PubMed Health⌕ Search

Biomedical subjects

T Gerhardt

Publications and source records attributed to T Gerhardt.

At least 37 records · Page 2Linked to original sources

Intrasubject variability of repeated pulmonary function measurements in preterm ventilated infants.

This study set out to describe the variability and assess the reproducibility of repeated pulmonary function measurements in ventilated preterm infants. We measured tidal volume (VT), lung compliance (CL), and resistance (RL) in 16 infants (mean +/- SD: birthweight 1222 +/- 343 g) during spontaneous breathing and during mechanical ventilation, suppressing breathing efforts by mild hyperventilation. CL and RL were calculated from the equation of motion using linear regression analysis (LR), and by the Mead and Wittenberger method (MW). Flow and transpulmonary pressure were recorded for at least two consecutive periods, after which the esophageal tube was removed and replaced 1 hour later for a second set of recordings. The mean percent change (% delta) between the initial and the repeated measurements with their respective 95% confidence intervals were calculated. Reproducibility was assessed by the intraclass correlation coefficient (ICC) (total agreement = 1, good reproducibility > or = 0.75). The mean % delta between initial and repeat measurements during spontaneous breathing ranged from 11% to 14% for CL and VT, and from 22% to 32% for RL. The variation for RL was even higher when the analysis was done separately for the inspiratory and expiratory phase. CL and VT had good reproducibility (ICC > 0.9), while RL was significantly less reproducible (ICC < 0.75). Measurements obtained from mechanical breaths had less variability than from spontaneous breaths, ranging from 8% to 15% for CL and VT, and from 13% to 21% for RL. Reproducibility assessed by the ICC was good for most measurements during mechanical breaths. The variability and reproducibility of measurements were similar for both methods of analysis during mechanical ventilation, but during spontaneous breathing variability was larger with the MW method than with LR analysis. We concluded that VT and CL were reproducible during spontaneous and mechanical breathing. However, RL measurements were reproducible only during mechanical ventilation. The high variability of RL in spontaneously breathing preterm infants may reduce the clinical usefulness of this measurement for individual patients.

Humans↗

Patient-triggered ventilation: a comparison of tidal volume and chestwall and abdominal motion as trigger signals.

Patient-triggered synchronized ventilation requires reliable and early detection of the infant's inspiratory effort. Several trigger methods have been developed that frequently lack the sensitivity to detect inspiration in small preterm infants (trigger failure), or show a high rate of breaths triggered by artifacts in the respiratory signal (autotrigger). The purpose of this study was to determine the effectiveness of the following trigger signals: abdominal movement sensed by a newly developed induction technique, chestwall motion detected by changes in transthoracic impedance, and tidal volume measured by anemometry at the endotracheal tube connector. Ten preterm infants (birth weight, 580-1,424 g; median weight, 943 g; study weight, 535-1,415 g; median weight, 838 g; gestation age, 26-32 weeks, median gestational age, 28 weeks, study age, 1-50 days, median study age, 11 days) were included in the study. A Sechrist SAVI ventilator was triggered by one of three signals: chestwall or abdominal movement, or tidal volume generated by the infants. Response time between beginning of inspiratory flow, the occurrence of the trigger signal (signal delay), and the onset of the triggered breath (trigger delay) were determined for each of the three signals. The signal response time was -13.5 msec (95% CI, -33 to -2 msec) for the abdominal movement signal, indicating that it started before inspiratory flow; 0.0 msec for the volume signal; and 44.0 msec (95% CI, 29-73 msec) for the chestwall signal (P < 0.002); this long delay was secondary to chestwall distortion and a subsequent delay in outward ribcage movement in many infants. The trigger delay for the abdominal signal was 90.0 msec (95% CI, 55-104 msec), 135.5 msec (95% CI: 82-186 msec) for the volume signal, and 176.5 msec (95% CI: 165-232 msec) for the chestwall signal, indicating that there was a difference in the rise time of signal voltage between the three methods (P < 0.01). The rate of autotriggered breaths was 3.2% (95% CI, 0.3-9.3%) when using the abdominal signal, 0.55% (95% CI, 0.0-2.1%) for the tidal volume signal, and 11.25% (95% CI, 0.5-27.8%) for the chestwall signal (P < 0.05). The incidence of trigger failure was low with all three signals and was not significantly different between the techniques. In summary, the chestwall signal had a long trigger delay and was highly susceptible to false triggering. It is, therefore, not a reliable trigger signal for synchronized mechanical ventilation in preterm infants. In contrast, tidal volume and abdominal movement signals had an acceptable trigger delay and a low rate of autotriggering, making them useful clinical trigger signals.

