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The large lungs of elite swimmers: an increased alveolar number?

In order to obtain further insight into the mechanisms relating to the large lung volumes of swimmers, tests of mechanical lung function, including lung distensibility (K) and elastic recoil, pulmonary diffusion capacity, and respiratory mouth pressures, together with anthropometric data (height, weight, body surface area, chest width, depth and surface area), were compared in eight elite male swimmers, eight elite male long distance athletes and eight control subjects. The differences in training profiles of each group were also examined. There was no significant difference in height between the subjects, but the swimmers were younger than both the runners and controls, and both the swimmers and controls were heavier than the runners. Of all the training variables, only the mean total distance in kilometers covered per week was significantly greater in the runners. Whether based on: (a) adolescent predicted values; or (b) adult male predicted values, swimmers had significantly increased total lung capacity ((a) 145 +/- 22%, (mean +/- SD) (b) 128 +/- 15%); vital capacity ((a) 146 +/- 24%, (b) 124 +/- 15%); and inspiratory capacity ((a) 155 +/- 33%, (b) 138 +/- 29%), but this was not found in the other two groups. Swimmers also had the largest chest surface area and chest width. Forced expiratory volume in one second (FEV1) was largest in the swimmers ((b) 122 +/- 17%) and FEV1 as a percentage of forced vital capacity (FEV1/FVC)% was similar for the three groups. Pulmonary diffusing capacity (DLCO) was also highest in the swimmers (117 +/- 18%). All of the other indices of lung function, including pulmonary distensibility (K), elastic recoil and diffusion coefficient (KCO), were similar. These findings suggest that swimmers may have achieved greater lung volumes than either runners or control subjects, not because of greater inspiratory muscle strength, or differences in height, fat free mass, alveolar distensibility, age at start of training or sternal length or chest depth, but by developing physically wider chests, containing an increased number of alveoli, rather than alveoli of increased size. However, in this cross-sectional study, hereditary factors cannot be ruled out, although we believe them to be less likely.

Adult↗

Respiratory sensation and ventilatory mechanics during induced bronchoconstriction in spontaneously breathing low cervical quadriplegia.

Intensity of dyspnea during induced bronchoconstriction in asthma is strongly related to the reduction in inspiratory capacity (IC) as a result of dynamic hyperinflation. To determine the role of rib cage and intercostal muscle afferents in symptom perception during bronchoconstriction, we measured the relationship between dyspnea intensity and IC during induced bronchoconstriction in six subjects with complete C4-C7 quadriplegia who did not require assisted ventilation. Spirometry, lung volumes, breathing pattern, esophageal pressure (Pes), and dyspnea intensity (Borg Scale) were measured during high-dose methacholine bronchoprovocation up to 256 mg/ml or a maximum change (Delta) in FEV(1) of 50%. Contemporaneous control data from subjects with asthma (n = 12) who had completed the same protocol were used for comparison. At maximum response in quadriplegia, FEV(1) decreased by 1.42 +/- 0.18 L (62 +/- 4%predicted) (mean +/- SEM), and IC decreased by 0.89 +/- 0.12 L (30 +/- 4%predicted). Dyspnea at maximum response was rated "moderate" to "severe": Borg 3.6 +/- 0.3. The predominant qualitative respiratory sensations were inspiratory difficulty and unsatisfied inspiration. The best correlate of dyspnea (Borg) was DeltaIC(%predicted) (p < 0.0005), whereas changes in FEV(1), Pes-derived measurements and breathing pattern did not contribute further to the strength of this relationship. Dyspnea intensity, quality, and changes in spirometry and lung volumes at maximum response were similar to those reported previously in asthma. The relationship between dyspnea intensity and DeltaIC(%predicted) was linear and consistent across groups. We conclude that the quality and intensity of dyspnea during methacholine-induced bronchoconstriction and dynamic hyperinflation was not altered by extensive chest wall deafferentation.

Adult↗

Simplified detection of dynamic hyperinflation.

