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[Additional gadget for new techniques of artifical respiration with the Bennett repirator PR 2, particulary suitable for use in children (author's transl)].

A new gadget for the Bennett PR 2 repirator is described which in modified form can also be used with other types of apparatus. It makes possible new techniques of artificial respiration like IPPB with PEEP or compensated PEEP, the gasp respiration with CPAP or CPAP by itself, in a simple way. In neonates one may do without the often problematical assisted respiration when weaning from the respirator. Further it is now possible to achieve sufficient warming and humidification of the gas mixture by using an auxiliary gas flow in the expiratory phase.

Child↗

[The unstable thoracic wall: possibilities for treatment].

In the treatment of severe chest injuries with flail chest either positive-pressure mechanical ventilation (and tracheostomy) is necessary or the surgical stabilisation of the chest wall by osteosyntheses of the broken ribs. Fourteen patients (age 27-73) with severe chest injuries and paradoxical respiration were operated and the rib fractures stabilized by means of small reconstruction plates and cerclage wires. Three patients died due to other reasons. There were no serious complications. The results are reported. In severe chest injuries surgical treatment seems to be justified; it reduces the need of artificial respiration and can be recommended.

Bone Wires↗

Role of the diaphragm in the genesis of lower esophageal sphincter pressure in the cat.

To determine the role of the diaphragm in the genesis of the high-pressure zone at the lower esophageal sphincter (LES) we studied the effect of diaphragmatic contraction on lower esophageal sphincter pressure in 10 anesthetized adult cats. Despite anchoring the pressure recording assembly within the LES to prevent axial movement of the sphincter during respiration relative to the pressure recording ports, there was an average oscillation in LES pressure of 17.4 +/- 5.5 mmHg, the frequency of which was the same as the respiratory rate. Peak LES pressure occurred at end-inspiration corresponding with peak diaphragmatic electromyogram. During periods of central apnea induced by manual hyperventilation there was absence of both diaphragmatic electromyogram and the oscillations in LES pressure. Lower esophageal sphincter pressure during apnea was equal to end-expiratory pressure during spontaneous respiration. Following complete neuromuscular blockade with pancuronium, artificial respiration with increasing tidal volumes resulted in increasing oscillations in pressure. However, the magnitude of the pressure oscillation even at tidal volumes four times normal was always significantly below that observed during spontaneous eupnic respiration. Furthermore, progressive augmentation of diaphragmatic electromyogram activity by breathing 5% CO2 in air revealed a linear correlation between the magnitude of the respiratory-induced pressure oscillations of the LES and peak integrated diaphragmatic electromyogram in individual animals. It is concluded, therefore, that (a) intrinsic LES tone is best approximated by end-expiratory pressure during spontaneous respiration, (b) the respiratory-induced oscillations in LES pressure are primarily the result of active diaphragmatic contraction, and (c) the level of diaphragmatic electrical activity directly influences the magnitude of the pressure oscillation.

Analysis of Variance↗

Total exclusion from external respiration protects lungs from development of fibrosis after paraquat intoxication.

Most survivors of paraquat intoxication go on to develop fibrosis of the lung leading to death within a few weeks. The pathogenic effects of paraquat are based on the formation of oxygen free radicals. A cascade reaction occurs at the cell membrane which is damaged and cell integrity is destroyed. Fibroblasts migrate into the damaged region leading to the laying down of collagen and subsequent fibrosis. Currently paraquat intoxication is treated with gastrointestinal lavage, haemoperfusion and haemodialysis with mixed results. Artificial respiration with low percentage of inspired oxygen is instituted in order to decrease the possible release of oxygen radicals. However, in most cases, developing fibrosis prevents this treatment continuing and requires increased concentrations of inspired O2 and increased ventilation pressure. The combination of increased FiO2 and barotrauma leads to a vicious circle of parenchymal lung damage. In this study we present a treatment designed to avoid the development of lung fibrosis using total exclusion of segments of the lung from external ventilation. Exclusion from external ventilation was performed in animal experiments by instillation of Ethibloc, an amino acid glue, in one main bronchus to create an atelectasis. In different experimental groups this procedure was performed before and after intraperitoneal intoxication with paraquat. Four to twelve days later the experimental animals were sacrified and the ventilated lungs and the atelectatic lungs were compared. The ventilated lungs showed dose-dependent damage to the alveolar epithelium and gross interstitial oedema. In some cases fibrosis was seen. The atelectatic parts of the lung were not different from the control group.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Further observations on the cardiotoxicity of isoprenaline during hypoxia.

