PubMed HealthSearch

Biomedical subjects

G Jenouri

Publications and source records attributed to G Jenouri.

13 recordsLinked to original sources

Acute effects of aerosolized metaproterenol on breathing pattern of patients with symptomatic bronchial asthma.

We studied the effect of two sequential puffs of metaproterenol (650 micrograms each puff) delivered with an auxiliary aerosol delivery system on the breathing pattern of patients with symptomatic bronchial asthma who were monitored noninvasively with respiratory inductive plethysmography. Particular attention was directed to respiratory center drive as reflected by mean inspiratory flow and minute ventilation. Both these components were elevated in the eight patients whose mean FEV1.0 was 1.43 L (45% predicted normal). Two puffs of metaproterenol produced a maximal increase over baseline in FEV1.0 of 50 +/- 25% (SD), whereas no change took place in FEV1.0 with placebo administration. This dose of metaproterenol did not alter heart rate nor blood pressure throughout the study period of 2 hours. Neither mean inspiratory flow, minute ventilation, nor any component of the breathing pattern changed with this partial reversal of bronchoconstriction. These results suggest that the neural mechanism accounting for heightened respiratory center drive in patients with symptomatic bronchial asthma does not wholly depend on bronchoconstriction.

Adult

Breathing pattern during induced bronchoconstriction.

The breathing patterns of normal subjects monitored with respiratory inductive plethysmography were investigated after mild increases in respiratory resistance provoked by aerosolized methacholine during natural breathing and while breathing on a mouthpiece to a pneumotachograph. First, during natural breathing, comparisons of inspiratory ventilation (VI), tidal volume (VT), frequency (f), inspiratory time (TI), fractional inspiratory time (TI/TT), and mean inspiratory flow (VT/TI) were made before and after aerosolized buffered saline and methacholine in a dose that reduced specific airway conductance (sGaw) by 35% (PD35). There was a significant increase in VT/TI and VI after methacholine, whereas VT, f, TI, and TI/TT were not consistently modified by saline or methacholine. Pretreatment with bronchodilators prevented changes in respiratory resistance (Rrs) as well as in breathing pattern after PD35 methacholine. On another day, Rrs, end-expiratory lung volume level, and breathing pattern during natural breathing were monitored after administration of predetermined doses of methacholine that reduced sGaw by 25% (PD25), PD35, and 55% (PD55). Increases in VT/TI and end-expiratory lung volume level paralleled the increases in Rrs after each dose of methacholine but not with saline control. VI increased along with Rrs at the PD25 and PD35 doses but plateaued at the PD55 dose while Rrs continued to rise. There were no changes in breathing pattern in subjects who breathed on a mouthpiece to a pneumotachograph after PD55 methacholine. Thus alterations of the breathing pattern due to mild-to-moderate degrees of bronchoconstriction are characterized by progressive rises of mean inspiratory flow (an index of respiratory center drive) and end-expiratory lung volume level (a measure of pulmonary hyperinflation), but VI plateaus at the more severe degree of bronchoconstriction.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult

Effects of abdominal and thoracic breathing on breathing pattern components in normal subjects and in patients with chronic obstructive pulmonary disease.

The purpose of this study was to assess the effect of voluntarily controlled breathing maneuvers on breathing pattern components measured noninvasively with the respiratory inductive plethysmograph. In normal subjects, these maneuvers included predominantly thoracic and abdominal patterns with and without visual reinforcement from video-displayed plots of rib cage versus abdominal loops. In patients with chronic obstructive pulmonary disease (COPD), only predominantly abdominal breathing without and with visual feedback was employed; the latter produced greater abdominal contribution to tidal volume. Voluntarily controlled breathing patterns led to increased minute ventilation (VI) in normal subjects because of variable changes of frequency and tidal volume. This increase in ventilation was achieved despite increased asynchronous and paradoxic motion between rib cage and abdominal excursions that would add to the work of breathing. Patients with COPD had heightened baseline respiratory center drive when compared with that in normal subjects, as evidenced by elevation of VI and mean respiratory flow (VT/TI). In contrast to normal subjects, abdominal breathing produced no change in VI and VT/TI for the group as a whole, but 6 of the 9 patients with COPD had decreases compared with natural breathing. This diminution of respiratory drive in some patients with COPD during voluntary abdominal breathing might relate to limitation of ventilatory response by the increased work of breathing caused by pulmonary hyperinflation, elevated airway resistance, and increased asynchronous and paradoxic motion of the rib cage to the abdominal excursions, and/or the mental activity required to perform the breathing maneuver might be inhibitory to respiratory drive.