STUDY OBJECTIVE: To detect dynamic hyperinflation by comparing reduction in inspiratory capacity (IC) during both paced hyperventilation and cycle ergometry in patients with moderate-to-severe COPD, studied before and after acute bronchodilation. METHODS: IC and FEV(1) were measured before and after metronome-paced hyperventilation at twice the resting respiratory rate for 20 s in 16 patients with COPD before and after 54 microg aerosolized ipratropium bromide (IB). We also studied the same 16 patients before and after administration of 54 microg aerosolized IB during symptom-limited incremental cycle ergometry when the final respiratory rate was also twice the resting rate. RESULTS: Resting IC was 2.23 +/- 0.53 L (mean +/- SD), and the mean decrease in IC from baseline was 0.36 +/- 0.25 L after exercise (p < 0.001), and not significantly different (p = 0.64) from mean decrease in IC of 0.40 +/- 0.29 L following hyperventilation. Results following hyperventilation and exercise were similar after bronchodilator. The mean difference for decrease of IC between hyperventilation and exercise was 0.138 L (95% confidence interval, - 0.347 to 0.622; r = 0.66, p = 0.006). The decrease in FEV(1) was 0.01 +/- 0.13 L after exercise and 0.06 +/- 0.18 L after hyperventilation. Separately, baseline and peak end-expiratory and end-inspiratory lung volumes were similar with hyperventilation vs exercise both before and after bronchodilator. CONCLUSION: Both metronome-paced hyperventilation and incremental cycle ergometry, when resting respiratory rate was doubled, provoked similar significant decrease in IC, even after administration of 54 microg aerosolized IB. The noninvasive simplicity of hyperventilation for 20 s provides a clinically useful screening surrogate to monitor changes in IC following exercise.

Administration, Inhalation↗

Ventilation and exercise performance after phrenic nerve and multiple intercostal nerve transfers for avulsed brachial plexus injury.

BACKGROUND: Diaphragmatic excursion, lung function, exercise performance, and clinical symptoms have not been previously described in patients after phrenic nerve transfer (PNT) and/or multiple intercostal nerve transfer (MIT) for the repair of avulsed brachial plexus injury (ABPI) to prevent functional musculoskeletal impairment in the shoulder. SETTING: A university-based hospital. METHODS: Dyspnea scores, chest ultrasonography to assess diaphragmatic excursion, and pulmonary function testing were performed to assess ventilation in patients sustaining trauma to their brachial plexus. In addition, cardiopulmonary exercise testing was also performed. These studies were obtained prior to surgical intervention, and were repeated postoperatively at 6, 12, 18, 24, and 36 months. The results obtained preoperatively were compared to those obtained throughout the postoperative monitoring period. RESULTS: This study demonstrates that the PNT-MIT procedure results in permanent ipsilateral diaphragmatic paralysis accompanied by an approximately 8% decrease in inspiratory capacity, FVC, and total lung capacity. There was also an 11% increase in diffusing capacity noted during the period between 6 months and 3 years after PNT-MIT procedure. Despite these measurable changes in lung function, the patients reported amelioration of their dyspnea complaint within 6 months of undergoing this procedure, which was due mainly to an improvement in their cardiovascular exercise performance related to increased daily activity. CONCLUSIONS: This study demonstrates that the PNT-MIT procedure is a safe method for the restoration of drop shoulder incurred by ABPI. This surgery has an impact on measurable diaphragmatic and lung function but with minimal impact in terms of postoperative clinical symptoms and exercise performance.

Adult↗

Use of magnetometers to volume-reference flow-volume curves.