1 In dogs respired with 10% oxygen: 90% nitrogen, only five out of 16 dogs survived repeated intravenous doses of isoprenaline (either 0.5 or 1.0 mug/kg) and only one out of six dogs survived repeated isoprenaline inhalations from a pressurized aerosol.2 In dogs respired with 15% oxygen: 85% nitrogen, five out of six dogs survived repeated intravenous doses of isoprenaline (2.5 mug/kg).3 The fatal response in these animals consisted of a fall in heart rate, arterial and pulse pressures. Sinus rhythm persisted even after the arterial pressure had fallen, though occasionally a slow A-V nodal rhythm or irregular ventricular ectopic beats occurred. Ventricular fibrillation did not occur.4 Eight out of 10 dogs brought to the verge of a fatal response with 10% oxygen: 90% nitrogen and repeated doses of isoprenaline (2.5 mug/kg) were resuscitated by the administration of 100% oxygen and, when necessary, cardiac massage.5 A group of five dogs survived the combined effects of repeated doses of isoprenaline (2.5 mug/kg) and respiration with 10% oxygen: 90% nitrogen when the time interval between doses was 11 min, instead of the usual 5 minutes.6 Control of pH by infusion of sodium bicarbonate did not protect the dogs from the combined effects of hypoxia and repeated isoprenaline challenge.7 After a 60 min period of continuous isoprenaline infusion in dogs breathing room air, only one of 10 dogs survived artificial respiration with 10% oxygen: 90% nitrogen and repeated challenge with intravenous isoprenaline (1.0 mug/kg) at 5 min intervals. At the higher infusion levels of isoprenaline (0.1 and 1.0 mug kg(-1) min(-1)), two dogs out of four died after the hypoxic mixture was started but before any isoprenaline challenge was given.8 The possible relevance of these findings in dogs to the recently observed increase in mortality in young asthmatics is discussed.

Animals↗

Activity of brainstem respiratory neurones just before the expiration-inspiration transition in the rat.

Inspiratory activity of the hypoglossal nerve (XIIn) often precedes that of the phrenic nerve (PHRn). By manipulating artificial respiration, this preceding activity (pre-I XIIn activity) can be lengthened or isolated prematurely (decoupled XIIn activity) without developing into overt PHRn-associated inspiratory bursts. We hypothesized that these pre-I and decoupled XIIn activities, collectively termed 'XIIn-w/o-PHRn activity', reflect certain internal states of the respiratory centre at the period just prior to the transition from the expiratory phase to the inspiratory phase. In decerebrate, neuromuscularly blocked and artificially ventilated rats, the firing properties of medullary respiratory neurones were examined during the period of the XIIn-w/o-PHRn activity. The majority of the inspiratory neurones examined could be classified into two types: one was active (XIIn-type) and the other was inactive (PHRn-type) during the XIIn-w/o-PHRn period. On the other hand, augmenting expiratory (E-AUG) neurones of the Bötzinger complex (BOT) and the caudal ventral respiratory group (VRG) fired intensively during this period. Their firing stopped at the onset of the overt inspiratory bursts in the XIIn and PHRn, suggesting that BOT E-AUG neurones inhibit PHRn-type, but not XIIn-type, inspiratory neurones. We hypothesize that XIIn-type inspiratory activity facilitates the phase change from expiration to inspiration, through activation of certain inspiratory neurones that inhibit the firing of BOT E-AUG neurones and generation of the overt inspiratory bursts in XIIn-type and PHRn-type inspiratory neurones.

Animals↗

Prevention of ventilator-associated pneumonia by oral decontamination: a prospective, randomized, double-blind, placebo-controlled study.

UNLABELLED: Colonization of the intestinal tract has been assumed to be important in the pathogenesis of ventilator-associated pneumonia (VAP), but relative impacts of oropharyngeal, gastric, or intestinal colonization have not been elucidated. Our aim was to prevent VAP by modulation of oropharyngeal colonization, without influencing gastric and intestinal colonization and without systemic prophylaxis. In a prospective, randomized, placebo-controlled, double-blind study, 87 patients received topical antimicrobial prophylaxis (gentamicin/ colistin/vancomycin 2% in Orabase, every 6 h) in the oropharynx and 139 patients, divided over two control groups, received placebo (78 patients were studied in the presence of patients receiving topical prophylaxis [control group A] and 61 patients were studied in an intensive care unit where no topical prophylaxis was used [control group B]). Baseline characteristics were comparable in all three groups. Topical prophylaxis eradicated colonization present on admission in oropharynx (75% in study group versus 0% in control group A [p < 0.00001] and 9% in control group B patients [p < 0.00001]) and in trachea (52% versus 22% in A [p = 0.03] and 7% in B [p = 0.004]). Moreover, topical prophylaxis prevented acquired oropharyngeal colonization (10% versus 59% in A [p < 0.00001] and 63% in B [p < 0.00001]). Colonization rates in stomach and intestine were not affected. Incidences of VAP were 10% in study patients, 31% in Group A, and 23% in Group B patients (p = 0.001 and p = 0.04, respectively). This was not associated with shorter durations of ventilation or ICU stay or better survival. Oropharyngeal colonization is of paramount importance in the pathogenesis of VAP, and a targeted approach to prevent colonization at this site is a very effective method of infection prevention. KEYWORDS: cross infection, prevention and control; respiration, artificial, adverse effects; antibiotics, administration and dosage infection control methods; pneumonia, etiology, prevention and control; intubation, intratracheal, adverse effects

Administration, Topical↗

Effect of erabutoxin on respiration of rabbits.

