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[Evaluation of spontaneous pneumothorax in patients with pulmonary lymphangioleiomyomatosis].

We retrospectively evaluated the development of spontaneous pneumothorax in patients with pulmonary lymphangioleiomyomatosis (LAM). Fifteen patients with LAM, whose diagnosis was confirmed histopathologically, were enrolled. All were women, and had a mean age at diagnosis of 31.6 +/- 7.3 years. They were divided into two groups according to the presence or absence of pneumothorax at the time of onset, Group A consisting of nine patients with pneumothorax, and Group B, of six without pneumothorax. Spontaneous pneumothorax developed in 15 out of a total of 18 hemithoraces in Group A patients in whom 13 hemithoraces were surgically treated for pneumothorax (eight open thoracotomies and five video-assisted thoracoscopic surgeries). Bullectomy with either parietal pleurectomy, pleural abrasion, or instillation of chemical irritants to prevent the recurrence of pneumothorax offered better outcomes than bullectomy alone in terms of the postoperative recurrence rate of pneumothorax (p < 0.05). On the other hand, three of the five Group B cases developed pneumothorax during the course of LAM, but none was operated because of severely impaired lung function. The other patient in Group B was not only free of pneumothorax at onset, but also did not develop pneumothorax or suffer from impaired lung function. There were no deaths due to pneumothorax recorded among Group A patients, but two patients in group B died. A better survival rate was noted in Group A than in Group B by Kaplan-Meier analysis, suggesting that these two groups may represent the broad clinical spectrum of LAM.

Adult↗

[Pneumothorax in premature neonates with hyaline membrane disease: risk factors and consequences].

OBJECTIVE: Analysis of risk factors and consequences of a pneumothorax in ventilated preterm neonates with hyaline membrane disease (HMD). PATIENTS AND METHODS: In 88 neonates with HMD (gestational age 29.7 +/- 2.5 weeks, birth weight 1370 +/- 510 gram) clinical parameters as grade of HMD, ventilator settings, the administration of sedative and/or paralysing drugs, and the occurrence of patent ductus arteriosus (PDA) had been studied retrospectively to assess possible risk factors for a pneumothorax. The effects of a pneumothorax on neuromotor development and the occurrence of bronchopulmonary dysplasia (BPD) were also studied. Newborns with signs of infection were excluded. RESULTS: A pneumothorax occurred in 25 of the 88 (28%) ventilated infants with HMD. The other 63 newborns formed the control group. The grade of HMD was similar for both groups. The ventilator settings (max. frequency, max. inspiratory pressure and max. inspiratory time) before the occurrence of a pneumothorax or up to the third day of life were not significantly different between the groups. Interstitial emphysema occurred more often in the pneumothorax group (32% re 2%, P < 0.01). Eleven of the 25 (44%) with a pneumothorax died compared to 8 of the 63 (13%) infants without a pneumothorax (p < 0.05). Neuro-development differed not significantly between both groups. BPD was seen more frequently after pneumothorax than in the control group 79% re 47% (p < 0.05, Chi2-test). CONCLUSIONS: A pneumothorax results in an increased mortality and incidence of BPD. Interstitial emphysema occurred more often in the pneumothorax group. None of the other variables studies could be assigned as a risk factor for a pneumothorax.

Bronchopulmonary Dysplasia↗

Effect of needle tract bleeding on occurrence of pneumothorax after transthoracic needle biopsy.

PURPOSE: Occasionally bleeding along the needle trajectory is observed at post-biopsy computed tomographic sections. This study was designed to evaluate the possible effect of needle tract bleeding on the occurrence of pneumothorax and on requirement of chest tube insertion. MATERIALS AND METHODS: Two hundred eighty-four needle biopsies performed in 275 patients in whom the needle traversed the aerated lung parenchyma were retrospectively reviewed. Bleeding along the needle tract, occurrence of pneumothorax and need for chest tube insertion, type and size of the needle, size of the lesion, length of the lung traversed by the needle, presence or absence of emphysema were noted. Effect of these factors on the rate of pneumothorax and needle-tract bleeding was evaluated. The data were analyzed by chi2 test. RESULTS: Pneumothorax developed in 100 (35%) out of 284 procedures requiring chest tube placement in 16 (16%). Variables that were significantly associated with an increased risk of pneumothorax were depth of the lesion (P < 0.001) and severity of emphysema (P < 0.05). There was bleeding along the needle tract in 18.6% (n = 53) of the procedures. Pneumothorax occurred in 18 (33.9%) out of 53 procedures in which tract-bleeding was observed and in 82 (35.4%) out of 231 procedures in which tract-bleeding was not seen. The difference between the two groups was not significant (P > 0.05). However, analysis of the relation between length of lung traversed by the needle, tract-bleeding and pneumothorax rate indicated that tract-bleeding had a preventive effect on development of pneumothorax (P < 0.001). Occurrence of tract bleeding also had preventive effect on pneumothorax in the presence of emphysema (P < 0.05). The only variable which had effect on occurrence of tract-bleeding was the length of the lung traversed by needle (p < 0.001). Requirement for chest tube insertion was smaller in the tract-bleeding group than non-tract bleeding group, 11% (2/18) to 17% (14/82), respectively. But this difference was not significant statistically (P > 0.05). CONCLUSION: Bleeding in the needle tract has a preventive effect on the occurrence of the pneumothorax in deep-seated lesions and in the presence of emphysema, although it does not affect the overall rate of pneumothorax.