Chest wall diameters measured by magnetometers were used to indicate a lung volume reference for repeated interrupted partial flow-volume curves (IPFVC's) and IPFVC's, and total respiratory conductances were measured before and after bronchodilation in normals. With posture rigidly controlled, subjects matched the magnetometer display on an X-Y oscilloscope to a previously marked point on the screen. Seven subjects performed six inspiratory capacities (IC's) from the reference point, completely reposturing before each maneuver. For a mean IC of 2.25 liters the standard deviation was 5.5%. IPFVC's were performed through a valve system triggering open at 60 cmH2O and shutting after 1 liter of expiration. Ten subjects each performed five sets of IPFVC's volume-referenced by magnetometers and the pooled flow variability was 5% or 0.15 l/s. Respiratory conductances by forced oscillations and IPFVC's were measured in five normal subjects before and after inhaled isoproterenol. In each subject the flow increase was always greater than the conductance increase (about 2.5:1.0) for P less than 0.05. We conclude that magnetometers may be used in normals to volume-reference IPFVC's with excellent reproducibility.

Asthma↗

Additive benefits of tiotropium in COPD patients treated with long-acting beta agonists and corticosteroids.

OBJECTIVE AND BACKGROUND: The addition of an alternative class of long-acting bronchodilator is recommended for COPD patients who do not respond satisfactorily to monotherapy. The aim of this study was to investigate the additive benefit of tiotropium in severe COPD and to establish whether the improvement in lung function in these patients can be predicted from their acute bronchodilator response to ipratropium or salbutamol. METHODOLOGY: Forty-six patients with severe COPD treated with inhaled long-acting beta(2) agonists and corticosteroids (LABA/CS) were enrolled. Their prebronchodilator FEV(1) was less than 50% of the predicted value. Tiotropium (18 microg, once daily) was added via a dry-powder inhaler device. After a month of treatment, tiotropium was stopped but their previous medication was continued. Patients were reassessed a month later. Acute bronchodilator response to ipratropium and salbutamol was assessed prior to tiotropium treatment. Pulmonary function and health status were evaluated. RESULTS: Adding tiotropium significantly improved FVC, FEV(1) and inspiratory capacity (IC). The increase in FVC was significantly associated with an increase in IC (r = 0.36, P = 0.019) and a decrease in residual volume (r =-0.56, P < 0.001). Total scores of St. George Respiratory Questionnaire scores were significantly improved after adding tiotropium treatment (P < 0.001). After tiotropium withdrawal, FVC, FEV(1) and IC decreased markedly. Bronchodilator response to ipratropium did not predict the tiotropium-mediated improvement in FEV(1) or FVC. CONCLUSIONS: Adding tiotropium to inhaled LABA/CS can yield clinical benefits in lung function and improved quality of life in COPD patients, as both drugs act through separate yet complementary pathways to maintain airway calibre.

Aged↗

Effect of heliox breathing on dynamic hyperinflation in COPD patients.

BACKGROUND: and objective: Patients with COPD exhibit increased inspiratory work and dyspnea due to dynamic hyperinflation caused by expiratory flow limitation. Helium-oxygen mixtures (ie, heliox) have been used in treating these patients on the assumption that, by lowering airway resistance, they might be beneficial. METHODS: In 22 patients with COPD, the presence of expiratory flow limitation was assessed with patients in the sitting and supine positions using the negative expiratory pressure technique, and the effects of heliox (80% He, 20% O2) on breathing pattern, expiratory flow limitation, and dynamic hyperinflation, evaluated from the change in inspiratory capacity (IC), were measured at rest and were compared with those due to inhaled salbutamol. RESULTS: During air breathing, 13 patients experienced flow limitation while in the sitting position and 18 experienced flow limitation while in the supine position. Neither heliox nor salbutamol therapy changed the breathing pattern in any of the patients, regardless of posture and the presence or absence of expiratory flow limitation. However, in both positions IC increased significantly in most flow-limited patients after bronchodilator administration, but not after heliox administration. CONCLUSIONS: Since heliox had no effect on dynamic hyperinflation, the use of this gas mixture, which is costly and cumbersome, does not appear to be beneficial in stable patients with COPD breathing at rest.

Aged↗

Restrictive ventilatory dysfunction in stroke: its relation to locomotor function.

