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Nelson Claure

Publications and source records attributed to Nelson Claure.

11 recordsLinked to original sources

Acute effects of PEEP on tidal volume and respiratory center output during synchronized ventilation in preterm infants.

BACKGROUND: Positive end expiratory pressure (PEEP) is routinely used in mechanically ventilated preterm infants to maintain lung volume. An acute increase in PEEP can affect lung mechanics and tidal volume, but it is unknown if these effects elicit compensatory changes in respiratory center output. OBJECTIVES: To investigate the acute effects of changes in PEEP on tidal volume (V(T)), lung compliance (C(L)), and respiratory center output (RCO) during synchronized intermittent mandatory ventilation (SIMV) in preterm infants at different levels of basal respiratory drive. METHODS: Preterm infants were studied during SIMV at three levels of PEEP (2, 4, and 6 cm H(2)O for 2-3 min each) and at two levels of inspired CO(2). Peak inspiratory pressure (PIP) was adjusted to maintain the same delta pressure at the airway. RCO was assessed by measuring total diaphragmatic electrical activity. The level of inspired CO(2) was adjusted by modifying the instrumental dead space. RESULTS: Sixteen preterm infants GA: 25 +/- 2 weeks, BW: 786 +/- 242 g, age: 18 +/- 15 days, SIMV: rate 14 +/- 3 b/min, Ti: 0.35 +/- 0.01 s, PIP: 16 +/- 1 cm H(2)O, and FiO(2): 0.31 +/- 0.06 were studied. At both levels of inspired CO(2), C(L), V(T), and V'(E) from spontaneous and mechanical breaths decreased significantly with higher PEEP. RCO did not change, but at lower respiratory drive, there was a trend towards an increase in RCO with higher PEEP. CONCLUSION: Higher PEEP levels can have acute negative effects on lung mechanics and ventilation in preterm infants without a sufficient compensatory increase in RCO.

Humans↗

Definitions and diagnostic criteria for bronchopulmonary dysplasia.

The changes in clinical presentation of bronchopulmonary dysplasia (BPD) in recent years have made many of the original definitions of BPD obsolete. The use of supplemental oxygen as a criterion for BPD diagnosis has many limitations. Supplemental oxygen is necessary to treat these infants, but at the same time it plays an important role in the pathogenesis of BPD. Because there are no accepted standards for supplemental oxygen administration, there are wide variations for its indications among different centers and this has a marked effect on the reported incidence of BPD. For this reason, it is essential to standardize the indications for supplemental oxygen when duration of oxygen therapy is used as the main criteria to diagnose BPD. Using supplemental oxygen need at specific time points does not necessarily reflect chronic lung damage and should be avoided as a single diagnostic criterion for BPD. A prolonged duration of supplemental oxygen is necessary to demonstrate the presence of chronic lung damage. The criteria based on supplemental oxygen at 36 weeks postmenstrual age has gained wide acceptance, but it is a less stringent criterion for the more mature infants. The longer the gestation, the shorter the time on oxygen that is required to meet this BPD criterion. None of the proposed criteria based on duration of oxygen therapy have shown a strong predictive value for long-term outcome. In view of all these shortcomings, it is essential to develop more objective physiologic tools to define the degree of lung damage and improve the prediction for long-term outcome in these infants.

Bronchopulmonary Dysplasia↗

Randomized, controlled trial comparing synchronized intermittent mandatory ventilation and synchronized intermittent mandatory ventilation plus pressure support in preterm infants.

BACKGROUND: Prolonged mechanical ventilation is associated with lung injury in preterm infants. In these infants, weaning from synchronized intermittent mandatory ventilation may be delayed by their inability to cope with increased respiratory loads. The addition of pressure support to synchronized intermittent mandatory ventilation can offset these loads and may facilitate weaning. OBJECTIVE: The purpose of this work was to compare synchronized intermittent mandatory ventilation and synchronized intermittent mandatory ventilation plus pressure support in weaning from mechanical ventilation and the duration of supplemental oxygen dependency in preterm infants with respiratory failure. METHODS: Preterm infants weighing 500 to 1000 g at birth who required mechanical ventilation during the first postnatal week were randomly assigned to synchronized intermittent mandatory ventilation or synchronized intermittent mandatory ventilation plus pressure support. In both groups, weaning followed a set protocol during the first 28 days. Outcomes were assessed during the first 28 days and until discharge or death. RESULTS: There were 107 infants enrolled (53 synchronized intermittent mandatory ventilation plus pressure support and 54 synchronized intermittent mandatory ventilation). Demographic and perinatal data, mortality, and morbidity did not differ between groups. During the first 28 days, infants in the synchronized intermittent mandatory ventilation plus pressure support group reached minimal ventilator settings and were extubated earlier than infants in the synchronized intermittent mandatory ventilation group. Total duration of mechanical ventilation, duration of oxygen dependency, and oxygen need at 36 weeks' postmenstrual age alone or combined with death did not differ between groups. However, infants in synchronized intermittent mandatory ventilation plus pressure support within the 700- to 1000-g birth weight strata had a shorter oxygen dependency. CONCLUSIONS: The results of this study suggest that the addition of pressure support as a supplement to synchronized intermittent mandatory ventilation during the first 28 days may play a role in reducing the duration of mechanical ventilation in extremely low birth-weight infants, and it may lead to a reduced oxygen dependency in the 700- to 1000-g birth weight strata.