Abdomen

Breathing pattern alterations with aerosolized buffered saline--effects of topical airway anesthesia.

Bronchoconstriction, measured by spirometry and body plethysmography, may occur with inhalation of aerosolized buffered saline (ABS) (0.5% sodium chloride and phosphate buffer) in asymptomatic patients with bronchial asthma. To estimate the prevalence and mechanism of this phenomenon, we employed continuous non-invasive monitoring of the breathing pattern to estimate changes of end-expiratory level, minute ventilation and mean inspiratory flow, which may be more sensitive albeit less specific indicators of bronchoconstriction. We studied normal and asymptomatic asthmatic subjects before and after ABS inhalation. Deep breaths of ABS had no effect on the breathing pattern in normals, but in all of the asthmatics increases of end-expiratory level, minute ventilation, tidal volume and mean inspiratory flow lasted at least 15 minutes. On another day, prior topical airway anesthesia in the asthmatic subjects prevented the changes in breathing pattern after ABS inhalation. Thus analysis of the breathing pattern suggests that bronchoconstriction or irritation of vagal airway receptors after inhalation of aerosolized buffered saline occurs to a high degree in asymptomatic asthmatic subjects because changes in breathing pattern are prevented by prior airway anesthesia which probably inactivates vagal afferent pathways.

Adult

Effect of positive end-expiratory pressure on breathing patterns of normal subjects and intubated patients with respiratory failure.

The aims of this study included assessment of accuracy of respiratory inductive plethysmography when pulmonary hyperinflation was induced by application of PEEP, and examination of breathing patterns of normal subjects, intubated patients requiring mechanical ventilation and intubated patients immediately before extubation during application of PEEP by demand valve and high gas flow reservoir bag systems. Validation of tidal volume (VT) and end-expiratory level measured with respiratory inductive plethysmography to simultaneous spirometry (SP) was achieved with PEEP levels up to 12.5 cm H2O in 7 normals. In 17 intubated patients, almost all VT values measured with respiratory inductive plethysmography fell within +/- 10% of SP even with 2 to 3 changes of body posture. In normal subjects, increasing levels of PEEP from the demand valve system produced nonprogressive rises of VT and mean inspiratory flow, falls of frequency and fractional inspiratory time (TI/TTOT), and no changes of minute ventilation (Vmin) nor mean expiratory flow. PEEP from the high gas flow reservoir bag system produced nonprogressive rises of VT and rib cage (RC) contribution to VT, and rises of Vmin and mean inspiratory and expiratory flows between 10.0 and 12.5 cm H2O of PEEP. Intubated patients requiring intermittent mandatory ventilation (IMV) had a rapid, shallow breathing pattern unaltered by PEEP levels delivered by either system up to 12.5 cm H2O despite increases of end-expiratory level. Intubated patients who were about to be extubated breathed with patterns closer to ambulatory normal subjects with the exception of their elevated RC contribution to VT.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult

Effect of naloxone on breathing pattern in patients with chronic obstructive pulmonary disease with and without hypercapnia.

