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Biomedical subjects

H Gerlach

Publications and source records attributed to H Gerlach.

At least 55 records · Page 3Linked to original sources

[Clinical aspects of acute lung failure in adults (ARDS)].

Acute respiratory distress syndrome (ARDS) is rare but beset with a high mortality rate. In recent years, however, a trend towards higher survival rates has been observed. High inspiratory oxygen concentrations, large tidal volumes, and high peak inspiratory airway pressures applied during mechanical ventilation have been identified as harmful to the lung and can contribute to the progression of ARDS. This had led to reconsideration of the sequelae of ventilatory therapy. Mechanical ventilation and other adjunctive strategies in ARDS have changed from the conventional approach aiming at normalisation of physiological ventilatory parameters to an elaborated approach that intends to protect the ventilated lung, prevent oxygen toxicity, recruit the infiltrated atelectatic and consolidated lung and reduce the anatomical and alveolar dead space. This new approach consists of various forms of pressure-controlled mechanical ventilation with PEEP and permissive hypercapnia, body position changes, and inhalation of nitric oxide. Should these procedures fail to improve impaired gas exchange, extracorporeal membrane oxygenation is an additional therapeutic option. None of these therapeutic procedures, however, has been tested against traditional standard treatment in a classical randomised controlled trial. The following review focuses on the latest insights into the pathophysiology, diagnosis, and treatment of ARDS.

Combined Modality Therapy↗

Evidence of nitric oxide in the exhaled gas of Asian elephants (Elephas maximus).

Nitric oxide (NO) produced in the respiratory tract is released into the respiratory gases of humans, rabbits, guinea-pigs, and rats. We analysed the NO concentrations in the exhaled gas of four awake Asian elephants. Two methods were employed: (1) exhaled gas was sampled from the elephants' trunks with a 1 L syringe and analysed for NO concentrations by chemiluminescence; (2) respiratory gas was continuously aspirated via a thin plastic tube positioned within the trunk and on-line analysed for NO concentrations by chemiluminescence. Syringe sampling (n = 4), when corrected for dilution by ambient air using linear regression analysis, revealed a mean NO concentration of 31 parts per billion (ppb); highest exhalatory concentrations measured during continuous suctioning were 27 and 28 ppb (n = 2). The exhaled NO concentrations in elephants are similar to those found in humans measured with a comparable technique. This supports the hypothesis that a size-independent 'normal value' of endogenous NO is provided in the airways which may contribute to regulation of pulmonary ventilation and perfusion by autoinhalation in some mammals.

Animals↗

The effects of nitric oxide (NO) on platelet membrane receptor expression during activation with human alpha-thrombin.

Nitric oxide (NO) is known as a regulator of platelet function by its anti-adhesive, anti-aggregating, and disaggregating properties. We investigated the modulating effects of the NO-releasing compound SIN-1 (3-morpholino-sydnonimine) on platelet surface glycoprotein (GP) expression during stimulation with human alpha-thrombin. Analysis was performed with two-color flow cytometry using fluoresceine-isothiocyanate (FITC) and phycoerythrin-(PE)-conjugated monoclonal antibodies (MoAbs) directed against GPIb CD42b), GP IIb-IIIa (CD41), P-selectin (CD62P), and MoAb PAC-1 directed against activated GP IIb-IIIa. Preincubation of platelets with SIN-1 (IC50: 1 microM) significantly decreased expression of both total and activated GP IIb-IIIa, and P-selectin in platelets stimulated with thrombin (ED50: 0.05 U/ml), whereas thrombin-induced downregulation of GP Ib was not attenuated. P-selectin expression increased in thrombin-stimulated platelets over time; in contrast, activated GP-IIb-IIIa decreased after an initial peak, indicating that thrombin-induced GP IIb-IIIa activation is spontaneously reversible. SIN-1 reduced P-selectin expression only when added before or at the same time as thrombin, whereas conformationally changed GP-IIb-IIIa was significantly reversed at up to 60 minutes after stimulation by SIN-1. In conclusion, NO attenuates activation marker expression in a dose and time dependent manner. GP-IIb-IIIa is highly sensitive to NO which not only prevents receptor activation but also promotes reversal of activated GP IIb-IIIa complex.

Blood Platelets↗

Reduction of platelet trapping in membrane oxygenators by transmembraneous application of gaseous nitric oxide.

Bleeding during extracorporeal circulation (ECC) is often induced and/or aggravated by thrombocytopenia due to platelet-trapping in hollow fiber membrane oxygenators (HFMO). Nitric oxide (NO) has platelet anti-aggregating and dis-aggregating properties. In a paired system we tested whether gaseous NO, added to the gas compartment of one of two parallel running heparin-bonded HFMO attenuated platelet-trapping. Platelet consumption was markedly reduced in the NO-treated HFMO. These data strongly indicate that the application of gaseous NO could prove a new therapeutical approach to reduce bleeding during ECC, serving as a new way of preventing platelet loss, thus reducing the need for high systemic heparinization.

