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Gerfried Zobel

Publications and source records attributed to Gerfried Zobel.

4 recordsLinked to original sources

Two decades' experience of renal replacement therapy in paediatric patients with acute renal failure.

During the past 20 years, childhood renal replacement therapy (RRT) and the treatment of underlying diseases experienced extensive advances. We reviewed the data of our critically ill patients with acute renal failure (ARF) and RRT, comparing two decades from 1985 to 1994 and from 1995 to 2004. There were 87 patients with a mortality rate of 45% in the first decade, decreasing to 28 patients with a mortality rate of 39% in the second decade. The mortality rate decreased from 51% to 20% in patients older than one year, while the mortality rate in patients younger than one year increased from 38% to 88%. Yet, the absolute number of these non-survivors younger than one year decreased from 16 to seven patients. The decrease of RRT was mainly caused by a decrease of ARF secondary to heart surgery, oncologic disorders and sepsis. Whereas the majority of patients (75%) were treated with continuous haemofiltration in the first decade, 75% of patients were treated with continuous haemodiafiltration in the second decade. In conclusion, advances in the diagnosis and treatment of underlying disorders have reduced the need for RRT in critically ill paediatric patients during the past 20 years. In addition, there was a tendency for a decrease in the overall mortality, which might be caused by changing treatment policies and advances in RRT technology. Nevertheless, the high mortality rate in small infants is challenging.

Acute Kidney Injury↗

Invited commentary.

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Cardiac Surgical Procedures↗

Partial liquid ventilation combined with two different gas ventilatory strategies in acute lung injury in piglets: Effects on gas exchange, respiratory mechanics, and hemodynamics.

BACKGROUND/PURPOSE: Partial liquid ventilation (PLV) has been shown to improve oxygenation and lung mechanics in different models of acute lung injury. This study was designed to investigate the effects of 2 gas ventilatory strategies during PLV on gas exchange, respiratory mechanics, and hemodynamics in acute lung injury in piglets. METHODS: After induction of acute lung injury, the animals were assigned randomly to 2 groups with different positive end-expiratory pressure (PEEP) levels and tidal volumes (Vt) (group A, Vt > 12.5 mL/kg; PEEP = 6 cm H2O, n = 7; group B, Vt < 9 mL/kg, PEEP = 12 cm H2O, n = 7). Thereafter, the perfluorocarbon (PFC) liquid (30 mL/kg) was instilled into the endotracheal tube. Cardiorespiratory parameters were measured at baseline, after induction of acute lung injury, and every 30 minutes up to 120 minutes. RESULTS: During PLV, oxygenation significantly improved with no difference between both gas ventilatory strategies. The high PEEP-moderate Vt gas ventilatory strategy reduced the inspiratory airway resistance and was associated with moderate hypercapnia. There were no significant differences in hemodynamics and respiratory compliance between both gas ventilatory strategies. CONCLUSIONS: The results of this pilot study suggest that oxygenation was equally improved during PLV. This effect was independent of the mode of gas ventilation. However, the high PEEP-moderate Vt gas ventilatory technique resulted in moderate hypercapnia.

Acute Disease↗

Partial liquid ventilation versus conventional mechanical ventilation with high PEEP and moderate tidal volume in acute respiratory failure in piglets.

This prospective randomized pilot study aimed to test the hypotheses that partial liquid ventilation combined with a high positive end-expiratory pressure (PEEP) and a moderate tidal volume results in improved gas exchange and lung mechanics without negative hemodynamic influences compared with conventional mechanical ventilation in acute lung injury in piglets. Acute lung injury was induced in 12 piglets weighing 9.0 +/- 2.4 kg by repeated i.v. injections of oleic acid and repeated lung lavages. Thereafter, the animals were randomly assigned either to partial liquid ventilation (n = 6) or conventional mechanical ventilation (n = 6) at a fractional concentration of inspired O(2) of 1.0, a PEEP of 1.2 kPa, a tidal volume < 10 mL/kg body weight (bw), a respiratory rate of 24 breaths/min, and an inspiratory/expiratory ratio of 1:2. Perfluorocarbon liquid 30 mL/kg bw was instilled into the endotracheal tube over 10 min followed by 5 mL/kg bw/h. Continuous monitoring included ECG, mean right atrial, pulmonary artery, pulmonary capillary, and arterial pressures, arterial blood gas, and partial pressure of end-tidal CO(2) measurements. When compared with control animals, partial liquid ventilation resulted in significantly better oxygenation with improved cardiac output and oxygen delivery. Dead space ventilation appeared to be lower during partial liquid ventilation compared with conventional mechanical ventilation. No significant differences were observed in airway pressures, pulmonary compliance, and airway resistance between both groups. The results of this pilot study suggest that partial liquid ventilation combined with high PEEP and moderate tidal volume improves oxygenation, dead space ventilation, cardiac output, and oxygen delivery compared with conventional mechanical ventilation in acute lung injury in piglets but has no significant influence on lung mechanics.

Acute Disease↗