveolar recruitment and oxygenation in acute respiratory failure. DESIGN: Prospective physiologic study. SETTING: Medical ICU two in a university hospital. PATIENTS: Twelve adult patients intubated and mechanically ventilated with medical primary acute lung injury/adult respiratory distress syndrome (ALI/ARDS) in whom PP was indicated. MEASUREMENTS AND RESULTS: We constructed the static inflation volume-pressure curves (V-P) of the respiratory system in the 12 patients and differentiated between lung and chest wall in ten of them. We determined the difference between end-expiratory lung volume on positive end-expiratory pressure (PEEP) and relaxation volume of the respiratory system on zero PEEP (delta FRC). The recruited alveolar volume was computed as the delta FRC times the ratio of static elastance of the respiratory system to the lung. These measurements together with arterial blood gases determination were made in supine position (SP1), after 1 h of PP and after 1 h of supine repositioning (SP2) at the same level of PEEP. The PaO2/FIO2 ratio improved from SP1 to PP (136 +/- 17 vs 204 +/- 24 mm Hg; p < 0.01). An PP-induced alveolar recruitment was found in five patients. The change in oxygenation correlated to the recruited volume. The static elastance of the chest wall decreased from 4.62 +/- 0.99 cmH2O/l in SP1 to 6.26 +/- 0.54 cmH2O/l in PP (p < 0.05) without any correlation to the change in oxygenation. CONCLUSIONS: Alveolar recruitment may be a mechanism of oxygenation improvement in some patients with acute hypoxemic respiratory failure. No correlation was found between change in oxygenation and chest wall elastic properties.

Adult↗

[The value of the CT scanner in intensive care].

Chest x-rays are often the first examination carried out at the bed side on patients in intensive care and their interpretation is often difficult. When CT scans are carried out they enable the mediastinum to be examined as well as the bronchi and pulmonary parenchyma. Using this technique to confirm a diagnosis or to explain those aspects on a standard x-ray which were difficult to analyse increasingly justifies the transportation of a patient the scanner. Spiral CT scans are particularly useful in the diagnosis of pulmonary emboli.

Humans↗

Sleep apnea-like syndrome induced by nitrous oxide inhalation in normal men.

To study the relationship between sedation and respiration under N2O, we performed polysomnographic recordings in 15 healthy men with documented normal breathing patterns during sleep. In a first study in five subjects, we found that 50% N2O in O2 compared to 50% O2 increased sleep latency to stage 2 (59 +/- 12 vs. 17 +/- 3 min), total sleep duration (59 +/- 12 vs. 26 +/- 11 min), depth of sleep and respiratory events during sleep (18 +/- 5 vs. 1 +/- 1/h of sleep). In a second study, ten subjects were exposed to N2O (30 and 50%) in O2 during two consecutive experimental periods. Eight subjects had EEG features of physiological sleep, but nevertheless exhibited a total of 181 respiratory events. Respiratory disturbance index (RDI) during sleep was similar under 30 and 50% N2O (25 +/- 7 and 25 +/- 5/h of sleep, respectively). Obstructive events predominated, except in three subjects during N2O 30% and one during N2O 50% exposure. We conclude that N2O can induce central and obstructive sleep apneas.

Administration, Inhalation↗

Carbon dioxide respiratory response during positive inspiratory pressure in COPD patients.

The aim of this study was to compare the effect of inspiratory pressure support (IPS) on the respiratory CO2 response in 13 stable COPD patients and in 13 normal subjects. Without IPS, the slopes of the ventilatory response to CO2 were lower in the patients than in the normal subjects (mean +/- SEM, 0.82 +/- 0.19 vs. 1.69 +/- 0.31 l.min-1.mmHg-1). When IPS was applied, both groups showed, at any level of end-tidal CO2 pressure, an increase in ventilation due to an increase in tidal volume (VT) associated with a decrease in occlusion pressure (P0.1). In addition, respiratory parameters (VE, VT, P0.1, inspiratory flow) were insensitive to CO2 as long as PETCO2 remained below a threshold which was slightly above the eupneic value. However, above this CO2-threshold, no differences in slopes were observed between the IPS and control conditions in either group, except for a decrease in the P0.1 slope during IPS in the COPD patients. In conclusion, IPS induced similar respiratory changes during CO2 response in stable COPD patients and in normal subjects. Above the eupneic value, IPS did not change the slope of the ventilatory response to CO2.

Adult↗

Noninvasive estimate of work of breathing due to the endotracheal tube.

BACKGROUND: Although evidence suggests that secretions lining the inner wall of the endotracheal tube (ETT) often reduce its cross-sectional area, no data are available on the work of breathing as affected by the ETT. A noninvasive method is proposed for estimating the additional work of breathing necessitated by the ETT in patients whose lungs are mechanically ventilated. This method (the acoustic-Blasius method) involves (1) determining the inner geometry of the ETT using the acoustic reflection method and (2) using these geometric data to solve the Blasius equation that characterizes the ETT pressure drop-flow relation. METHODS: To evaluate the acoustic-Blasius method in vivo, the authors computed the work of breathing due to the ETT in four healthy persons breathing through an ETT connected to a pressure-support device and in five tracheally intubated patients receiving mechanical assistance in the pressure-support mode. For the tracheally intubated patients, the reference value was the work calculated from the ETT pressure drop measured between the two ends of the ETT using a pressure catheter. RESULTS: In the healthy participants and the tracheally intubated patients, there was close agreement between inspiratory work per cycle values estimated by directly measuring the ETT pressure drop and calculated using the acoustic-Blasius method: The difference was consistently less than 0.08 joules (< 10% of the reference value). CONCLUSIONS: The data show that the acoustic-Blasius method allows noninvasive quantification of the ETT-related work of breathing in situ.

Humans↗

Do turbines with servo-controlled speed improve continuous positive airway pressure generation?

Nasal continuous positive airway pressure (CPAP) devices with a servo-mechanism to control pressure have recently been developed. We evaluated six such devices and three conventional systems in terms of effectiveness in maintaining constant pressure. Machines were tested with pressure levels of 5, 10 and 15 cmH2O. Dynamic behaviour was evaluated: 1) by calculating the imposed work of breathing during simulated breath generated by a sinusoidal pump; and 2) by following the fall in pressure after a transient flow of 1 l.s-1. Quasi-static behaviour was evaluated by simulating a predetermined air leak. Under dynamic conditions, work of breathing was lowest with one conventional nasal CPAP device and three servo-controlled nasal CPAP devices; whereas, the highest levels of work of breathing were recorded with two servo-controlled nasal CPAP devices. The pressure-time response to a transient flow yielded similar results, with a significant inverse correlation between pressure values observed after 300 ms and imposed work of breathing during simulated breathing (r = -0.91). Under quasi-static conditions, microprocessor servo-controlled devices exhibited the best performance. These results suggest that microprocessor servo-controlled nasal CPAP devices are not always the best systems for maintaining constant airway pressure in dynamic situations. However, they are more effective in ensuring maintenance of the desired pressure in the event of an air leak at the mask.

Equipment Design↗