Biocompatible Materials↗

Effects of inhaled nitric oxide on right ventricular function in severe acute respiratory distress syndrome.

OBJECTIVE: To compare the effects of inhaled nitric oxide (NO) and an infusion of prostacyclin (PGI2) on right ventricular function in patients with severe acute respiratory distress syndrome (ARDS). DESIGN: Randomized prospective short-term study. SETTING: Post-surgical ICU in an university hospital. PATIENTS: 10 patients with severe ARDS referred to our hospital for intensive care. INTERVENTIONS: In random sequence the patients inhaled NO at a concentration of 18 parts per million (ppm) followed by 36 ppm, and received an intravenous infusion of PGI2 (4 ng.kg-1.min-1). MEASUREMENTS AND RESULTS: Inhalation of 18 ppm NO reduced the mean (+/- SE) pulmonary artery pressure (PAP) from 33 +/- 2 to 28 +/- 1 mmHg (p = 0.008), increased right ventricular ejection fraction (RVEF), as assessed by thermodilution technique, from 28 +/- 2 to 32 +/- 2% (p = 0.005), decreased right ventricular end-diastolic volume index from 114 +/- 6 to 103 +/- 8 ml.m-2 (p = 0.005) and right ventricular end-systolic volume index from 82 +/- 4 to 70 +/- 5 ml.m-2 (p = 0.009). Mean arterial pressure (MAP) and cardiac index (CI) did not change significantly. The effects of 36 ppm NO were not different from the effects of 18 ppm NO. Infusion of PGI2 reduced PAP from 34 +/- 2 to 30 +/- 2 mmHg (p = 0.02), increased RVEF from 29 +/- 2 to 32 +/- 2% (p = 0.02). Right ventricular end-diastolic and end-systolic volume indices did not change significantly. MAP decreased from 80 +/- 4 to 70 +/- 5 mmHg (p = 0.03), and CI increased from 4.0 +/- 0.5 to 4.5 +/- 0.5 l.min-1.m-2 (p = 0.02). CONCLUSIONS: Using a new approach to selective pulmonary vasodilation by inhalation of NO, we demonstrate in this group of ARDS patients that an increase in RVEF is not necessarily associated with a rise in CI. The increase in CI during PGI2 infusion is probably related to the systemic effect of this substance.

Administration, Inhalation↗

Extracorporeal membrane oxygenation with heparin-coated systems in a 13-month-old infant with acute hypoxic respiratory failure after correction of tetralogy of Fallot.

Hemorrhagic disorders due to systemic heparinization are frequent during extracorporeal lung support (veno-venous extracorporeal membrane oxygenation: vv-ECMO). The development of heparin-coated systems has reduced the need for high-dose heparinization. Whereas the use of these heparin-coated membrane lungs and tubings has been described in former studies in adults, only few reports exist in children. This case report describes the application of a heparin-coated extracorporeal system for long-term vv-ECMO in a 13-month-old infant suffering from acute hypoxic respiratory failure after correction of tetralogy of Fallot. Only moderately elevated levels of activated clotting time (ACT, 120-160 s) and activated partial thromboplastin time (aPTT, 40-60 s) were necessary to avoid thrombotic events in the extracorporeal system. Thoracotomies were performed twice without bleeding complications by discontinuation of the systemic heparinization. We conclude that the use of heparin-coated membrane lungs in infants may improve the safety of extracorporeal lung support and permits surgical intervention without major risk of bleeding.

Acute Disease↗

Preliminary evaluation of a new continuous intra-arterial blood gas monitoring device.

Continuous intra-arterial blood gas monitoring is a new technique, possibly offering therapeutic advantages through improved monitoring in patients prone to hypoxaemia, hypercapnia and/or respiratory acidosis. Therefore, we studied the clinical applicability, reliability, precision and side effect of long-term continuous intra-arterial blood gas monitoring in patients suffering from severe acute respiratory distress syndrome. In 10 patients continuous intra-arterial blood gas monitoring based on fluorescent optodes technique was performed. At 4 h intervals, arterial blood samples for in vitro blood gas analyses were drawn, stored in ice, and analysed within 3 min. Evaluation of data retrieved from the continuous intra-arterial blood gas monitoring and in vitro blood gas analysis was based on 596 data points using 10 catheters. Average length of insertion was 281 +/- 215 h, max. lengths of stay was 750 h. Arterial blood gas data obtained in vivo were compared to the mean of in vivo and in vitro arterial blood gases. Inter-catheter bias, expressed as percent difference between continuous intra-arterial blood gas and mean in vitro blood gas analysis was 0.19 +/- 0.23% for pH. 1.1 +/- 5.2% for PaCO2 and 1.6 +/- 5.7% for PaO2. No significant gas partial pressure dependent change in precision was demonstrable. There was no significant time dependent drift in sensor precision over the study period. No negative side-effects related to IABG monitoring were observed. We conclude that long-term use of this new device is possible in patients and represents a reliable alternative to conventional in vitro arterial blood gas analysis, when continuous monitoring of blood gases and/or acid-base balance is critical.

