Non-traumatic pneumopericardium and pyo-pneumopericardium; report of two cases.
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Thirteen premature infants receiving mechanical ventilation for respiratory distress syndrome developed pneumopericardium. All had high peak inflation pressures (mean, 42 mm Hg; range, 26 to 60 mm Hg), and all were on positive end-expiratory pressure (PEEP) ventilation (mean, 3.1 mm Hg; range, 2.1 to 5.7 mm Hg) at the time that pneumopericardium occurred. Arterial blood gases, indices of respiratory support, and hemodynamic data were reviewed before and after the onset of pneumopericardium in all patients. There was a statistically significant increase in peak inflation pressure (PIP) over the 16 hours prior to onset of pneumopericardium (p less than 0.05). There was, however, no significant relationship between onset of pneumopericardium and other respiratory variables, including PEEP. In the majority of patients, pneumopericardium was associated with cardiac air tamponade. Various forms of treatment for pneumopericardium were attempted, including observation, needle aspiration, and insertion of pericardial tubes. Review of the therapy indicates that insertion of a pericardial tube under direct vision is the safest and most effective means of treating pneumopericardium in infants. These data also suggest that PIP is more important than PEEP in predisposing neonates with respiratory distress syndrome to pneumopericardium.
In 1997, a 53-year-old male smoker was admitted for progressive shortness of breath associated with a productive cough and yellowish sputum, pleuritic chest pain, and low-grade fever. There was no history of trauma. A posterior-anterior chest radiograph showed a diffuse infiltrate through the right lung field and an air space parallel to the lateral border of the heart. A computed tomographic scan of the chest confirmed pneumopericardium, with no associated pericardial effusion. It also showed a cavitary infiltrate in the anterior basal segment of the right lower lobe, but no definite neoplasm. Cultures of the sputum grew Staphylococcus aureus. The patient had positive antibodies to human immunodeficiency virus (HIV), hepatitis A, and hepatitis B. A bronchial biopsy from the right lower lobe showed well differentiated infiltrating squamous cell carcinoma with an acute inflammatory exudate. No bronchopericardial fistula was noted. After antibiotic treatment, a repeat chest radiograph showed resolution of pneumopericardium and improvement of the chest infiltrate. Repeat computed tomography of the chest showed that the pneumopericardium had resolved, but now revealed a large pericardial effusion. No bronchopericardial fistula could be demonstrated. Unfortunately, our patient refused further investigation. Pneumopericardium is a rare disorder. In adults, pneumopericardium most commonly results from trauma. Although many other reports link pneumopericardium to an underlying disease process, our patient with HIV antibodies developed pneumopericardium despite having no history of trauma and no documentation of a communicating fistula. To our knowledge, there has been no previous report of pneumopericardium in association with acquired immunodeficiency syndrome.
Pneumopericardium, a complication of ventilatory management of neonatal respiratory distress syndrome, may result in cardiac tamponade. Pneumopericardium occurred in 47 premature infants (mean birth weight, 1,894 gm) at the University of Minnesota Hospital between July, 1972, and January, 1981. At the onset of pneumopericardium, 44 of 46 intubated patients were on positive end-expiratory pressure (PEEP) and 1 patient was ventilated using a mask. Five infants were asymptomatic, while 42 were seen with sudden hypotension, bradycardia, and hypoxia an average of 57 hours (range, 1 to 312 hours) after the commencement of ventilatory support. Pneumothorax (38 instances), pneumomediastinum (21), pulmonary interstitial emphysema (29), pneumoperitoneum (6), or a combination of these conditions was noted prior to or simultaneously with pneumopericardium in 46 infants. Pneumopericardium was not treated in 14 patients, 10 of whom were symptomatic and 4 asymptomatic; there were 5 deaths in this group. The group of 33 infants treated for this complication underwent either pericardial aspiration (2 patients), aspiration followed by pericardial tube placement (12 patients), or pericardial tube placement alone (19 patients). All 33 patients who underwent treatment had resolution of symptoms, but pneumopericardium recurred in 13 with 5 deaths. Causes of recurrence were tube or aspiration failure in 10 infants and tube removal prior to cessation of PEEP in the other 3. There were five complications related to tube placement, resulting in 2 deaths due to myocardial laceration following percutaneous insertion. Of 35 neonates surviving pneumopericardium, 12 were discharged from the hospital and 23 died of complications of respiratory distress syndrome.(ABSTRACT TRUNCATED AT 250 WORDS)