Static and dynamic lung volumes, maximum respiratory pressures and lung compliance and resistance were registered in 54 subjects with hemiplegia or hemiparesis after stroke. These measures of ventilatory function were related to the degree of motor impairment and to the interval between stroke and investigation. In general ventilatory function, particularly parameters depending upon expiratory force, was restricted. This was most pronounced in subjects with severe hemiplegia while those with hemiparesis had only small changes. Since dynamic lung volumes (corrected for volume loss), lung compliance and resistance were all normal, it is evident that intrinsic lung function was unaffected. Inspiratory capacity - but no other measured variables of respiratory function - was lower six months after the stroke than earlier. It is suggested that expiratory muscle dys-coordination and weakness caused expiratory dysfunction while the less pronounced inspiratory restriction may be caused by muscular dysfunction and, as time goes by, by rib cage contracture.

Adult↗

Airway response to inhaled hypertonic saline in patients with moderate to severe chronic obstructive pulmonary disease.

The present study aimed at delineating the mechanisms underlying the adverse response to hypertonic saline inhalation in patients with chronic obstructive pulmonary disease (COPD). Twenty patients (age, 48-70 yr; FEV(1), 29-58 %pred) inhaled, on two different days in randomized order, 200 microg salbutamol from an MDI and 20 min later either 0.9% or 3% saline from an ultrasonic nebulizer for a maximum of four consecutive 5-min periods. Forced expiratory (FEV(1)) and inspiratory (FIV(1)) volumes, inspiratory capacity (IC), intrathoracic gas volume (ITGV), and specific airway resistance (SRaw) were measured. Significant changes occurred in FEV(1), FIV(1), IC, ITGV, and SRaw with both concentrations (p < 0.05, each) and effects were stronger with 3% as compared with 0.9% saline (p < 0.05, each). The increase in dyspnea was associated with the changes in FIV(1), FEV(1), IC, and ITGV, in contrast to its decrease during bronchodilation, where only FIV(1) was important. Sputum analysis showed elevated concentrations of histamine after 3% as compared with 0.9% saline. These data indicate that the adverse lung function response to hypertonic saline is common in patients with moderate to severe COPD, involves both bronchoconstriction and lung hyperinflation, and could be mediated, at least partially, through activation of mast cells.

Administration, Inhalation↗

Dynamic hyperinflation and tolerance to interval exercise in patients with advanced COPD.

Dynamic hyperinflation (DH) contributes importantly to the limitation of constant-load exercise (CLE) in patients with chronic obstructive pulmonary disease (COPD). However, its role in the limitation of interval exercise (IE) remains to be explored. The change (Delta) in inspiratory capacity (IC) was measured to reflect changes in DH in 27 COPD patients (forced expiratory volume in one second mean+/-SEM % predicted: 40+/-3) at the end of a symptom-limited CLE test at 80% of peak work capacity (WRmax) and an IE test at 100% WRmax (30 s of work, alternated with 30 s of unloaded pedalling). At the limit of tolerance in both IE and CLE, patients exhibited similar DH (DeltaIC: 0.39+/-0.05 L and 0.45+/-0.05 L, respectively). However, exercise endurance time (t end) for IE (32.7+/-3.0 min) was significantly greater than for CLE (10.3+/-1.6 min). The IE t end correlated with resting IC, expressed as % pred normal. At 30 and 90% of total IE t end, DeltaIC (0.43+/-0.06 and 0.39+/-0.05 L, respectively) and minute ventilation (31.1+/-1.6 and 32.7+/-2.2 L.min(-1), respectively) were not significantly different. Resting hyperinflation helps to explain the limitation of interval exercise. Implementation of interval exercise for rehabilitation should provide important clinical benefits because it prolongs exercise endurance time and allows sustaining higher stable ventilation.

Aged↗

End-expiratory lung volume during arm and leg exercise in normal subjects and patients with cystic fibrosis.