Acid-Base Equilibrium↗

Efficacy of inhaled nitric oxide in patients with severe ARDS.

STUDY OBJECTIVE: To investigate the initial and long-term effect of nitric oxide (NO) inhalation in patients with severe acute respiratory distress syndrome (ARDS). DESIGN: Retrospective, clinical study. SETTING: University surgical ICU. PATIENTS: Eighty-seven patients with severe ARDS. INTERVENTIONS AND MEASUREMENTS: Thirty of 87 patients with ARDS inhaled low concentrations of NO for more than 48 h in addition to the standard treatment. Initial and long-term effects of NO inhalation on hemodynamics, gas exchange, and methemoglobin formation were determined. Survival of patients treated with inhaled NO was compared with survival in similar patients without NO inhalation. RESULTS: In 83% of the patients, NO increased the ratio of arterial PO2 to the fraction of inspired O2 (PaO2/FIO2) by > or = 10 mm Hg; in 87%, NO reduced venous admixture (QVA/QT) by > or = 10%, and in 63%, NO decreased mean pulmonary artery pressure (PAP) by > or = 3 mm Hg. Daily short interruption of continuous inhalation of NO for a duration of 17 +/- 2.4 days was consistently associated with a decrease in PaO2/FIO2 by 81 +/- 4 mm Hg (p < 0.001). QVA/QT increased by 8.3 +/- 0.4% (p < 0.001) and PAP by 5.3 +/- 0.3 mm Hg (p < 0.001). Over time, we observed neither tachyphylaxis nor a more pronounced effect of inhaled NO. Methemoglobin increased from 0.74 +/- 0.56% to 0.98 +/- 0.02% (p < 0.001). Survival rates in patients treated with NO did not differ from survival rates in patients not treated with NO. CONCLUSION: Beneficial effects of NO inhalation can be observed in most patients with severe ARDS; in some cases, however, it may fail to improve pulmonary gas exchange or to reduce pulmonary hypertension without obvious explanation. To demonstrate a possible increase in survival associated with NO inhalation, large randomized prospective trials are required.

Adolescent↗

Autoinhalation of nitric oxide after endogenous synthesis in nasopharynx.

Exogenous nitric oxide (NO) reduces pulmonary vascular resistance after low-dose inhalation in patients. To estimate endogenous NO synthesis in the upper respiratory tract, we measured inhaled and exhaled NO in volunteers and patients during spontaneous or controlled ventilation, respectively. 20.3 nmol per min NO was synthesised in the nasopharynx of non-smoking volunteers, leading to autoinhalation of 0.07-0.13 NO parts per million during inspiration; smokers had reduced NO synthesis. In volunteers, 50-70% of the NO was resorbed by the lungs; ventilated patients were deprived of NO autoinhalation. Bacteria in the nose may take part in endogenous NO synthesis.

Adolescent↗

Continuous monitoring of blood gases during hypercapnia in a patient with severe acute lung failure.

We report about our first experiences with a new device for continuous intra-arterial monitoring of blood gases in a patient with severe acute respiratory failure. This device facilitated continuous monitoring of PaO2, PaCO2 and pH while weaning the patient from extracorporeal membrane oxygenation (ECMO). Although sufficient oxygenation at FIO2 0.45 could be achieved after disconnection from ECMO, carbon dioxide elimination remained inadequate and resulted in severe respiratory acidosis. Within six hours, PaCO2 increased to 95 mmHg. Continuous monitoring of pH and PaCO2 helped to monitor CO2 retention and assisted the decision making process for reinstitution of ECMO.

Acute Disease↗

[The relevance of perioperative coagulation parameters to indications for blood transfusion. A retrospective analysis of 300 liver transplantations].