A 63-year-old man (case 1) was brought to our emergency unit following a high speed collision. He developed fatal cardiopulmonary arrest shortly after arrival despite resuscitation efforts. Tension pneumopericardium was revealed by chest X-ray and CT examination. An 18-year-old man (case 2) was admitted after a motorcycle accident. Pneumopericardium was noted on admission chest X-ray and CT examination. He developed cardiac tamponade after the examination. He was intubated and mechanically ventilated after the subxiphoid pericardial drainage. Pneumopericardium following blunt chest trauma is realized with tracheobronchial, pulmonary or esophageal injury. The clinical significance of pneumopericardium is the development of tension pneumopericardium resulting into cardiac tamponade. In a patient with traumatic pneumopericardium who requires mechanical ventilatory support, continuous pericardial drainage should be considered. In addition, tension pneumopericardium may occur in patients with breathing spontaneously as in our cases. In these cases, careful observation and immediate subxiphoid pericardial drainage are required.
Cardiac tamponade most commonly results from accumulation of blood or other fluids within the pericardial sac. However, there is a growing body of clinical evidence showing that pneumopericardium can lead to cardiac tamponade in a large number of patients. Including those in the present report, a total of 252 patients with pneumopericardium are available for review. Interestingly, cardiac tamponade developed in 94 patients, or 37% of this group, because of air within the pericardial space. Pneumopericardium resulting in tamponade most frequently occurs in trauma patients or in newborn infants requiring positive pressure ventilation. This syndrome can be recognized promptly because of its characteristic physical findings and radiographic features. Although air tamponade can be treated effectively by either needle aspiration or insertion of a pericardial tube, the development of a pneumopericardium is a bad prognostic sign. Out of the 221 patients reported in the literature whose outcome is known, 127 (57%) died. In the group with a tension pneumopericardium, the mortality was 56% (53 out of 94 patients). Even without the development of tension, however, pneumopericardium was associated with a 58% mortality (74 out of 127 patients) due to other underlying disease processes.
Pneumopericardium is a rare condition, most frequently reported in connection with prolonged artificial ventilation in infants with hyaline membrane disease. No reports of pneumopericardium after pulmonary surgery have been published. Two cases of pneumopericardium are reported, one of tension pneumopericardium after pneumonectomy and artificial ventilation and one that followed radical lobectomy and artificial ventilation. The radiographic findings included pneumopericardium and subcutaneous emphysema and the patient who had had a pneumonectomy had severe symptoms of cardiac tamponade. Prolonged artificial ventilation in patients after pulmonary surgery and in the presence of an intrathoracic air leak may be a hazard. The importance of prompt surgical intervention in cases of tension pneumopericardium is underlined; the treatment of choice is thoracotomy with pericardiotomy.
Neonatal pneumopericardium is a potentially fatal complication of positive-pressure ventilation and has become rare with the advent of surfactant replacement therapy. The clinical diagnosis, stabilization, treatment, and nursing care of an infant with pneumopericardium has not previously been discussed in the nursing literature. In this case report, delays in the recognition and definitive treatment of the pneumopericardium were encountered, resulting in the transport of an infant with a tension pneumopericardium and pneumoperitoneum. Root-cause analysis is used to identify contributing factors and examine system changes necessary to prevent the transport of another patient with a similar potentially life-threatening condition. Pneumopericardium should be suspected in any infant with an acute deterioration, especially in the presence of normal, equal breath sounds and muffled heart sounds, because prompt recognition and definitive treatment may be life-saving.