The effect of erabutoxin (ETX) was examined on respiration of rabbits. A single dose of 15 microgram/kg or 25 microgram/kg of ETX did not cause respiratory paralysis, but repeated administration of 15 microgram/kg of ETX at 3 hour intervals (three times) or 25 microgram/kg at 4 hour intervals (twice) caused fatal respiratory paralysis. Furthermore, a single administration of 50 microgram/kg of ETX caused fatal respiratory paralysis within 2 hours after the administration in all animals. This respiratory paralysis caused by ETX was reversible and of long duration (10-20 hour). This respiratory paralysis was not blocked by the administration of anticurare agents (neostigmine, edrophonium) or respiratory stimulants (nikethamide, picrotoxin, dimorpholamine). Since ETX had no influence on the circulatory system, death caused by ETX was prevented with application of artificial respiration.

Animals↗

Beta-endorphin and catecholamine concentrations during chronic and acute stress in intensive care patients.

BACKGROUND: Only little information is available on the effects of acute and chronic stress on the opioid and adrenergic systems in patients at intensive care units. Animal models showed a stimulation of beta-endorphin and catecholamines. METHODS: In the present study, in 12 patients who were intubated and were receiving artificial respiration because of cardiopulmonary resuscitation or primary respiratory failure, venous plasma concentrations of adrenaline, noradrenaline and beta-endorphin immuno-reactive material (IRM) were determined by a radioimmunoassay. In these patients, regular endobronchial suctioning was necessary. For inducing acute stress patients underwent three different methods of endobronchial suctioning or lavage. RESULTS: In all patients concentrations of both adrenaline (529 +/- 117 pg/ml) and noradrenaline (2694 +/- 262 pg/ml) were increased above normal resting values. In 5 patients plasma beta-endorphin IRM concentration was below the detection limit, the other patients had beta-endorphin IRM concentrations above normal (26.65 +/- 3.80 pg/ml). Epinephrine (227 +/- 33 vs. 743 +/- 189 pg/ml; p < 0.01) and norepinephrine (1673 +/- 161 vs. 3423 +/- 368 pg/ml; p < 0.001) were significantly lower in the group with undetectable beta-endorphin IRM concentrations than in the group with detectable beta-endorphin IRM whereas heart rate was significantly higher (120/min vs. 99/min; p < 0.0003). beta-endorphin IRM concentrations were correlated negatively to heart rate (-0.55; p < 0.0005) and positively to the noradrenaline concentration (0.56; p < 0.0004). Artificially ventilated patients showed increased levels of beta-endorphin (19.27 +/- 3.16 pg/ml) as compared to the spontaneously breathing patients (13.29 +/- 4.34 pg/ml). Following acute stress due to endobronchial suctioning or lavage, blood pressure (150/70 mmHg vs. 172/81 mmHg; p < 0.01) and heart rate (107/min vs. 119/min; p < 0.005) increased in all patients, the other parameters did not. CONCLUSION: It is concluded that beta-endorphin IRM concentration in the plasma is linked to epinephrine and norepinephrine concentrations under intensive care conditions. Endobronchial lavage or suctioning does not influence beta-endorphin IRM levels in plasma.

Acute Disease↗

Use of the rocking bed to augment ventilation in patients with poliomyelitis.

As the first step in an attempt to clarify criteria for use of the rocking bed rather than the respirator as an aid to breathing for patients with weakness of respiratory muscle function caused by poliomyelitis, ventilation studies were done on seven patients with pronounced weakness or paralysis of the respiratory muscles. Average tidal air volume was considerably less when the patient was on the rocking bed than when he was in the respirator. Since the tidal air volume with the patient on the rocking bed represents the maximum that can be produced with the apparatus, whereas the volume in the respirator represents the patient's usual tidal air and the respirator is capable of a greater volume if necessary, it is apparent that in cases of complete paralysis of the respiratory muscles the respirator has a large margin of safety, the rocking bed none. From clinical observations made on 51 patients who were put upon the rocking bed-23 of them early in the course of the disease and 28 after they had been ill three months or more-it was concluded that the rocking bed is contraindicated for patients who are febrile and in whom the disease is progressing rapidly, and for those with atelectasis or urinary or pulmonary infection. It must be used with extreme care in the case of patients early in the course of the disease who are not tracheotomized, because of a tendency toward increased accumulation of mucus and the danger of atelectasis. General guides were developed with regard to use of the rocking bed for patients with post-acute poliomyelitis, and somewhat different rules were drawn for use of the apparatus in cases in which there is a chronic respiratory problem.The rocking bed will give artificial respiration in cases of respiratory weakness, but will not provide enough tidal air for the patient with paralysis of the muscles of respiration.