Female↗

Effects of volume-targeted synchronized intermittent mandatory ventilation on spontaneous episodes of hypoxemia in preterm infants.

BACKGROUND: Hypoxemic episodes in ventilated preterm infants are frequently caused by reduced ventilation due to a decrease in lung volume and acute worsening of respiratory mechanics. OBJECTIVE: To compare the efficacy of conventional time-cycled, pressure-limited flow synchronized intermittent mandatory ventilation (SIMV) and volume-targeted SIMV (VT-SIMV) in reducing the frequency and severity of these episodes. METHODS: SIMV and VT-SIMV were compared in preterm infants with frequent spontaneous episodes of hypoxemia. VT-SIMV was provided with the Draeger Babylog 8000plus ventilator in volume-guarantee mode. RESULTS: In all, 32 infants (birth weight 668 +/- 126 g, gestational age 24.8 +/- 1.1 weeks, age 37.5 +/- 17.3 days) were studied during 2-hour periods of SIMV and VT-SIMV in random sequence. In an initial phase, a group of 12 infants was supported during VT-SIMV with a target tidal volume of 4.5 ml/kg (VT-SIMV 4.5). A planned interim analysis did not show differences in frequency and duration of hypoxemia between VT-SIMV 4.5 and SIMV, and the initial phase was stopped. In a second phase of the study, 20 infants were studied while supported with a target tidal volume of 6.0 ml/kg during VT-SIMV (VT-SIMV 6.0). In the second phase of the study, the frequency of the hypoxemic episodes did not change but the mean episode duration was shorter during VT-SIMV compared to SIMV. The proportion of mechanical breaths with small tidal volumes (< or =3 ml/kg) was reduced during VT-SIMV 6.0 versus SIMV, while the peak inspiratory pressure and mean airway pressure were increased. CONCLUSION: VT-SIMV did not reduce the frequency of hypoxemic episodes, but VT-SIMV 6.0 was effective in reducing the duration of the hypoxemic episodes.

Gestational Age↗

The association between early tracheal colonization and bronchopulmonary dysplasia.

OBJECTIVE: To evaluate the relationship between early tracheal colonization and bronchopulmonary dysplasia (BPD). STUDY DESIGN: This is a retrospective cohort study which included 308 inborn neonates admitted to the newborn intensive care unit at the University of Miami Jackson Memorial Medical Center between January 1997 and December 2000 with birthweight 500 to 1000 g, who required mechanical ventilation on the first day of life. Chorioamnionitis was diagnosed by maternal symptoms and histopathopathology. Tracheal cultures were obtained immediately after tracheal intubation. BPD was diagnosed in neonates who had supplemental oxygen requirement for more than 28 days. Pearson's chi(2) and Logistic Regression Analysis were used to evaluate the relationship between chorioamnionitis, positive initial tracheal cultures and BPD, after adjusting for confounding variables. RESULTS: In patients with chorioamnionitis, the incidence of early positive tracheal cultures was 41% compared to 16% in those without chorioamnionitis, (p < 0.00001). In patients with birthweight 700 to 1000 g, a positive early tracheal culture increased the risk of BPD (OR = 2.42, CI 1.05 to 5.62, p < 0.05). CONCLUSION: Preterm infants exposed to chorioamnionitis have an increased incidence of early tracheal colonization. This early tracheal colonization may predispose them to develop BPD.

Bronchopulmonary Dysplasia↗

Effects of pressure support during an acute reduction of synchronized intermittent mandatory ventilation in preterm infants.

