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Biomedical subjects

R Fretschner

Publications and source records attributed to R Fretschner.

26 records · Page 2Linked to original sources

Pulmonary artery occlusion-left atrial pressure gradient: an important factor in determining pulmonary venous vascular resistance in acute pulmonary failure.

OBJECTIVE: To determine whether pulmonary artery occlusion pressure (PAOP) accurately reflects left atrial pressure (LAP) in acute pulmonary failure. DESIGN: Sham-controlled laboratory investigation on Goettingen minipigs. INTERVENTIONS: Induction of acute respiratory failure by a 4-hr infusion of live Escherichia coli bacteria in 11 animals; two animals served as the control group. Anesthesia was obtained with methohexital/piritramide and pancuronium bromide. MEASUREMENTS AND MAIN RESULTS: Cardiac output and pressures were measured by means of femoral artery, pulmonary artery, and left atrial catheters. Arterial-alveolar Po2 ratio was calculated to evaluate pulmonary function. Measurements were obtained before and after 1 and 2 hr of the E. coli infusion. Statistical significance was tested with analysis of variance. E. coli infusion caused the hypodynamic shock and respiratory failure. The PAOP-LAP gradient was -0.3 +/- 1.6 mm Hg before bacteremia and increased significantly (p less than .001) to 2.9 +/- 1.8 and 3.4 +/- 2.0 mm Hg after 1 and 2 hr of bacteremia, respectively. No significant changes occurred in the sham group. CONCLUSIONS: A PAOP-LAP gradient may develop during acute respiratory failure. Therefore, pulmonary venous vascular resistance may be underestimated if its determination is based on PAOP. An increase in bronchial to pulmonary blood flow and pulmonary venoconstriction are discussed as hypothetical causes of a PAOP-LAP gradient during acute respiratory failure.

Animals↗

Pulmonary capillary pressure and gas exchange after E. coli bacteremia in pigs.

In 9 Goettingen minipigs we studied the effect of E. coli bacteremia on effective pulmonary capillary pressure and the longitudinal distribution of pulmonary vascular resistance. Precapillary pressure gradient (dPa) was calculated as the difference between mean pulmonary artery pressure (MPP) and effective pulmonary capillary pressure (Pc) (dPa = MPP-Pc), postcapillary pressure gradient (dPv) as the difference between Pc and left atrial pressure (dPv = Pc-LAP). The disturbance of pulmonary gas exchange was quantified by the AaDO2 quotient 1-PaO2/PAO2. Live E. coli infusion resulted in hypodynamic circulatory failure. Cardiac index fell from 3.7 +/- 0.81 . min-1.m-2 to 2.2 +/- 0.71 .min-1.m-2 after bacteremia lasting for 3.5 h. Simultaneously venous pulmonary vascular resistance rose from 25% of total pulmonary vascular resistance before to 32% after 3.5 h bacteremia, thus raising Pc from 11 mmHg to 16 mmHg. The degree of respiratory insufficiency was correlated with changes of MPP, dPa and dPv: 1-PaO2/PAO2 = 0.2 + 0.035.dPv (r = 0.829). Our results show, that the longitudinal distribution of pulmonary vascular resistance changes during septicemia, thus raising Pc. This may be an important factor in the genesis of septic pulmonary failure.

Animals↗

Acute blood pressure increase during the perioperative period.

Hypertensive reactions occur frequently in the perioperative setting. Perioperative blood pressure elevation is generally amenable to treatment in previously normotensive patients. Alterations in cerebral autoregulation and myocardial performance in chronic hypertension limit the compensatory range available to cope with perioperative blood pressure changes. In cardiovascular or cerebrally compromised patients, the pathophysiology of underlying disease must therefore be taken into account. In the cerebrally compromised patient with space-occupying lesions and even merely locally impaired cerebral autoregulation, any blood pressure increase may reduce cerebral perfusion pressure and cause further cerebral impairment. Furthermore, vasodilation of cerebral vessels must be avoided to prevent further increase in intracranial pressure with reduction of cerebral perfusion. In chronically hypertensive patients, sufficient preoperative antihypertensive therapy is essential to avoid acute perioperative blood pressure elevation. Before antihypertensive pharmacologic therapy is begun, it is essential to rule out all correctable secondary causes of hypertension, particularly impairment of ventilation and oxygen supply. When pharmacologic antihypertensive therapy is necessary, vasodilators (e.g., calcium entry blockers) may be administered to chronically hypertensive patients. If elevated intracranial pressure is the underlying cause of hypertension, cerebral vasodilation must be avoided and only centrally acting antihypertensive agents such as urapidil should be used for management.

Acute Disease↗

[Lung inflation or mechanical ventilation in extracorporeal circulation?].