UNLABELLED: Pneumopericardium is a rare and severe complication of artificial ventilation in neonates. CASE REPORT: A preterm neonate born after 29 weeks of gestation was placed under ventilatory support for bronchopulmonary dysplasia. At 63 days of life, just after a severe bronchospasm which required bag ventilation with high pressures, she collapsed and required immediate cardiopulmonary resuscitation with epinephrine infusion. The diagnosis of pneumopericardium was deduced from the chest X-ray obtained in emergency, on which there was also a right pneumothorax. Cardiac recovery with return of spontaneous circulation was only obtained after evacuation of the pneumopericardium with a 23-gauge needle via the sub-xiphoid route. The pneumothorax was drained and the long-term evolution was favorable. CONCLUSION: In the case of cardiopulmonary compromise, the early diagnosis of pneumopericardium should lead to the immediate evacuation of the pneumopericardium in order to improve the prognosis.
We report the unique case of a patient with an idiopathic pneumopericardium due to heavy lifting and discuss Valsalva's maneuver as a rare cause in the pathogenesis of pneumopericardium. Our patient recovered without treatment and had no recurrence of pneumopericardium during follow-up. All physicians should be aware of pneumopericardium as a possible cause of chest pain, especially when no trauma is visible. Pneumopericardium may also be an occasional complication of pneumothorax and pneunomediastinum.
Radiographic and clinical data were evaluated in 12 preterm infants with pneumopericardium complicating ventilator therapy of respiratory distress syndrome. Eight infants had massive or tension pneumopericardium, reflected by bradycardia, hypotension, and cyanosis of abrupt onset; cardiac size decreased dramatically but returned to approximately the former size after aspiration of the pneumopericardium. In puppies, pneumopericardium large enought to reduce heart size by 32 +/- 3% caused decreased mean arterial pressure (-22 +/- 7%) and right ventricular peak systolic pressure (-11 +/- 2%) and increased right ventricular diastolic and intrapericardial pressures. These findings suggest that pneumopericardium per se causes severe hemodynamic compromise. When it is large enought to reduce heart size, drastic circulatory impairment is produced and pericardiocentesis should be performed immediately.
A 6-year-old 18-kg (39-lb) spayed female Standard Poodle was referred for treatment of pneumopericardium. The dog did not have severe clinical signs relating to the pneumopericardium, and the diagnosis was made incidentally while investigating the cause of a cough. Computed tomography revealed an air-filled structure consistent with a bulla to the right of the heart base that appeared to communicate with the pericardial cavity Because spontaneous resolution of the pneumopericardium seemed unlikely and cardiac tamponade was a possibility, exploratory thoracotomy was performed. A lobulated bulla was found at the hilus of the right middle lung lobe adhered to the underlying pericardial sac, and a 4-cm-diameter communication from the pericardium to the pulmonary bulla was found. Right middle lung lobectomy was performed, and the pericardiotomy and pericardial opening were sutured. The dog recovered without complications. In previously reported cases of pneumopericardium involving a cat and a dog, the condition resolved spontaneously. In this dog, in contrast, surgical resection of the affected lung lobe with pericardial reconstruction was required for resolution of the pneumopericardium.
A patient operated for carcinoma of the bladder complicated by infection by anaerobic organisms developed pneumopericardium. Spontaneous pneumopericardium may or may not follow effraction of the pericardium. The following causes have been described: fistula with a tuberculous cavernoma, parenchymatous or pleural infection, carcinoma of the bronchus; oesophageal or gastro-pericardial fistulae arising from carcinoma or ulceration of the stomach or oesophagus; rupture of a mediastinal, hepatic or subphrenic abscess and, exceptionally, pericarditis complicated by fistulisation to the tracheo-bronchial tree. Pneumopericardium without effraction is caused by in situ gas production, a complication of pericarditis caused by anaerobic organisms; this may be a primary or a metastatic infection. Idiopathic pneumopericardium is included in this variety whilst "alveolar rupture" is usually considered in the group of pneumopericardial fistulae: air under pressure passes from the mediastinum into the pericardium by microscopic dissection (bronchitis, asthma, obstructive laryngitis, childbirth). The outcome and prognosis depends on the cause and type of effusion: pneumopericardium rarely contains air alone; serous fluid, blood or pus, are usually associated.