Adult↗

Pneumothorax in pediatric patients after urological laparoscopic surgery: experience with 4 patients.

PURPOSE: Pneumothorax is a rare but known complication of adult urological laparoscopic surgery and has been described occasionally in children as well. The etiologies for pneumothorax during such procedures are discussed as is the management of pneumothorax in this setting. We investigate the occurrence of pneumothorax during laparoscopic pediatric urological procedures in children. MATERIALS AND METHODS: Pneumothorax developed during urological laparoscopic procedures in 4 pediatric patients (3 females, 1 male). Patient age ranged from 8 months to 11 years (mean 5.4 years). Laparoscopic surgical procedures performed included right upper pole partial nephrectomy, left upper pole partial nephroureterectomy, removal of left multicystic dysplastic kidney and bilateral Cohen reimplantation of ureters. Procedures were performed with a maximum insufflation pressure of 15 mm Hg. During the same time period as these four cases, a total of 285 laparoscopic urologic procedures were performed at our institution. RESULTS: Pneumothorax was suspected due to decreased oxygen saturations, subcutaneous emphysema, increased respiratory effort and decreased chest lung sounds unilaterally. Pneumothorax was confirmed with chest x-rays. Operative time ranged from 171 to 249 minutes (mean 199.5). Duration of surgery before pneumothorax developed ranged from 75 to 239 minutes (mean 176, median 168). Conservative management of pneumothorax was used in 3 patients and a pigtail chest tube was used in 1. In all cases the estimated blood loss was minimal. CONCLUSIONS: Urologists performing laparoscopy in children should be aware of the possibility of a pneumothorax developing during the procedure. Evaluation for decrease in O2 saturation should include a search for pneumothorax in these patients. Close observation generally suffices for management.

Child↗

Occult pneumothorax in trauma patients: should this be sought in the focused assessment with sonography for trauma examination?

OBJECTIVE: At present, CT scan is the gold standard for detecting occult traumatic pneumothorax not apparent on supine chest X-ray radiograph. Recently there were suggestions to expand focused assessment with sonography for trauma (FAST) to include thoracic ultrasound for detecting pneumothorax. The aim of the present study is to determine the incidence of occult pneumothorax (as shown by CT) in the subgroup of trauma patients undergoing FAST. METHODS: Review of all trauma patients with FAST done from 1 June 2001 to 31 October 2002. Incidence of occult pneumothorax as diagnosed by CT was determined. Patients were not counted as having true occult pneumothorax if they had chest drains inserted before arrival or imaging studies. Selected clinical findings were tested for association with occult pneumothorax. RESULTS: In total, 143 patients underwent FAST, of whom 137 (95.8%) had chest X-ray examination performed. Of the 137 patients 59 required CT abdomen and/or thorax. Occult pneumothorax was found in three patients (2.1%). A history of thorax and/or abdominal injury plus one or more of: (i) mechanisms potentially causing major trauma; (ii) abnormal chest examination; and (iii) chest X-ray radiograph abnormality in the absence of pneumothorax, was significantly associated with the presence of occult pneumothorax (P = 0.03, Fisher's exact test; sensitivity: 100%; specificity: 71%; likelihood ratio: 3.42). CONCLUSION: The incidence of occult pneumothorax in the subgroup of trauma patients undergoing FAST is low. It implies that routine screening for its presence by adding thoracic ultrasound to FAST is unnecessary. Identifying those at risk of occult pneumothorax for further investigation appeared feasible.