There are no reports concerning the regulation of end-expiratory lung volume (EELV) and flow-volume relationships during upper limb exercise in health and disease. We studied EELV during such exercise in 22 adults with cystic fibrosis (CF) and nine age-matched healthy control subjects. Subjects with CF were grouped according to the severity of their lung disease, as follows: mild = FEV1 > 80% predicted; moderate = FEV1 40 to 80% predicted, and severe = FEV1 < 40% predicted. EELV was calculated from measurements of inspiratory capacity (IC) made at each workload during an incremental arm and leg ergometer test to peak work capacity. In the control group, the decrease in EELV was significantly smaller for arm than for leg exercise at peak work (-0.13 L versus -0.53 L, p < 0.001) and for arm than for leg exercise at an equivalent submaximal ventilation (-0.13 L versus -0.46 L, p < 0.01). In the groups with moderate and severe CF, arm exercise resulted in an increase in EELV from resting levels (dynamic hyperinflation) that was not significantly different from the increase observed for leg exercise. For CF subjects there was a significant inverse relationship between FEV1 and changes in EELV from rest to peak arm exercise (r = -0.46, p < 0.05). In normal subjects, there was a difference in the EELV response for arm versus leg exercise. In CF subjects with airflow limitation, dynamic hyperinflation occurred with both forms of exercise.

Adolescent↗

Effects of deep breaths on subsequent ventilation in man during rest and exercise.

1. We examined the effects of twenty-four to thirty inspiratory capacity (IC), expiratory capacity (EC) and vital capacity (VC) breaths on subsequent breathing pattern in five normal subjects at rest. 2. During IC breaths and following EC and VC breaths at rest, end-tidal CO2 pressure (PET,CO2) fell by 7.5, 8.5 and 9.5 mmHg, respectively. In the group analysis significant inhibition of ventilation of 1.5 l min-1 was seen after the IC breath but not after EC or VC breaths. 3. We repeated the study with five normal subjects under conditions of higher ventilatory drive, namely 50 W exercise (one subject was common to both groups). 4. During exercise, the drop in PET,CO2 was smaller (4.0, 3.5 and 4.0 mmHg, respectively, with IC, EC and VC breaths) but ventilation was inhibited to a greater extent. Ventilatory undershoot was seen after all three types of deep breaths. 5. We propose that the expiration to residual volume in EC and VC breaths abolished the hypocapnic inhibition of ventilation at rest, possibly by a deflation reflex which was not sufficiently powerful to overcome the ventilatory undershoot during exercise. Our results also support the view that the slope of the CO2 response curve is steeper near the control point during exercise.

Adult↗

Measurement of symptoms, lung hyperinflation, and endurance during exercise in chronic obstructive pulmonary disease.

Changes in lung hyperinflation, dyspnea, and exercise endurance are important outcomes in assessing therapeutic responses in chronic obstructive pulmonary disease (COPD). Therefore, we studied the reproducibility of Borg dyspnea ratings, inspiratory capacity (IC; to monitor lung hyperinflation), and endurance time during constant-load symptom-limited cycle exercise in 29 patients with COPD (FEV1 = 40 +/- 2% predicted; mean +/- SEM). Responsiveness was also studied by determining the acute effects of nebulized 500 micrograms ipratropium bromide (IB) or saline placebo (P) on these measurements. During each of four visits conducted over an 8-wk period, spirometry and exercise testing were performed before and 1 h after receiving IB or P (randomized, double-blinded). Highly reproducible measurements included: endurance time (intraclass correlation R = 0.77, p < 0.0001); Borg ratings and IC at rest, at a standardized exercise time (STD), and at peak exercise (R > 0.6, p < 0.0001); and slopes of Borg ratings over time, oxygen consumption (V O2), and ventilation (R > 0.6, p < 0.0001). Responsiveness was confirmed by finding a significant drug effect for: change (Delta) in endurance time (p = 0.0001); DeltaBorgSTD and DeltaBorg-time slopes (p < 0.05); and DeltaIC at rest, at STD, and at peak exercise (p = 0.0001). With all completed visits, DeltaBorgSTD correlated better with DeltaICSTD than any other resting or exercise parameter (n = 115, r = -0.35, p < 0.001). We concluded that Borg dyspnea ratings, and measurements of IC and endurance time during submaximal cycle exercise testing are highly reproducible and responsive to change in severe COPD.