Confidence Intervals↗

Effect of leak around the endotracheal tube on measurements of pulmonary compliance and resistance during mechanical ventilation: a lung model study.

We studied the effect of leaks around the endotracheal tube (ETT) on the measurement of pulmonary mechanics during mechanical ventilation. We also evaluated the influence of different ventilator settings on the magnitude of leak. An adjustable leak was created at the end of the ETT in a lung model with constant compliance. Flow, tidal volume, and pressure changes were measured above and below the leak. Compliance (Ci) and resistance (Ri) during inspiration were determined by linear regression analysis (LRA) using the equation of motion and the Mead and Wittenberger method (MWM). The ventilatory change that influenced the degree of leak most was prolongation of inspiratory time (Ti). The presence of a leak around the ETT resulted in an overestimation of the Ci and Ri values, which was proportional to the size of the leak. This overestimation was also influenced by the method used to determine Ci and Ri. Because the contribution of the leak to the fidal volume progressively increases as inspiration continued, methods of analysis that depended mainly on measurement points at the end of inspiration showed a larger deviation from the true Ci and Ri values than methods mainly influenced by measurement points at the beginning of inspiration. Because of this, shortening of inspiration, or analysis of points at the beginning of inspiration reduces the error in the measurements of Ci and Ri when a leak is present. Breaths with a large leak should be excluded from any analysis of pulmonary mechanics.

Airway Resistance↗

Influence of different methods of synchronized mechanical ventilation on ventilation, gas exchange, patient effort, and blood pressure fluctuations in premature neonates.

We studied the effects of two methods of synchronized mechanical ventilation [synchronized intermittent mandatory ventilation (SIMV) and assist/control (A/C)] on ventilation, gas exchange, patient effort, and arterial blood pressure (ABP) fluctuations. SIMV and A/C were applied in random order in 12 preterm neonates (gestational age, 29.7 +/- 2.3 weeks; birth weight, 1,217 +/- 402 g). We measured total (Vetot) and mechanical (Vemech) minute ventilation, spontaneous (Vtspont) and ventilator supported (Vtmech) tidal volume, transcutaneous oxygen saturation (SpO2), transcutaneous PO2 (TcPO2), and PCO2, (TcPCO2), mean airway pressure (Paw), phasic esophageal pressure deflections (Pe) as an estimate of inspiratory effort, mean arterial blood pressure (ABP), and beat-to-beat ABP fluctuations. The measurements obtained during conventional intermittent mandatory ventilation (IMV) were compared with the recordings during SIMV and A/C. To make the measurement conditions comparable and to prevent hyperventilation, peak inspiratory pressure was reduced during the A/C mode so that Vetot remained in the same range as during the IMV mode. Whereas Vetot was similar in all three conditions by study design, Vemech was larger during SIMV and A/C than during IMV. Vtmech increased during SIMV and by study design was smaller during A/C than during IMV. Pe decreased during SIMV and A/C compared with IMV, and Paw was higher during A/C than during IMV or SIMV. Beat-to-beat ABP fluctuations were reduced during SIMV and A/C compared with IMV and showed a close positive correlation with Pe changes. We conclude that SIMV increases Vemech and reduces Pe compared with IMV, resulting in smaller intrathoracic and ABP fluctuations. During A/C, a substantial portion of the spontaneous respiratory effort is shifted to the ventilator, resulting in a further decrease in Pe and ABP fluctuations.

Blood Pressure↗

Patient-triggered ventilation in neonates: comparison of a flow-and an impedance-triggered system.