Abdominal Injuries↗

Management of pneumothorax after percutaneous CT-guided lung biopsy.

OBJECTIVES: To evaluate the efficacy of simple aspiration of air from the pleural space to prevent increased pneumothorax and to avoid chest tube placement in cases of pneumothorax following CT-guided lung biopsy. DESIGN: Observational. MATERIALS AND METHODS: One hundred thirty-four consecutive percutaneous needle lung biopsies using real-time CT fluoroscopy guidance formed the basis of our study. All patients that demonstrated moderate or severe pneumothorax on postbiopsy chest CT images underwent percutaneous manual aspiration regardless of symptoms while on the CT scanner table. Correlation between the incidence of pneumothorax after biopsy and many factors (i.e., gender, age, number of pleural passes, presence of emphysema, lesion size, and lesion depth) were determined, and management of each case of biopsy-induced pneumothorax was reviewed. RESULTS: Postbiopsy pneumothorax occurred in 46 of 134 procedures (34.3%). Twenty of the 46 patients were treated by manual aspiration, while 26 patients were simply observed. In 43 of the 46 pneumothoraces (93.5%), the pneumothorax resolved completely on follow-up chest radiographs without requiring tube placement. Only three patients (2.2% of the entire series; 6.5% of those who had pneumothorax develop) required chest tube placement. The risk of pneumothorax significantly increased with lesion size and depth. CONCLUSION: Results of our nonprospective, nonrandomized study suggest that percutaneous manual aspiration of biopsy-induced pneumothorax performed immediately after biopsy may prevent progressive pneumothorax and subsequent chest tube placement.

Adolescent↗

Spontaneous pneumothorax in chronic obstructive pulmonary disease.

There were 34 episodes of pneumothorax out of 400 episodes of COPD (i.e. 8.5% of the total) among patients who were admitted to Chulalongkorn Hospital during the period 1982 to 1986; the episodes of pneumothorax occurred among 22 males and one female, with the average age on admission being 64.0 +/- 8.5 years. All patients had a long history of smoking (average 40 years) with a history of recurrent pneumothorax (47.8%) and two episodes of pneumothorax per patient. Since only about one third of our patients had chest pain or positive signs of pneumothorax on physical examination, the possibility of pneumothorax should be considered in every patient who develops sudden and increasing shortness of breath, especially during mechanical ventilation, or even in association with other obvious precipitating factors, e.g. URI. With regard to complications, there were eight, four, two, two and five episodes of severe respiratory failure requiring assisted ventilation, tension pneumothorax, bilateral simultaneous pneumothorax, pneumomediastinum with subcutaneous emphysema, and plural effusion, respectively. The death rate was 23.5 per cent. Patients who had a pneumothorax requiring assisted ventilation or who developed a pneumothorax during assisted ventilation had a grave prognosis because of multiple complications from mechanical ventilation. Two episodes with minimal pneumothoraxes achieved re-expansion after conservative treatment. The treatment required 3.3 days for the lung to fully expand, 9.6 days when the air-leak stopped and the duration of tube drainage was 10.8 days. Our study indicates that the longer the duration of lung collapse the longer the time required for re-expansion of the lung.(ABSTRACT TRUNCATED AT 250 WORDS)

Aged↗

Pneumothorax as a complication of percutaneous radiofrequency ablation for lung neoplasms.

PURPOSE: The present study was performed to determine the frequency of the complication of pneumothorax after radiofrequency (RF) ablation for lung neoplasms and risk factors affecting such pneumothoraces. MATERIALS AND METHODS: The study was based on 129 consecutive sessions of percutaneous RF ablation of lung neoplasms under real-time computed tomographic fluoroscopic guidance performed in a single institution between May 2003 and November 2005 in 41 patients (17 women, 24 men; mean age, 63 years; age range, 29-82 y). Correlation was determined between the incidence of pneumothorax after RF ablation and multiple factors: sex, age, presence of emphysema, lesion size, lesion depth, contact of tumor with pleura, number of punctures, maximum power of RF generator, period of ablation, tissue temperature at the end of the RF ablation session, and patient position during the procedure. Management of each case of iatrogenic pneumothorax was reviewed. RESULTS: Pneumothorax after RF ablation occurred in 38 of 129 RF ablation sessions (29.5%). Fourteen of the 38 cases were treated by manual aspiration, and 24 were simply observed. In five cases (3.9%), chest tube placement was required as therapy for pneumothorax. The risk of pneumothorax was significantly increased in patients with pulmonary emphysema. CONCLUSIONS: The frequency of pneumothorax after RF ablation in our experience is similar to the frequency of pneumothorax after lung biopsy reported in the literature. Various conditions for RF ablation did not influence the incidence of pneumothorax. Emphysema was the only individual factor that correlated significantly with the development of iatrogenic pneumothorax.