The presence of pneumopericardium following penetrating injuries of the chest is highly suggestive of a cardiac injury. For this reason, it is generally considered that its presence should be an indication for surgery. In the present study 20 patients with pneumopericardium were selected for conservative treatment. All patients were closely observed by means of clinical examination, serial chest roentgenography, electrocardiography, and Doppler echocardiography. In five patients the electrocardiogram showed pericarditis, and in three patients the echocardiogram demonstrated small pericardial effusions. One patient developed tension pneumopericardium 36 hours after admission and required surgical intervention. The remaining 19 patients had an uneventful recovery. We suggest that the presence of a pneumopericardium following penetrating chest trauma is not an absolute indication for surgery. Electrocardiographic and echographic studies may help in the selection of patients for conservative treatment; but the final decision should be made on the basis of clinical signs and symptoms.
Thoracic injury is a relevant and common complication in multiply injured patients. Typical patterns of injury comprise rib fractures, serious lung trauma as well as diaphragmatic and aortic rupture. In contrast, posttraumatic tension pneumopericardium following blunt thoracic trauma is a very rare complication. However, if unrecognized it might provoke cardiac tamponade and death. For the development of a pneumopericardium, free air follows the vessel bundles up to the pericardium. Hence, if the number of ruptured alveoli is high, or these alveoli are placed close to the heart, and if additional risk factors, such as high inspiratory ventilation pressure, are present, a tension pneumopericardium can induce cardiac tamponade. The aim of this report is to illuminate diagnostic and therapeutic strategies for posttraumatic pneumopericardium by presentation of a case from our trauma centre and a critical discussion of the present literature.
Although symptomatic pneumopericardium post-laparoscopic varicocoele ligation procedure is rare, numerous cases have been reported and identified pneumopericardium as a complication of laparoscopic surgery. Pneumopericardium after other urological procedures has been previously reported when diagnosed incidentally on chest X-ray but there are no reports of symptomatic presentation. We hereby present the first symptomatic pneumopericardium case after a routine procedure for the ligation of varicocoele.
Pneumopericardium is an uncommon condition in the neonate and has not, to our knowledge, previously been reported in patients treated with high-frequency ventilation. The results of such treatment in 8 neonates seen in the Neonatal Intensive Care Unit, Wilford Hall USAF Medical Center, San Antonio, Texas, are presented. The mean gestational age was 35 weeks, and birth weight averaged 2.7 kg. The pneumopericardium developed while the patients were on high-frequency ventilation, and the diagnosis was confirmed with a chest radiogram. Treatment included pericardiocentesis with a needle catheter followed by placement of a 10F to 14F chest tube into the pericardial space. The pneumopericardium resolved in all 8 patients. Three of the newborns died of underlying disease; 5 survived and were discharged from the hospital. Pneumopericardium in the neonate is a life-threatening complication, and appropriate therapy includes drainage with a pericardial tube placed under direct vision.
Pneumopericardium is the presence of air in the pericardial space. In adults, it may be seen in the context with severe blunt chest trauma, pneumothorax, pneumoperitoneum, or other causes of pneumomediastinum. The diagnosis is made by computed tomography scan of the thorax and abdomen that allows the additional detection of concomitant injuries. Possible causes of the pneumopericardium such as tracheobronchial or oesophageal tears have to be excluded by bronchoscopy or esophagogastroduodenoscopy. Usually, pneumopericardium is self-limiting requiring no specific therapy. However, a continuous monitoring of the electrocardiography and the blood pressure is necessary at an intermediate care unit. Tension pneumopericardium causing a life-threatening cardiac tamponade requires an immediate pericardial aspiration, the subsequent pericardial drainage via a pericardial window or emergent open subxyphoid approach to the pericardium.