Recent reports suggest that endogenously released endorphins may exert a modifying influence on respiratory center drive in patients with respiratory disease. In this report, we employed respiratory inductive plethysmography to noninvasively assess breathing patterns with particular attention to respiratory center drive as reflected by mean inspiratory flow. We studied 10 patients with documented chronic obstructive pulmonary disease (6 with hypercapnia and 4 with normocapnia) after treatment with placebo and the opiate antagonist, naloxone. No significant change in breathing pattern was observed in either patient group after treatment with placebo or naloxone, although individual patients displayed greater respiratory drive after naloxone than placebo. Therefore, endorphins do not exert a consistent influence on respiratory center output in patients with chronic obstructive pulmonary disease.

Aged

Validation of respiratory inductive plethysmography in patients with pulmonary disease.

The assumption that the respiratory system behaves with 2 df of motion in healthy persons allows calibration of respiratory inductive plethysmography (RIP) with spirometry (SP). To ascertain whether RIP could be calibrated by the same assumption in patients with lung disease, even though at least 3 df of motion are visualized (ie, upper and lower rib cage and upper and lower abdomen move out of phase), RIP was calibrated by a two-position calibration procedure and validated satisfactorily by simultaneous SP in the erect, semirecumbent, supine, and lateral decubitus positions. In lung disease, the contribution to tidal volume of regions moving independently of the combined rib cage and abdominal movements either is small or remains relatively constant with change of body posture. For clinical monitoring of the resting breathing pattern where patient movements cannot be restricted, respiratory inductive plethysmography can serve as a reliable semiquantitative, noninvasive ventilatory monitoring device.

Abdomen

Breathing patterns. 1. Normal subjects.

Ventilatory monitoring devices that require mouthpiece breathing produce a rise in tidal volume (VT), a fall in frequency (f) and alterations in periodicity and variability of breathing components. Together with the introduction of the respiratory inductive plethysmograph, a reliable noninvasive monitoring device of ventilation, major advances have taken place in understanding the significance of the components of the breathing pattern. We measured the breathing pattern of normal subjects utilizing respiratory inductive plethysmography and continuously processed these data with a microprocessor system. The mean values of the breathing pattern components in normal subjects were not affected by age, but the rhythmicity was more irregular in the elderly. The values of breathing pattern components obtained noninvasively by respiratory inductive plethysmography in normal subjects are fairly predictable in limits similar to other tests of pulmonary function.

Adult

Breathing patterns. 2. Diseased subjects.

We measured the breathing pattern of normal subjects, asymptomatic smokers, asymptomatic and symptomatic asthmatic patients, and patients with chronic obstructive pulmonary disease, restrictive lung disease, primary pulmonary hypertension and anxiety state utilizing respiratory inductive plethysmography. Respiratory rate was increased above the normal in smokers and in patients with COPD, restrictive lung disease and pulmonary hypertension, but remained normal in asthmatic patients. Inspiratory times (T1) of one second or less often occurred in patients with COPD, restrictive lung disease, and pulmonary hypertension. Smokers and patients with symptomatic asthma, COPD, restrictive lung disease and pulmonary hypertension showed heightened respiratory center drive as reflected by elevated mean inspiratory flow (VT/TI). Fractional inspiratory time was reduced to a variable extent in smokers, symptomatic asthmatic patients and patients with COPD, and was a weak indicator of airways obstruction. Patients with COPD often had major fluctuations of expiratory timing, periodic fluctuations of end-expiratory level, and asynchrony between rib cage and abdominal movements. Chronic anxiety was characterized by frequent sighs; episodic rapid rates alternating with apneas were less common. We conclude that analysis of breathing patterns provides diagnostic discrimination among normal subjects and disease states.

Adult

Effects of partial anti-G suit inflation on thoracic volume and breathing pattern.