Aged↗

Dynamic hyperinflation and flow limitation during methacholine-induced bronchoconstriction in asthma.

Although persistent activation of the inspiratory muscles and narrowing of the glottic aperture during expiration have been indicated as relevant mechanisms leading to dynamic hyperinflation in acute asthma, expiratory flow limitation (EFL) has recently been proposed as a possible triggering factor for increasing endexpiratory lung volume (EELV). To establish whether the attainment of maximal flow rate during tidal expiration could elicit dynamic elevation of EELV, breathing pattern, change in EELV by measuring inspiratory capacity (IC) and occurrence of EFL by the negative expiratory pressure (NEP) method were monitored in 10 stable asthmatic subjects during methacholine-induced, progressive bronchoconstriction in seated position. Change in dyspnoea was scored using the Borg scale. At maximum response forced expiratory volume in one second (FEV1) fell on average by 45+/-2% (p<0.001 versus control), while IC decreased 29+/-2%, (by 0.89+/-0.07 L, (p<0.01 versus control)). Only 2 subjects exhibited EFL at the end of methacholine challenge. In 7 subjects EELV started to increase before the occurrence of EFL. Dyspnoea, which increased from 0.2+/-0.1 to 5.5+/-1.0 (Borg scale) at maximum response (p<0.001), was significantly related to the level of bronchoconstriction as assessed by change in (delta)FEV1 (r=0.72; p<0.001) and to dynamic hyperinflation as measured by deltaIC (r=0.50; p<0.001). However, for both deltaFEV1 and deltaIC the slope of the relationship with increasing dyspnoea was highly variable among the subjects. It is concluded that in acute methacholine-induced bronchoconstriction, dynamic hyperinflation may occur in the absence of expiratory flow limitation and that expiratory flow limitation does not represent the triggering factor to generate dynamic hyperinflation. In these circumstances, dyspnoea appears to be related to the increase in end-expiratory lung volume and not to the onset of expiratory flow limitation.

Asthma↗

Time course of expiratory flow limitation in COPD patients during acute respiratory failure requiring mechanical ventilation.

STUDY OBJECTIVES: (1) To determine the incidence of expiratory flow limitation (FL) at ICU admission, at the time of extubation, and at ICU discharge in intubated patients with COPD receiving mechanical ventilation for acute respiratory failure (ARF); and (2) to assess the feasibility of inspiratory capacity (IC) as an indication of pulmonary dynamic hyperinflation in this setting. DESIGN: Prospective, observational pilot study with physiologic measurements performed at ICU admission and during the weaning process driven by the clinician. A 60-min T-tube trial was initiated once criteria for weaning were present. The decision to extubate or reventilate patients was made by the clinician at the end of this session. Assessment of failure or success of T-tube trials was performed independently. SETTING: A 25-bed ICU of a tertiary teaching university hospital. PATIENTS: Over a 13-month period, 25 intubated patients with COPD receiving mechanical ventilation for ARF were included. INTERVENTIONS: None. MEASUREMENTS AND RESULTS: At ICU admission, FL assessed by the negative expiratory pressure test was measured under passive ventilatory conditions at the baseline ventilatory settings, on zero end-expiratory pressure, and in a semirecumbent position. During weaning, FL, respiratory pattern, and IC were measured during T-tube trials, before extubation, 1 h after extubation, and at ICU discharge. At ICU admission, 24 of 25 patients presented FL with, on average, 73 +/- 22% of the tidal volume. Ten patients were unavailable for follow-up due to death (n = 6) unplanned extubation (n = 3), or refusal (n = 1), so that only 15 patients completed the whole protocol (all 15 patients were extubated). For these 15 patients, the incidence of FL was 93% at ICU admission, 47% before extubation, and 40% at ICU discharge. IC was significantly greater at ICU discharge than before extubation (36 +/- 11% predicted vs 44 +/- 12% predicted, p < 0.01) and in successful T-tube trials compared with unsuccessful T-tube trials (38 +/- 13% predicted vs 24 +/- 8% predicted, p < 0.01). CONCLUSIONS: The incidence of expiratory FL is high in patients with COPD receiving mechanical ventilation, and is reduced during aggressive therapy when the patient is placed on mechanical ventilatory support and the time that weaning begins during the ICU stay. IC was lower in patients in whom weaning was unsuccessful. Further large-scale studies are required to confirm these preliminary results.