We conducted a study with the objective of comparing the performance of two different systems for patient-triggered ventilation in neonates (impedance versus flow/volume-triggered) by measuring response time, autotrigger and trigger failure rates, ventilation, and gas exchange. The two ventilator systems were applied in random order in 10 preterm neonates (median gestational age: 30.5 wk; range: 27 to 34 wk; body weight: 1,266 g; range: 840 to 2,240 g) using identical ventilator settings. The median (range) response time was 169 (98 to 305) ms for the impedance system and 115 (79 to 184) ms for the flow/volume system (p < 0.01). The longer and more variable response time of the impedance system was secondary to a phase lag of the impedance signal caused by chest wall distortion. Although 13.1 (0.2 to 29.4)% of mechanical breaths were autotriggered with the impedance system, there were no autotriggered breaths using the flow/volume system (p < 0.01). The rate of trigger failures was not significantly different with the two systems, at 1.2 (0 to 4.4)% (impedance) versus 3.1 (0 to 6.4)% (flow/volume). Minute ventilation was smaller with the impedance system (p < 0.001), because of the larger number of breaths triggered late in inspiration or during expiration. We conclude that the flow/volume-triggered system is less prone to autotriggering and has a shorter and more consistent response time than the impedance-triggered system. The impedance-triggered system is more susceptible to artifacts and chest wall distortion.

Female↗

Effect of chestwall distortion on the measurement of pulmonary mechanics in preterm infants.

The purpose of this study was to determine the effect of chestwall distortion (CWD) on the measurement of pulmonary compliance (CL) and resistance (RL). Inductance plethysmography was used in 15 preterm infants to determine CWD as total compartmental displacement ratio (TCDR) and out of phase movement between ribcage and abdomen as phase shift (PS). Flow was measured by pneumotachography and esophageal pressure change (Pe) with a water-filled catheter. CL and RL were calculated by linear regression analysis. Seven infants (mean +/- SD: BW, 1,484 +/- 186 g, GA 32.4 +/- 2.2 weeks, age 8.7 +/- 4.7 days) had a breathing pattern characterized by episodes with a high degree of CWD, followed by periods with minimal CWD (distortion group). In this group lung function measurements were analyzed separately during periods with and without CWD. The remaining 8 infants (BW, 1,244 +/- 233 g, GA 30.4 +/- 2.4 weeks, age 7.4 +/- 3.1 days) always breathed with minimal CWD, and the measurements in this group (non-distortion group) were used as a reference for the values obtained in the distortion group. Measurements of TCDR, PS, CL, RL, and tidal volume (VT) obtained in the absence of CWD were not significantly different between distortion and non-distortion groups. The measurements obtained in the presence of CWD showed a significantly higher TCDR and PS, but CL and RL were not significantly different from the CL and RL measurements obtained in the distortion and non-distortion groups in the absence of CWD. The only significant effect of CWD was a reduction in VT.(ABSTRACT TRUNCATED AT 250 WORDS)

Birth Weight↗

Mechanisms for episodes of hypoxemia in preterm infants undergoing mechanical ventilation.

OBJECTIVE: To ascertain possible mechanisms implicated in the development of transient episodes of hypoxemia (oxygen saturation < 85%) frequently observed in preterm infants undergoing mechanical ventilation, even after the acute phase of respiratory failure has passed. STUDY DESIGN: Tidal flow, airway and esophageal pressure, and oxygen saturation were continuously recorded in 10 infants (mean +/- SD, birth weight 733 +/- 149 gm, gestational age 25.5 +/- 2.2 weeks, age 26.3 +/- 11.9 days) who had repeated episodes of hypoxemia without any evident cause. Measurements of minute ventilation (VE) inspiratory compliance (Ci), and inspiratory resistance (Ri) were compared before and during episodes of hypoxemia. RESULTS: All episodes of hypoxemia were preceded by an active exhalation that produced a mean decrease in end-expiratory lung volume of 6.4 +/- 2.8 ml/kg. The reduction in lung volume was immediately followed by a sudden decrease in tidal flow and volume, despite continuation of mechanical ventilation at the same rate and peak pressure. The resulting hypoventilation was associated with a drop in Ci to approximately one half and an increase in Ri to more than double the baseline values. Approximately 30 seconds after the beginning of hypoventilation, the arterial oxygen saturation reached a hypoxemic level (oxygen saturation < 85%)> CONCLUSION: Most hypoxemic episodes were triggered by an expiratory effort that produced a large decrease in lung volume. This reduction in lung volume probably leads to closure of small airways and the development of intrapulmonary shunts, which would explain the rapid development of hypoxemia.