Humans↗

[Ventilation during cardiopulmonary resuscitation (CPR). A literature study and analysis of ventilation strategies].

In a recently published German multicenter study, 25% of the patients with witnessed cardiac arrest outside the hospital were resuscitated successfully and discharged from the hospital. Approximately 100,000 people suffer a fatal cardiac arrest in Germany annually, which is approximately tenfold the number of deaths from motor vehicle accidents. Cardiopulmonary resuscitation (CPR) performed by bystanders is an important part of the chain of survival to minimize the time interval without artificial circulation and ventilation in a cardiac arrest victim. This is especially important in areas with long response times of the emergency medical service (EMS). Early examples of ventilation have been described throughout history. References to mouth-to-mouth ventilation (MTMV) are found in the Bible, in a description of the resuscitation of a coal miner in 1744, and in an experiment in 1796 demonstrating that exhaled gas was safe for breathing. In 1954, Elam and colleagues described artificial respiration with the exhaled gas of a rescuer using a mouth-to-mask ventilation method. The modern CPR era started with the combination of MTMV and chest compressions 35 years ago. However, the value of MTMV is currently under discussion because of a widespread fear of transmission of infectious diseases. Healthcare professionals have stated in several studies that they may withhold MTMV when confronted with a cardiac arrest in a stranger. Although an infection with Mycobacterium tuberculosis is more likely than one with HIV via MTMV, the fear of the public is understandable. An expert committee of the American Heart Association stated that MTMV may be omitted in the initial phase of cardiac arrest, and considered recommending chest compressions only if the EMS will arrive rapidly. In paralyzed volunteers, however, ventilation induced by chest compressions was not able to provide sufficient gas exchange, especially when the airway was not protected. Laboratory investigations studying ventilation during CPR showed controversial results; in one animal model of cardiac arrest with muscle paralysis, chest compressions were not sufficient for adequate gas exchange, but active compression-decompression CPR achieved reasonable ventilation. Animal models that prevented gasping during cardiac arrest required ventilation during CPR, whereas gasping animals seemed to be satisfactorily ventilated with chest compressions alone. The question whether spontaneous gasping after cardiac arrest in humans may be sufficient for oxygenation and carbon dioxide elimination is debatable and remains unanswered at this time. When cardiac arrest is monitored, frequent coughing by the patient may maintain artificial ventilation and circulation for 30 s. The strategy to compress the thorax first and then maintain the airway and perform ventilation may only have an advantage for the first 30 s of CPR. Therefore, MTMV remains the therapy of choice to ventilate the victim of cardiac arrest. If a rescuer chooses to not perform MTMV, at least chest compressions should be administered. During ventilation with an unprotected airway, tidal volumes of 0.5 l instead 0.8-1.2 l may have an advantage. This strategy would decrease the inspiratory flow rate and, therefore, peak airway inflation pressure, which is associated with stomach inflation. Animal models indicate that lower esophageal sphincter pressure may decrease rapidly to 5 cm H2O during cardiac arrest, which may further increase the importance of a low peak airway pressure during ventilation with an unprotected airway. Gastric inflation may cause, besides regurgitation, aspiration, and pneumonia, an increased intragastric pressure, which may push up the diaphragm, decrease lung compliance, and induce a vicious circle of hypoventilation and stomach inflation.(ABSTRACT TRUNCATED)

Cardiopulmonary Resuscitation↗

[Stress tolerance following traumas of the thorax and great vessels].

After clinical investigation the most important diagnostic procedure is the simple chest X-ray in upright position. In case of hemothorax or pneumothorax the insertion of a large chest tube in the third of fourth intercostal space is necessary. Patients with traumatic flail chest and paradoxical respiration need first of all immediate intubation and artificial respiration, afterwards operative stabilization is beneficial in selected patients. In case of severe intrathoracic hemorrhage and in case of injuries of the lungs, heart and great vessels an active surgical approach is a life-saving treatment. Apart from patients with very bad general condition the usual diagnostic measures and an adequate conservative or surgical treatment can always be tolerated by the patient considering his life threatening condition.

Aorta, Thoracic↗