BACKGROUND: During weaning of synchronized intermittent mandatory rate in preterm infants, the spontaneous breaths must overcome the resistance of the endotracheal tube and the disease-induced respiratory loads. Pressure Support (PS) can be used as an adjunct to synchronized intermittent mandatory ventilation (SIMV) to partially unload the spontaneous breaths. OBJECTIVE: To evaluate the effects of two levels of PS as an adjunct to SIMV on gas exchange and breathing effort during an acute reduction in SIMV rate in preterm infants. METHODS: In all, 15 infants (birth weight 793 +/- 217 g, gestational age 26.4 +/- 1.5 weeks, postnatal age 15 +/- 16 days). Ventilatory support consisted of SIMV with peak inspiratory pressure (PTP) 16.3 +/- 1.3 cmH(2)O, positive end-expiratory pressure (PEEP) 4.3 +/- 0.6 cmH(2)O, and fraction of inspired oxygen (FiO(2)) 0.26 +/- 0.06. Infants were studied during four 30-minute periods: Two baseline SIMV periods and two periods of SIMV plus PS, in random order. During SIMV + PS, SIMV rate was lowered by 10 breaths per minute (b/minute) and PS was set at 3 and 6 cmH(2)O (SIMV+PS3 and SIMV + PS6, respectively). RESULTS: SIMV rate was reduced during SIMV + PS from 21.4 +/- 6.6 to 11.4 +/- 6.6 b/minute. Arterial oxygen saturation, transcutaneous carbon dioxide tension and FiO(2) remained unchanged. Minute ventilation, total respiratory rate and mean airway pressure were higher during SIMV + PS. Per-breath inspiratory effort was lower during SIMV + PS and this was more striking during SIMV + PS6. Spontaneous inspiratory effort per minute increased during SIMV + PS3, but this increase was averted during SIMV + PS6. CONCLUSION: Assistance of the spontaneous breaths with pressure support maintained gas exchange. PS of 6 cm H(2)O prevented an increase in breathing effort during an acute 50% reduction in SIMV rate.

Humans↗

Patent ductus arteriosus and respiratory outcome in premature infants.

A persistent ductus arteriosus is a common event in preterm infants. The systemic-to-pulmonary shunting that occurs as the pulmonary vascular resistance decreases after birth can have significant cardiovascular and respiratory consequences. Acute pulmonary effects include pulmonary edema and hemorrhage, worsened lung mechanics and deterioration in gas exchange with hypoxemia and hypercapnia. The increased pulmonary blood flow can also produce damage to the capillary endothelium and trigger an inflammatory cascade. This, plus the need for longer and more aggressive mechanical ventilation, can explain the association between patent ductus arteriosus and an increased risk for bronchopulmonary dysplasia in extremely premature infants.

Bronchopulmonary Dysplasia↗

Acute effects of inhaled nitric oxide on pulmonary and cardiac function in preterm infants with evolving bronchopulmonary dysplasia.

BACKGROUND: Inhaled nitric oxide (iNO) reduces pulmonary vascular resistance by preferential vasodilation in ventilated lung units. In experimental animals, iNO also reduces airway resistance by smooth muscle relaxation. Hence, there may be a therapeutic role for iNO in evolving bronchopulmonary dysplasia (BPD). OBJECTIVE: To evaluate the acute effects of low-dose iNO on lung mechanics, ventilation distribution, oxygenation, and cardiac function in preterm infants with evolving BPD. METHODS: Measurements of lung compliance (C(L)), airway resistance (R(L)), ventilation-distribution (N(2) clearance in multiple-breath washout), oxygenation (SpO(2)), left ventricular ejection fraction (LVEF) and right ventricular shortening fraction were obtained before and during 2 hours of iNO (10 ppm) in a group of ventilated preterm infants with evolving BPD. RESULTS: A total of 13 preterm infants with (mean+/-SD) BW: 663.8+/-116 g, GA: 24.9+/-1.2 weeks, age: 32+/-14 days, mean airway pressure: 6.7+/-0.9 cmH(2)O and fraction of inspired oxygen: 0.35+/-0.06 were studied. iNO did not affect C(L), R(L) or N(2) clearance. There was a small increase in LVEF. Mean SpO(2) remained unchanged, but the duration of spontaneous hypoxemic episodes increased during iNO. CONCLUSION: Low-dose iNO had no acute effects on lung function, cardiac function and oxygenation in evolving BPD.

Administration, Inhalation↗

Bronchopulmonary dysplasia: changes in pathogenesis, epidemiology and definition.