Analysis of Variance↗

Comparison of the effects of acetazolamide and aminophylline on apnea incidence and on ventilatory response to CO2 in preterm infants.

Acetazolamide (ACTZ) reduces sleep apnea in adults exposed to high altitude and augments the ventilatory response to CO2. In order to determine the effect of ACTZ on the ventilatory response to CO2 and the incidence of apnea in preterm infants, 7 infants (BW, 1070 +/- 191 g; postnatal age, 9 +/- 7 days) were randomized to receive ACTZ (5 mg/kg/dose Q6h for 36 hr) and 7 infants (BW, 1092 +/- 292 g; post-natal age, 5 +/- 2 days) received aminophylline (AMINO; 8 mg/kg bolus then 2.5 mg/kg Q12h for 36 hr). Minute ventilation (VE), end-tidal CO2 (PETCO2), ventilatory response to CO2, number of apneic episodes (> or = 15 sec duration), and arterial blood gases were measured before and 24-36 hr after starting therapy. In the AMINO group there was a significant decrease in apnea frequency from 6 +/- 1 to 2 +/- 2 episodes over an 8 hr epoch (P < 0.05), while no significant change was observed in the ACTZ group. The end-tidal CO2 decreased significantly from 44 +/- 7 to 38 +/- 6 mmHg in the AMINO group and from 47 +/- 5 to 36 +/- 5 mmHg in the ACTZ (P < 0.05), which lead to a shift to the left of the CO2-response curve in both groups. The slope of the CO2 response curve did not change significantly in the AMINO group and decreased in the ACTZ group. There was a significant decrease of pH from 7.43 to 7.26 in the ACTZ group, whereas in the AMINO group pH increased from 7.38 to 7.44.(ABSTRACT TRUNCATED AT 250 WORDS)

Acetazolamide↗

Changes in ventilation and oxygen consumption during acute hypoxia in sedated newborn piglets.

The purpose of this study was to evaluate the relationship between changes in minute ventilation (VE) and oxygen consumption (VO2) in response to acute hypoxia in the newborn piglet. Twenty-five (mean +/- SD; age, 4.7 +/- 1.1 d; weight, 1451 +/- 320 g) sedated, spontaneously breathing newborn piglets were studied. VE was measured by pneumotachography, and VO2 was measured by the open-circuit technique. Measurements were performed while the animals breathed room air and repeated after 10 min of hypoxia, which was induced by breathing 10% oxygen. Although the mean VE values during hypoxia displayed a typical biphasic ventilatory response, the individual pattern of this ventilatory response to hypoxia was variable. Thirteen animals sustained VE above baseline after 10 min of hypoxia, whereas the 12 remaining animals decreased VE after 10 min of hypoxia to values below their room air baseline. The VO2 values did not differ between groups during normoxia, and a similar decrease in VO2 occurred in both groups after 10 min of hypoxia. Furthermore, no correlation was observed between changes in VE and VO2 during hypoxia either in absolute values or in the percent change from room air baseline. Arterial PO2 decreased similarly in both groups, but PACO2 decreased significantly only in the group that sustained VE above baseline after 10 min of hypoxia. These data demonstrate that in this animal model the hypoxic ventilatory depression is not determined by the decrease in VO2 that occurs during hypoxia.

Animals↗

Metabolic, hemodynamic, and ventilatory responses to respiratory load in sedated neonatal piglets.