Adult↗

Epidemiology of pneumothorax in England.

BACKGROUND: Little is known of the epidemiology of pneumothorax. Routinely available data on pneumothorax in England are described. METHODS: Patients consulting in primary care with a diagnosis of pneumothorax in each year from 1991 to 1995 inclusive were identified from the General Practice Research Database (GPRD). Emergency hospital admissions for pneumothorax were identified for the years 1991-4 from the Hospital Episode Statistics (HES) data. Mortality data for England & Wales were obtained for 1950-97. Analyses of pneumothorax rates by age and sex were performed for all data sources. Seasonal and geographical analyses were carried out for the HES data. RESULTS: The overall person consulting rate for pneumothorax (primary and secondary combined) in the GPRD was 24. 0/100 000 each year for men and 9.8/100 000 each year for women. Hospital admissions for pneumothorax as a primary diagnosis occurred at an overall incidence of 16.7/100 000 per year and 5.8/100 000 per year for men and women, respectively. Mortality rates were 1. 26/million per year for men and 0.62/million per year for women. The age distribution in both men and women showed a biphasic distribution for both GP consultations and hospital admissions. Deaths showed a single peak with highest rates in the elderly. There was an urban-rural trend observed for hospital admissions in the older age group (55+ years) with admission rates in the conurbations significantly higher than in the rural areas. Analysis for trends in mortality data for 1950-97 showed a striking increase in the death rate for pneumothorax in those aged 55+ years between 1960 and 1990, with a steep decline in the 1990s. Mortality in the younger age group (15-34 years) remained low and constant. CONCLUSION: There is evidence of two epidemiologically distinct forms of spontaneous pneumothorax in England. The explanation for the rise and fall in mortality for secondary pneumothorax is obscure.

Adolescent↗

Bedside tracer gas technique accurately predicts outcome in aspiration of spontaneous pneumothorax.

BACKGROUND: There is no technique in general use that reliably predicts the outcome of manual aspiration of spontaneous pneumothorax. We have hypothesised that the absence of a pleural leak at the time of aspiration will identify a group of patients in whom immediate discharge is unlikely to be complicated by early lung re-collapse and have tested this hypothesis by using a simple bedside tracer gas technique. METHODS: Eighty four episodes of primary spontaneous pneumothorax and 35 episodes of secondary spontaneous pneumothorax were studied prospectively. Patients breathed air containing a tracer (propellant gas from a pressurised metered dose inhaler) while the pneumothorax was aspirated percutaneously. Tracer gas in the aspirate was detected at the bedside using a portable flame ioniser and episodes were categorised as tracer gas positive (>1 part per million of tracer gas) or negative. The presence of tracer gas was taken to imply a persistent pleural leak. Failure of manual aspiration and the need for a further intervention was based on chest radiographic appearances showing either failure of the lung to re-expand or re-collapse following initial re-expansion. RESULTS: A negative tracer gas test alone implied that manual aspiration would be successful in the treatment of 93% of episodes of primary spontaneous pneumothorax (p<0.001) and in 86% of episodes of secondary spontaneous pneumothorax (p=0.01). A positive test implied that manual aspiration would either fail to re-expand the lung or that early re-collapse would occur despite initial re-expansion in 66% of episodes of primary spontaneous pneumothorax and 71% of episodes of secondary spontaneous pneumothorax. Lung re-inflation on the chest radiograph taken immediately after aspiration was a poor predictor of successful aspiration, with lung re-collapse occurring in 34% of episodes by the following day such that a further intervention was required. CONCLUSIONS: National guidelines currently recommend immediate discharge of patients with primary spontaneous pneumothorax based primarily on the outcome of the post-aspiration chest radiograph which we have shown to be a poor predictor of early lung re-collapse. Using a simple bedside test in combination with the post-aspiration chest radiograph, we can predict with high accuracy the success of aspiration in achieving sustained lung re-inflation, thereby identifying patients with primary spontaneous pneumothorax who can be safely and immediately discharged home and those who should be observed overnight because of a significant risk of re-collapse, with an estimated re-admission rate of 1%.