Bronchopulmonary dysplasia (BPD) continues to be one of the most common long-term complications associated with preterm birth. Its incidence is increasing as the survival of extreme premature infants improves, but its clinical presentation is milder than the original description of Northway and collaborators. In contrast to the classic BPD that was strongly related to mechanical injury and oxygen toxicity, current forms of the condition are more related to immaturity, perinatal infection and inflammation, persistent ductus arteriosus and disrupted alveolar and capillary development. Many different definitions of BPD have been proposed, most of which are based on the duration of supplemental oxygen requirement. The different definitions can produce strikingly different incidence figures, which may account for the wide variations in the condition reported in the literature. Some of the limitations of the criteria most commonly used to diagnose BPD are discussed in this article.

Bronchopulmonary Dysplasia↗

Elimination of ventilator dead space during synchronized ventilation in premature infants.

BACKGROUND: Mainstream airflow sensors used in neonatal ventilators to synchronize mechanical breaths with spontaneous inspiration and measure ventilation increase dead space and may impair carbon dioxide (CO(2)) elimination. OBJECTIVE: To evaluate a technique consisting of a continuous gas leakage at the endotracheal tube (ETT) adapter to wash out the airflow sensor for synchronization and ventilation monitoring without CO(2) rebreathing in preterm infants. DESIGN: Minute ventilation (V'(E)) by respiratory inductance plethysmography, end-inspiratory and end-expiratory CO(2) by side-stream microcapnography, and transcutaneous CO(2) tension (TcPCO(2)) were measured in 10 infants (body weight, 835+/-244 g; gestational age, 26+/-2 weeks; age, 19+/-9 days; weight, 856+/-206 g; ventilator rate, 21+/-6 beats/min; PIP, 16+/-1 centimeters of water (cmH(2)O); PEEP, 4.2+/-0.4 cmH(2)O; fraction of inspired oxygen (FIo(2)), 0.26+/-0.6). The measurements were made during four 30-minute periods in random order: IMV (without airflow sensor), IMV+Sensor, SIMV (with airflow sensor), and SIMV+Leak (ETT adapter continuous leakage). RESULTS: Airflow sensor presence during SIMV and IMV+Sensor periods resulted in higher end-inspiratory and end-expiratory CO(2), Tcpco(2), and spontaneous V'(E) compared with IMV. These effects were not observed during SIMV+Leak. CONCLUSIONS: The significant physiologic effects of airflow sensor dead space during synchronized ventilation in preterm infants can be effectively prevented by the ETT adapter continuous leakage technique.

Blood Gas Analysis↗

Effects of volume-guaranteed synchronized intermittent mandatory ventilation in preterm infants recovering from respiratory failure.

OBJECTIVE: Volume guarantee (synchronized intermittent mandatory ventilation [SIMV]+VG) is a novel mode of SIMV for automatic adjustment of the peak inspiratory pressure to ensure a minimum set mechanical tidal volume (V(T mech)). The objective of this study was to compare the effects of SIMV+VG with conventional SIMV on ventilation and gas exchange in a group of very low birth weight infants recovering from acute respiratory failure. METHODS: Nine infants were initially studied during 2 consecutive 60-minute ventilatory modalities of conventional SIMV (ventilator settings by clinical team) and SIMV+VG 4.5 (V(T mech) set at 4.5 mL/kg) in random order. Eight additional infants were studied during the same ventilatory modalities plus 1 additional epoch consisting of SIMV+VG 3.0 (V(T mech) set at 3.0 mL/kg). RESULTS: Peak inspiratory pressure was significantly lower during SIMV+VG 3.0. Mean airway pressure, V(T mech), number of large V(T mech) (>7 mL/kg), and mechanical minute ventilation (V'(E)) were reduced during SIMV+VG 4.5 compared with SIMV and were further reduced during SIMV+VG 3.0. Spontaneous V'(E) increased during SIMV+VG 4.5 and was even higher during SIMV+VG 3.0. The resulting total V'(E) was higher during both SIMV+VG modes compared with SIMV. Arterial oxygen saturation by pulse oximetry, transcutaneous carbon dioxide tension, and fraction of inspired oxygen did not differ significantly, although transcutaneous carbon dioxide tension increased slightly during SIMV+VG 3.0. CONCLUSIONS: The short-term use of SIMV+VG resulted in automatic weaning of the mechanical support and enhancement of the spontaneous respiratory effort while maintaining gas exchange relatively unchanged in comparison to conventional SIMV.

Humans↗