Some neonatal species fail to develop the expected degree of hypercapnia during hypoventilation with mechanical loads. We studied 13 spontaneously breathing, sedated piglets (1-9 days old), grouped by age as young (< or = 3 day old) or old (> 3 day old). Baseline measurements of minute ventilation, arterial blood pressure (BP), cardiac output, and O2 consumption were repeated after continuous (inspiratory and expiratory) flow-resistive loading of 330 cmH2O.l-1 x s for 10 min. Older animals [n = 6, age 6.6 +/- 1.9 (SD) days, wt 1.99 +/- 0.5 kg] increased metabolic rate (9.8 +/- 1.4 to 10.5 +/- 1.3 ml.min-1 x kg-1, P < 0.01), whereas younger animals (n = 7, 2.6 +/- 0.6 days, 1.37 +2- 0.3 kg) invariably decreased metabolic rate with loading (9.7 +/- 1.6 to 7.9 +/- 2.6 ml.min-1 x kg-1); changes were different between groups (P < 0.02). Although ventilation decreased with loading in both groups (P < 0.01), younger animals showed a relatively greater fall from baseline values (38 vs. 27%). Despite differences in the degree of hypoventilation, arterial CO2 tension increased similarly in both groups (21%). BP increased (P < 0.01) with loading in older but not younger animals. We conclude that the decreased metabolic rate and limited hemodynamic response in younger piglets reflect an accomodative response to hypoventilation in contrast to that of older animals, which display an adult pattern of increased metabolic rate and BP with loaded breathing.

Anesthesia↗

Nonlinear pressure/volume relationship and measurements of lung mechanics in infants.

We examined the effects of within-breath changes in compliance (C) upon the accuracy of measurements of compliance and resistance (R) by linear regression analysis and by Mead and Wittenberger's method. These effects were illustrated by a computer model and by lung models with linear and nonlinear pressure/volume relationships, and were also studied in 14 normal spontaneously breathing premature infants (mean +/- SD, BW 1,290 +/- 200 g, GA 29.9 +/- 2.7 weeks, age 7.4 +/- 2.1 days). Flow was measured by pneumotachography and tidal volume was derived as digitally integrated flow, and transpulmonary pressure as airway minus esophageal pressure. We found that C and R calculated from the equation of motion is accurate only if C and R remain constant throughout the respiratory cycle. Calculated compliance depends more on C at the end than at the beginning of inspiration. A decreasing C leads to underestimation or R, while an increasing C leads to an overestimation of inspiratory R. Calculated total R may be accurate, but with low r values for measurement points. Mead and Wittenberger's method and the regression method are similarly affected by changing C; however, since the regression method is based on many more measurement points and therefore allows the detection and analysis of within-breath changes of C and R, it is less prone to erroneous results secondary to signal artifacts than Mead and Wittenberger's method.

Airway Resistance↗

Effect of maturation on the extrathoracic airway stability of infants.

The influence of maturation on extrathoracic airway (ETA) stability during quiet sleep was determined in 13 normal preterm infants of 1.41 +/- 0.14 (SD) kg birth weight and 32 +/- 2 wk estimated gestational age. Studies began in the first week of life and were performed three times at weekly intervals. A drop in intraluminal pressure within the ETA was produced by external inspiratory flow-resistive loading (60 cmH2O.l-1 x s at 1 l/min); an increase in intrinsic resistance, indicating airway narrowing, was sought as a measure of ETA instability. Baseline total pulmonary resistance was not significantly different between weeks 1, 2, and 3 (88 +/- 35, 65 +/- 24, and 61 +/- 17 cmH2O.l-1 x s, respectively) but increased markedly above baseline with loading to 144 +/- 45 cmH2O.l-1.s during week 1 (P < 0.001), 89 +/- 28 cmH2O.l-1 x s at week 2 (P < 0.01), and 74 +/- 25 cmH2O.l-1 x s at week 3 (n = 10). The increment with loading was significantly greater during week 1 than during weeks 2 or 3 (P < 0.02). Similar studies were also done in seven full-term infants in the first week of life to evaluate the influence of gestational maturity on ETA stability. Despite a relatively greater drop in intraluminal pressure within the ETA of term vs. preterm infants with loading (P < 0.001), total pulmonary resistance failed to increase (68 +/- 21 to 71 +/- 32 cmH2O.l-1.s). These data reveal that ETA instability is present in preterm infants at birth and decreases with increasing postnatal age. Full-term neonates, by comparison, display markedly greater ETA stability in the immediate neonatal period.