Acute Disease↗

Effects of water immersion on lung volumes: implications for body composition analysis.

Lung volumes of 20 healthy young men were measured before and after water immersion to the neck level. Immersion resulted in significant decreases (P less than 0.01) in forced vital capacity (FVC) (8.9%), expiratory reserve volume (ERV) (61%), total lung capacity (TLC) (5.6%), and functional residual capacity (FRC) (2.9%). Significant increases were observed in inspiratory capacity (IC) (10%) and residual volume (RV) (6.7%). The increase in RV was attributed to a possible "stiffness" of the lung tissue caused by pulmonary vascular engorgement. Densitometric analysis was made on each subject using hydrostatic weighing techniques. Subsequent calculation of body density and per-cent body fat indicated significant (P less than 0.01) differences when using RV measured on land and in water. Body fat was 14.0% using the land RV in the computation of density and decreased to 13.4% using the RV measured in water. It was concluded that when obtaining body density values. RV should be measured concurrently while the subject is in the water.

Adult↗

Reference values for lung function tests. I. Static volumes.

Static lung volume (LV) measurements have a number of clinical and research applications; however, no previous studies have provided reference values for such tests using a healthy sample of the adult Brazilian population. With this as our main purpose, we prospectively evaluated 100 non-smoking subjects (50 males and 50 females), 20 to 80 years old, randomly selected from more than 8,000 individuals. Gender-specific linear prediction equations were developed by multiple regression analysis with total lung capacity (TLC), functional residual capacity (FRC), residual volume (RV), RV/TLC ratio and inspiratory capacity (IC) as dependent variables, and with age, height, weight, lean body mass and indexes of physical fitness as independent ones. Simpler demographic and anthropometric variables were as useful as more complex measurements in predicting LV values, independent of gender and age (R2 values ranging from 0.49 to 0.78, P < 0.001). Interestingly, prediction equations from North American and European studies overestimated the LV at low volumes and underestimated them at high volumes (P < 0.05). Our results, therefore, provide a more appropriate frame of reference to evaluate the normalcy of static lung volume values in Brazilian males and females aged 20 to 80 years.

Adult↗

Effects of neuromuscular blockade on respiratory mechanics in conscious man.

The effect of submaximal neuromuscular blockade (SMNB) on lung and chest wall mechanics was studied in six normal, awake subjects infused with pancuronium. Measurements of static lung volumes, specific airway conductance (sGaw), maximum expiratory and inspiratory flow-volume (MEFV, MIFV) curves, and static pressure-volume (PV) curves of the lung and of the relaxed chest wall were obtained after lung recoil pressure (Pst(L)) at full inflation had been reduced to 60 +/- 10% of control. Inspiratory capacity was decreased, but residual volume was not increased. Inspiratory PV curve of the lung was not modified, and the observed decrease in expiratory compliance and the slight increase in Pst(L) during deflation were compatible with the altered lung volume history. SMNB did not modify sGaw nor the relationship between Pst(L) and MEF; by contrast it markedly reduced MIF rates. Finally, SMNB transposed the chest wall PV curve to higher levels on the pressure axis (it decreased the outward pull of the chest wall) without greatly affecting its slope, and thereby it reduced the resting level of the respiratory system. We conclude that 1) muscle weakness per se does not affect the eleastic properties of the lungs and airways, and 2) involuntary respiratory muscle activity influences the elastic recoil of the chest wall. We believe this muscle activity originates from muscle spindles, and lies essentially in the inspiratory portion of the intercostal musculature.

Adult↗