The purpose of this study was to determine the changes in thoracic volume and pattern of breathing during partial anti-G suit (PAGS) inflation by respiratory inductive plethysmography (RIP). Nine normal subjects donned the PAGS, with bladders over legs and thighs, and rested for about 10 min in 60 degrees head-up tilt position. The subjects breathed with closed glottis at functional residual capacity while PAGS was suddenly inflated to 140 mmHg using a calves to thighs sequence. The increase in thoracic volume, as measured from deflection of RIP baseline was 252 ml (S.D. 43 ml), which reflected displacement of blood from the lower extremities into the thorax. On resuming normal breathing, thoracic volume returned to baseline level. Breathing pattern was then monitored for a 15 min baseline period, PAGS was inflated, expiratory reserve volume (ERV) was measured by spirometry, and breathing pattern was monitored another 15 min. ERV decreased 227 ml (+/- 60) after PAGS inflation, which did not differ from the change in thoracic volume expected from displacement of blood into the thorax. Breathing pattern was monitored for another 15 min after PAGS was deflated. No changes took place in minute ventilation, tidal volume, frequency, inspiratory time, fractional inspiratory time, and mean inspiratory flow from deflation to PAGS inflation. Thus, 1) increase in thoracic volume produced by displacement of blood from the calves and thighs is balanced by a decrease in gas volume and, 2) no changes in breathing pattern occur after partial anti-G suit inflation, probably because the pulmonary blood vessels and heart are sufficiently distensible to accept a 250 ml volume increment without leakage of fluid into pulmonary tissues.

Adult

Response to bronchodilator drug administration by a new reservoir aerosol delivery system and a review of other auxiliary delivery systems.

Response to bronchodilator aerosols delivered by metered dose inhalers (MDI) depends in part upon the amount of drug depositing on the airways. Ideally, the MDI should be actuated during a slow deep inhalation followed by a breathholding pause, an impossible maneuver for many patients. We developed a new reservoir aerosol delivery system (RADS) consisting of a 700-ml collapsible bag in which aerosol could be injected. The mouthpiece-canister was filtered with a reed that vibrated at inspiratory flows greater than 0.3 L/s to produce a noise. Patients were instructed to keep inhalation silent while breathing from RADS. One puff of metaproterenol (650 microgram) administered via RADS (with one breath rebreathed) was compared with one puff of metaproterenol (650 micrograms) from usual MDI using serial measurements of body plethysmography and spirometry. Respiratory inductive plethysmography measured the point of MDI actuation, volume of inhalation, inspiratory flow, and breathholding pause. Ten patients with chronic airflow limitation caused by asthma or chronic bronchitis were given typed instructions on MDI usage and trained shortly before the study. Metaproterenol via RADS produced significantly greater maximal increase in SGaw (195 +/- 52% SE) compared with metaproterenol via conventional MDI (101 +/- 24%, p less than 0.003). Bronchodilator response in 4 patients unable to coordinate actuation of the MDI with inspiration was significantly less than in 6 patients with good MDI technique (p less than 0.005). The mean flow rates were 0.54 +/- 0.16 L/s during inhalation of metaproterenol compared with 0.19 +/- 0.02 L/s and 0.24 +/- 0.03 L/s during the first and second inhalations, respectively, using RADS. This reservoir aerosol delivery system, which was well accepted by the patients, promotes more effective bronchodilation than the conventional metered dose inhaler.

Adult

Subjective and objective measurement of cigarette smoke inhalation.

The pattern of cigarette smoke inhalation was studied in 19 smokers with respiratory inductive plethysmography, a reliable unobtrusive ventilatory monitoring device. The mean volumes inhaled varied widely from 0.27 to 1.97 L, with a group mean (+/- SD) of 0.79 +/- 0.45 L. Mean duration of smoke inhalation varied from 2.0 to 6.8 seconds, with a group mean of 4.5 +/- 1.3 seconds. An inhalation fraction was derived by dividing the inhaled volume by the vital capacity; this fraction varied from 0.09 to 0.47, with a group mean of 0.20 +/- 0.10. Subjects rated the depth that they inhaled smoke into their lungs on a visual analog scale and on a grading system. Correlation between visual analog scale and inhalation fraction was poor (r = -0.15). Also, inhalation fraction bore no relationship to smoking pack-years or current pulmonary function. The smokers' inaccurate assessment of their inhalation pattern may help to explain the poor correlation reported between cigarette smoke inhalation and severity of obstructive lung disease.

Adult