Aging↗

The effects of respiratory training with inspiratory flow resistive loads in premature infants.

Respiratory training of premature infants was performed to determine whether improved respiratory muscle strength and/or endurance would result. Twenty-two premature infants were randomized into control and training groups for 2 wk, using inspiratory flow-resistive loads for training (75 cm H2O.L-1.s in wk 1 and 90 cm H2O.L-1.s in wk 2). Respiratory endurance was assessed by the time interval required for the development of a 5-torr rise in transcutaneous CO2 tension during the hypoventilation induced by loaded breathing, using a moderately severe resistive load (250 cm H2O.L-1.s at 1 L.min-1). Respiratory strength was assessed by the maximum negative airway pressure generated during occluded breaths, a pressure-time integral, and an effort index. Results revealed that respiratory muscle endurance, which was not initially different between control and trained groups, increased significantly after 2 wk in the trained group by 137% (median value, p less than 0.05), whereas it remained unchanged in the control group (-24%). The trained group of infants also showed a significant decrease in baseline breathing frequency between the initial and final measurements taken 2 wk apart when compared with controls (p less than 0.05) and a lesser increase in inspiratory time with loading in the final measurement as compared with the initial value (p less than 0.05). There was no significant difference between the control and trained groups in initial or subsequent measures of respiratory muscle strength. Inspiratory flow-resistive load training appears to improve the respiratory endurance of premature infants in whom respiratory muscle fatigue has been described to play a role in the development of respiratory failure.

Apnea↗

Assessment of airway resistance in preterm infants during incremental inspiratory flow-resistive loading.

Extrathoracic airway (ETA) stability was tested by inspiratory flow-resistive loading in 10 preterm infants to determine whether ETA collapsibility was directly related to the size of the added load. A fall in intraluminal pressure was produced by applying two inspiratory flow-resistive loads of lower (L1) and higher (L2) magnitudes. An increase in intrinsic resistance was used as an index of upper airway collapsibility. Total pulmonary resistance did not change from baseline with L1 (73 +/- 26 to 71 +/- 25 cmH2O.l-1.s) but increased significantly with L2 (72 +/- 21 to 99 +/- 34 cmH2O.l-1.s, P less than 0.02) secondary to a rise in inspiratory resistance (55 +/- 21 to 109 +/- 55 cmH2O.l-1.s, P less than 0.05). Expiratory resistance did not change significantly with either load. Proximal airway pressure was more negative with L2 than with L1 in every infant (mean -4.5 +/- 0.6 vs. -3.6 +/- 0.9 cmH2O, P less than 0.05). This study shows that the ETA of preterm infants is pressure passive at high but not at low collapsing pressures, and possible explanations include limited "active" compensation by upper airway dilator muscles and an overwhelming of the "passive" defense offered by the intrinsic rigidity of the ETA to large changes in transmural pressure.

Airway Resistance↗

Metabolic and respiratory effects of flow-resistive loading in preterm infants.

Oxygen consumption (VO2) was measured during hypoventilation induced by moderate-sized flow-resistive loading in 12 preterm infants, and the results were compared with those obtained under basal conditions immediately before and after the loaded run, each of which lasted for 7-10 min. Loading was performed with a continuous flow-resistive load (inspiratory and expiratory), which was approximately threefold greater in magnitude than the intrinsic resistance of preterm infants. VO2, minute ventilation (VE), transcutaneous oxygen tension (PtCO2), and transcutaneous carbon dioxide tension (PtcCO2) were continuously monitored. Results revealed that VE decreased significantly with loading, from 336 +/- 103 to 231 +/- 58 (SD) ml.min-1.kg-1 (P less than 0.001), while returning to basal levels of 342 +/- 59 ml.min-1.kg-1 after discontinuation of the load. VO2 decreased from 7.2 +/- 1.2 to 5.9 +/- 0.9 ml.min-1.kg-1 with loading (P less than 0.001) and returned to 7.2 +/- 1.2 ml.min-1.kg-1 at the second basal measurement. PtcCO2 remained unchanged with loading, and PtcCO2 only increased from 39 +/- 8 to 41 +/- 9 Torr (P less than 0.05) with loading, while returning to 40 +/- 9 Torr at the second basal measurement. Results indicate a decrease in the metabolic rate and ventilation with loading, with relatively little increase in PtcCO2. These data can explain prior observations that minimal disturbances in oxygen and carbon dioxide tensions occur with hypoventilation during flow-resistive loading in neonates, although the precise mechanism for this reduction remains to be determined.