Extracorporeal circulation (ECC), with its shock-like pulmonary perfusion, leads to pathomorphologic and functional pulmonary changes, the postperfusion syndrome. This study investigated the effects of different types of ventilation during ECC on postoperative pulmonary function and the resulting pulmonary blood gas changes. METHOD. Thirty patients scheduled for aortocoronary bypass surgery were studied. Patients with pre-operative left ventricular end-diastolic pressures exceeding 15 mmHg or signs of right ventricular failure, pulmonary hypertension, or pre-existing pulmonary disease were excluded. The patients were randomly assigned to one of the following three groups: Group 1 (n = 10): static pulmonary inflation during ECC, PEEP 5-10 cm H2O, F1O2 1.0; Group 2 (n = 10): low-frequency ventilation during ECC, rate 10/min, PEEP 5 cm 5H2O, F1O2 1.0; Group 3 (n = 10): medium-frequency ventilation during ECC, rate 120/min, PEEP 5 cm 5H2O, F1O2 1.0. The measurements were made under relative steady-state conditions before the start of surgery and postoperatively after an equilibrium phase of at least 15 min. During ECC using a bubble oxygenator (Bentley BOS 10 S) in moderate hypothermia, blood was aspirated from the pulmonary artery during inflation of the wedge balloon and blood gases were analyzed. Postoperative changes in pulmonary function were evaluated by venous admixture (QVA/Qt); changes in pulmonary vascular resistance after ECC were determined using the pulmonary pressure-flow relationship. RESULTS. In group 1, QVA/Qt rose significantly from 9.6 +/- 2.9% preoperatively to 13.6 +/- 3.5% postoperatively (P less than 0.05, t-test for paired samples). In groups 2 and 3, postoperative QVA/Qt was significantly lower than preoperative QVA/Qt (P less than 0.05; group 2: preoperative 11.9 +/- 3.5%, postoperative 8.1 +/- 2.6%; group 3: preoperative 11.9 +/- 3.0%, postoperative 7.8 +/- 3.2%; Fig. 1). The postoperative pulmonary pressure-flow relationship changed similarly in all three groups (Fig. 2). During ECC, blood aspirated from the pulmonary artery during inflation of the wedge balloon was fully oxygenated with a hematocrit approximating that of arterial blood. In ventilated patients, pO2 during ECC was higher in pulmonary arterial blood than in arterial blood. Pulmonary ventilation during ECC did not lead to pulmonary arterial alkalosis. CONCLUSIONS. Pulmonary ventilation during ECC can prevent a post-operative increase in venous admixture. ECC-related pulmonary vascular changes were not affected by ventilation. Middle-frequency ventilation offers no advantage over low-frequency ventilation during ECC, except that the operating field is more quiet.

Acid-Base Equilibrium↗

[Virus-specific IgM proof with routine serologic methods (author's transl)].

By the use of a specific immunosorption to insoluble adsorbentia (controlled-pore glass, polystyrene particles) the separation of IgM and IgG is performed in serum specimens, which originate from patients presenting several virus infections (mumps, measles, cytomegalovirus, herpes simplex), for the virus-specific IgM proof with routine serologic methods (CFT, HIT, NT). The results are in a good agreement to them seen in the demonstration of significant titer rises to assure the diagnosis of acute mumps and measles infections by HIT rapidly. While the new technique is also successfully applied for the determination of neutralizing IgM and IgA antibodies to HSV, no sufficient results are available to detect CMV specific IgM antibodies by CFT compared to other methods (IFT, ELISA).

Adolescent↗

Non-invasive determination of effective pulmonary blood flow: evaluation of a simplified rebreathing method.

PRIMARY OBJECTIVE: To evaluate a new technical approach to measuring effective pulmonary blood flow (PBF) in mechanically ventilated patients. RESEARCH DESIGN: Prospective clinical study; evaluation of accuracy and reproducibility. METHODS: Effective pulmonary blood flow was determined non-invasively in 32 mechanically ventilated patients by using a new rebreathing system (PBF(rb)). Cardiac output corrected for intrapulmonary shunt was taken as reference value (PBF(thd)). Bias, precision and reproducibility of the rebreathing method were calculated from duplicate measurements in each patient. MAIN RESULTS: The mean difference between PBF(rb) and PBF(thd) was - 0.67 +/- 0.83 l min(-1). The mean difference between duplicate measurements with the rebreathing system was 0.16 +/- 0.36 l min(-1). However, the accuracy of the rebreathing system tended to decrease in patients with PBF levels greater than 6 l min(-1). CONCLUSIONS: The new device appears to be reliable for determination of PBF values below 6 l min(-1). With this limitation, the present method may be used as a trend-indicator of PBF in mechanically ventilated patients.

Adult↗

ICP measurement control: laboratory test of 7 types of intracranial pressure transducers.

Intracranial pressure (ICP) monitoring has become an important parameter in the assessment of comatose patients, with raised intracranial pressure. The transducers in use have to fulfill the criteria of measurement accuracy, practicability and cost-effectiveness. However, these requirements are not always met in clinical practice. The need for ongoing quality control through independent laboratories remains. We have developed a laboratory set-up for the evaluation of intracranial pressure probes. Seven different types of currently used transducers have been tested for measurement accuracy. Under in vitro conditions 3 parameters were assessed: measurement accuracy, a 24 h drift and 10 day drifts. Tests for measurement accuracy were performed at increasing pressure levels of up to 80 mmHg. They were repeated 10 times per probe. This test allowed the simultaneous assessment of 5 different ICP probes. Drift was evaluated for 24 h and 10 days, at 6 pressure levels between 0 and 50 mmHg. Seven different types of ICP probes were tested (HanniSet, Camino, Codman, Spiegelberg, Medex, Epidyn and Gaeltec). Measurement accuracy was best with HanniSet probes. The maximum errors with this transducer were 3 mmHg. Camino and Codman showed similar results. Spiegelberg had slightly larger deviations. With Epidyn and Gaeltec the highest error were noted, up to 10 mmHg in the high pressure range. The 24 h drift was lowest with HanniSet (0.2 mmHg) and Camino (0.8 mmHg). The largest drifts were seen with Medex, Spiegelberg and Gaeltec (1.8 mmHg). Ten day drift was lowest with HanniSet (0.1 mmHg/day) and Codman (0.2 mmHg/day). The highest long-term drifts were found with Epidyn and Gaeltec (1.5 mmHg/day). Drift did not exhibit a linear pattern. After an initial rise in drift during the first 24-72 h, it decreased slowly during the next 7 days. Most ICP probes revealed measurement inaccuracy and drift. These results emphasize the necessity for ongoing evaluations of ICP probes. Therefore, tests for quality assurance are essential to establish a consistent standard of proficiency of ICP transducers.

Intracranial Pressure↗