Adult↗

Pneumothorax, pleural effusion, and chest tube placement after radiofrequency ablation of lung tumors: incidence and risk factors.

PURPOSE: To retrospectively evaluate the incidence of and risk factors for pneumothorax, pleural effusion, and chest tube placement for pneumothorax after radiofrequency (RF) ablation of lung tumors. MATERIALS AND METHODS: Institutional review board approval was obtained, with waiver of informed consent. This retrospective study comprised 224 ablation sessions for 392 tumors in 142 patients (92 men, 50 women; mean age, 64.0 years). Multiple variables were analyzed by using the Student t test or the Mann-Whitney U test for numerical values and by using the chi(2) test or the Fisher exact test for categorical values in order to assess risk factors for pneumothorax, pleural effusion, and chest tube placement for pneumothorax. RESULTS: The incidence of pneumothorax, pleural effusion, and chest tube placement for pneumothorax was 52% (117 of 224 sessions), 19% (42 of 224 sessions), and 21% (24 of 117 sessions), respectively. For pneumothorax, risk factors included male sex (P = .030), no history of pulmonary surgery (P < .001), a greater number of tumors ablated (P < .001), involvement of the middle or lower lobe (P = .008), and increased length of the aerated lung traversed by the electrode (P = .014). For pleural effusion, risk factors included the use of a cluster electrode (P = .008), decreased distance to the nearest pleura (P = .040), and decreased length of the aerated lung traversed by the electrode (P = .019). For chest tube placement for pneumothorax, risk factors included no history of pulmonary surgery (P = .002), the use of a cluster electrode (P < .001), and involvement of the upper lobe (P < .001). CONCLUSION: Pneumothorax and pleural effusion can occur after RF ablation in patients with lung tumors, and chest tube placement for pneumothorax is sometimes required.

Adult↗

Videothoracoscopic appearance of first and recurrent pneumothorax.

STUDY OBJECTIVE: Comparison of the videothoracoscopic appearance of first and recurrent pneumothorax, and assessment of a relation between endoscopic appearance and recurrence rate. SETTING: University hospital. PATIENTS: Eighty-two patients, 64 men (mean age, 32.7 years) and 18 women (mean age, 31.5 years), were included. Patients with known underlying pulmonary disease at the time of hospital admission were excluded. There were 61 patients (74%) with first pneumothorax, and 21 patients (26%) with recurrent pneumothorax. INTERVENTIONS: All patients underwent videothoracoscopy under general anesthesia, with double-lumen intubation. RESULTS: Blebs or bullae were found in 47 patients (77%) with first pneumothorax, and in 14 patients (67%) with recurrent pneumothorax. Bullae > 2 cm were found in 34 patients (56%) with first pneumothorax and 10 patients (48%) with recurrent pneumothorax. Patients with blebs or bullae were significantly older than patients with normal videothoracoscopic appearance (mean age, 36.5 +/- 15.7 years vs 25.3 +/- 5.8 years, p < 0.05). Adhesions were significantly more frequently found in patients with blebs or bullae compared with patients with normal thoracoscopic appearance of the lung (p < 0.05). Seventeen of 21 patients (81%) with normal thoracoscopic appearance were smokers. Of nonsmoking patients (n = 22), 82% had blebs and bullae. CONCLUSIONS: No significant differences in videothoracoscopic appearance were found between first and recurrent pneumothorax. These results suggest that recurrence after the first event of spontaneous pneumothorax cannot be predicted by thoracoscopic findings. Smoking and blebs or bullae are independent risk factors for development of spontaneous pneumothorax.

Adolescent↗

Management of pneumothorax in lymphangioleiomyomatosis: effects on recurrence and lung transplantation complications.