Humans↗

Effects of nisoldipine on stress-induced changes in haemodynamics and plasma catecholamines in normotensives and hypertensives.

In a double-blind, placebo-controlled crossover study 10 mg nisoldipine was given orally twice daily for 3.5 days to 12 normotensives and 12 essential hypertensives. In each study period, subjects were exposed to 6 min of physical exercise and 3 min of mental stress following the morning dose on day 3 and 4, respectively. Blood pressure, heart rate, systolic time intervals (day 3 only) and plasma levels of noradrenaline, adrenaline, dopamine as well as dihydroxyphenylglycol (DOPEG; the main presynaptic metabolite of noradrenaline) were determined at rest and at the end of both tests. Nisoldipine increased resting heart rate in normotensives and hypertensives, but reduced resting BP and BP during mental stress in hypertensives only. It also increased plasma concentrations of noradrenaline and DOPEG at rest and plasma noradrenaline concentrations during mental stress in both groups. However, nisoldipine affected neither exercise- nor stress-induced changes in any of the parameters monitored here. There was a correlation between the drug-induced percentage fall in resting BP and the height of BP during placebo treatment. While the resting values of plasma DOPEG were higher in hypertensives than in normotensives, those of plasma noradrenaline were not. Consequently, the linear relationship that existed between the resting plasma concentrations of DOPEG and noradrenaline in both groups was shifted to higher DOPEG levels in hypertensives when compared with normotensives. In conclusion, the effectiveness of nisoldipine in lowering BP was the more pronounced the higher the BP to begin with. Nisoldipine did not attenuate exercise- or stress-induced increases in plasma catecholamines. Essential hypertension may be associated with an enhanced presynaptic formation of DOPEG.

Adult↗

Pulmonary function in preterm infants whose lungs were ventilated conventionally or by high-frequency oscillation.

To test the hypothesis that high-frequency ventilation may reduce the risk of barotrauma and thus the incidence of chronic pulmonary damage in preterm infants who need mechanical ventilation, we measured lung function before discharge in 53 infants who needed mechanical ventilation on the first day after birth and were randomly assigned to receive intermittent mandatory ventilation (n = 26) or to receive high-frequency oscillatory ventilation (n = 27). There were no significant differences between the groups in birth weight (mean +/- SD: 1010 +/- 240 vs 1030 +/- 230 gm), gestational age (29.1 +/- 2.0 vs 28.9 +/- 2.1 weeks), initial ventilatory support (mean airway pressure 7.2 +/- 1.8 vs 8.1 +/- 2.1 cm H2O; FiO2 0.62 +/- 0.24 vs 0.75 +/- 0.22), duration of mechanical ventilation (median (range): 6 (1 to 61) vs 10 (1 to 50) days) and duration of oxygen therapy (13 (1 to 109) vs 27 (4 to 227) days) for the intermittent mandatory ventilation group and the high-frequency oscillatory ventilation group, respectively. At the time of testing, weight was 1830 +/- 340 vs 1830 +/- 290 gm, and age was 68 +/- 24 vs 70 +/- 31 days. Respiratory flows were determined by pneumotachygraphy, esophageal pressure through a water-filled feeding tube, and functional residual capacity by N2 washout. Both groups had abnormal lung function with decreased lung compliance (1.65 +/- 0.51 vs 1.54 +/- 0.36 ml/cm H2O) and elevated pulmonary resistance (102 +/- 24 vs 107 +/- 36 cm H2O/L/sec). Functional residual capacity was in the normal range (30.6 +/- 6.0 vs 28.2 +/- 10.7 ml) in both groups. There were no significant differences in lung function between the two treatment groups. These results do not support the hypothesis that high-frequency oscillatory ventilation reduces the risk of lung damage in preterm infants.

Female↗