In the present study, a retrospective statistical analysis of laboratory data, clinical data, and perioperative blood requirements from 300 primary orthotopic liver transplantations (OLT) is described. METHODS. OLT was performed using established surgical techniques and total IV anaesthesia. Volume was substituted with red blood cells (RBC) and fresh frozen plasma (FFP) according to haemodynamic data, haemoglobin, and diuresis. Platelet counts, prothrombin time, activated partial thromboplastin time (aPTT), thrombin time, fibrinogen, and antithrombin III were registered but not used as indications for transfusions. Statistics were performed using regression analysis and analysis of variance. RESULTS. The mean intraoperative fluid requirement was 793 ml balanced salt solution, 7.1 units RBC, and 8.4 units FFP; pooled random donor platelets were given only once. During 24 h postoperatively, an average of 1.8 units RBC and 4.6 units FFP had to be transfused. Currently, 278 of the 300 patients (92.7%) are alive. There was no significant correlation between clotting data and intraoperative blood use; for postoperative transfusion rates, the preoperative aPTT and postoperative platelet counts had a significant correlation. Reviewing the basic diseases of the patients, there were significant differences in coagulation status, but no differences in transfusion rates. CONCLUSION. According to the data presented, indications for transfusions in OLT according to clotting data are not valid, since these data do not correlate with the blood requirement. In addition, strategies for pretreatment of patients such as preoperative plasmapheresis are no longer justified with respect to possible side effects.

Adult↗

[Therapy of ARDS. 2. New management methods--first clinical experiences].

Conventional treatment of the adult respiratory distress syndrome (ARDS) includes pressure-limited ventilation, permissive hypercapnia, posture changes, aggressive dehydration, selective lung ventilation, and extracorporeal gas exchange. New strategies such as nitric oxide inhalation, the implantation of an intravenous membrane oxygenator (IVOX), and surfactant replacement are currently under evaluation. Nitric oxide (NO) is an important endothelium-derived relaxing factor that is rapidly inactivated by binding to haemoglobin. Inhaling this substance has been shown to induce selective vasodilatation of ventilated lung regions. Thus, inhaled NO reduces pulmonary hypertension, increases right heart ejection fraction, and improves arterial oxygenation by redistributing blood flow away from areas with intrapulmonary shunts to areas with a normal ventilation/perfusion ratio. Dose-response analysis has revealed that effective doses for improvement of oxygenation are lower than for reduction of mean pulmonary artery pressure. The use of a miniaturised membrane lung, IVOX, for intracaval oxygen and carbon dioxide exchange is a new approach to augment gas exchange. The IVOX is inserted via an introducer into the femoral vein and is designed for placement in the full length of the vena cava. Initial experiences with this device show that the currently used prototype provides a maximum of one-third of basal gas exchange. Therefore, a more efficient device will be needed to significantly reduce high inspired oxygen concentrations and airway pressures. Moreover, there exists evidence that IVOX causes caval obstruction. Lung surfactant recovered in BAL from patients with ARDS demonstrates that fractional contents of phosphatidylcholine and phosphatidylglycerol are reduced, and that the total concentration of apoproteins is decreased. Furthermore, the surfactant surface tension-lowering activity is abnormal. Thus, administration of exogenous surfactant may have therapeutic benefits. However, the optimal surfactant preparation, the optimal amount required to restore lung surfactant activity, and the optimal method to deliver it to patients with ARDS are unknown and currently under evaluation.

Adult↗

[Breed-dependent anomalies in ornamental birds].

Following a definition of the terms pet bird and domestication, and a description of important mechanisms which may have played a role during domestication, a short review is given on the various changes that occurred and have been used selectively by humans: changes in body size, skin and feathers, skull, metabolisms, and the central nervous system including behavior and disturbances of behavior. Implications for animal welfare are considered.

Animals↗

[Histological study of different organs in clinically healthy Amazon parrots].

Histologic examination of organs of clinically healthy amazons was carried out. Only variations from the chicken are presented, among others: Occurrence of a complex of vessels and many Herbst' corpuscles in the nasal cavity; evidence of a thick muscular layer as well as many Herbst' corpuscles and nerve fibers as the cover of the syrinx; demonstration of muscular trabeculae in the parabronchia; detection of an artery accompanying the testes with muscular layers reaching into the adventitia and many nerve fibers; very small numbers of active lymph follicles within the white pulp of the spleen.

Animals↗

Inhalation of nitric oxide--a new approach in severe ARDS.

Pulmonary hypertension due to increased pulmonary vascular resistance, and hypoxaemia based on an elevated intrapulmonary shunt are important pathophysiological features of the adult respiratory distress syndrome (ARDS). Systemically infused vasodilators reduce pulmonary hypertension but also decrease mean systemic arterial pressure and impair pulmonary gas exchange because of their global vasodilatory effects on the systemic and pulmonary circulation. Recently, inhaling low concentrations of the gas nitric oxide (NO), an important endothelium-derived relaxing factor which is rapidly inactivated by binding to haemoglobin, has been shown to induce selective vasodilation of ventilated lung regions. Thus, inhaled NO reduces pulmonary hypertension in severe ARDS and improves arterial oxygenation by redistributing blood flow away from areas with intrapulmonary shunt to areas with a normal ventilation/perfusion ratio.

Administration, Inhalation↗