STUDY OBJECTIVES: Pneumothorax is a common complication of lymphangioleiomyomatosis (LAM), and the optimal approach to its treatment and prevention is unknown. Chemical or surgical pleurodesis are often required to prevent recurrence. However, their efficacy in LAM is unclear, and whether they contribute to perioperative complications during lung transplantation is uncertain. SETTING: The LAM Foundation database of registered patients. DESIGN: A questionnaire was sent to all registered patients who had at least one pneumothorax to determine rates and patterns of recurrence and efficacy of interventions. A second questionnaire was sent to registered LAM patients who received a lung transplant. PATIENTS OR PARTICIPANTS: Of 395 registered patients, 260 patients (66%) reported at least one pneumothorax during their lifetime, 193 of whom (74%) completed the questionnaire. Of the 85 lung transplant patients who were sent a separate questionnaire, 80 patients (94%) responded. INTERVENTIONS: None. MEASUREMENTS AND RESULTS: Of the 193 respondents to the pneumothorax questionnaire, data on 676 episodes of pneumothorax were collected. Eighty-two percent (158 of 193 patients) had their first pneumothorax prior to a diagnosis of LAM. One hundred forty patients (73%) had at least one additional pneumothorax, either an ipsilateral recurrence (99 of 140 patients, 71%) or a contralateral pneumothorax (104 of 140 patients, 74%). Recurrence rates were 66% after conservative therapy, 27% after chemical pleurodesis, and 32% after surgery. In patients who had undergone lung transplantation, prior chemical or surgical pleurodesis was performed in 45 of 80 patients (56%). Fourteen of 80 patients (18%) reported pleural-related postoperative bleeding, 13 of whom (93%) had prior pleurodesis. CONCLUSIONS: Chemical pleurodesis or surgery are equally effective and better than conservative therapy in preventing recurrence of pneumothorax in LAM. Due to the high recurrence rate, either procedure should be considered for the initial pneumothorax in these patients. However, both contribute to increased perioperative bleeding following lung transplantation, with no effect on length of hospital stay.

Adolescent↗

[Simultaneous bilateral pneumothorax. Case report].

A case report of a 44 year-old white man admitted to the surgical unit for a bilateral simultaneous pneumothorax is presented. The pneumothorax occurred on day one after a surgical operation for discal hernia; in the past the patient already presented a right spontaneous pneumothorax at 32 years of age and a left pneumothorax at 37 years of age, both treated with a pleural drainage. A thoracic drain was bilaterally positioned with a good result only in the right side. The persistence of the left pneumothorax induced the authors to perform a postero-lateral thoracotomy bullae excision and pleurectomy with a good postoperative course. After a few months a new right pneumothorax occurred and the patient was treated with a right postero-lateral thoracotomy, bullae resection and pleurectomy. On the basis of the case reported, the authors consider the different opportunities in the treatment of spontaneous pneumothorax in relation to the present knowledges and technologies. Surgical procedure is to be preferred in case of persistence of pneumothorax despite a pleural drain and in case of pneumothorax in high risk subjects. Even if thoracoscopy seems to give better results regarding postoperative pain, it is not always possible with such a method to perform a careful pleurectomy neither to obtain it in all cases (above all in secondary pneumothorax). Every case must then be carefully studied to choose the best treatment at present available.

Adult↗

[Pneumothorax in patients infected by the human immunodeficiency virus].

OBJECTIVE: Patients with HIV who develop pneumothorax have been previously described. Pneumocystis carinii pneumonia (PCN) is the leading cause of this complication, but infection by other pulmonary microorganism, inhaled pentamidine therapy and lung invasive manoeuvres have also been associated with pneumothorax in HIV infected patients. METHOD: We review the most relevant clinical aspects of pneumothorax in HIV-infected persons, gathered in our hospital along eight years, before HAART therapy was started. During this time, 97 patients with PCN were diagnosed and 148 patients received prophylaxis with inhaled pentamidine. Only 14 episodes of pneumothorax in 13 patients, were recorded. In ten occasions pneumothorax was related to pulmonary invasive manoeuvres, pulmonary infections were found in three and was considered spontaneous in one. The pulmonary invasive manoeuvres were: subclavia vein catheterisation in six cases (one of them was diagnosed of proved PCN and the other has pneumococcal pneumonia); transbronchial biopsy in one patient (also with proved PCN), knife chest trauma in two cases and after fine needle aspiration of an axillary lymph node in one patient. RESULTS: The pulmonary infections associated with pneumothorax in three patients were: proved PCN (this patient was the only one in the group with inhaled pentamidine prophylaxis who developed pneumothorax), active pulmonary infection by mycobacterium tuberculosis and Pseudomonas aeruginosa pneumonia. A drainage chest tube was placed in 12 patients with complete resolution in nine. In the other two patients pleurodesis was necessary and surgical repair was carried out in the other one (who had pulmonary tuberculosis). During the follow up six patients died (median time to death: 7 months). Among patients who died, five had pulmonary infections when the pneumothorax was diagnosed: PCN in three cases, pulmonary tuberculosis and pseudomonas pneumonia in the other two; all of them with less than 100 CD4 lymphocytes. CONCLUSIONS: Pneumothorax is frequent in HIV-infected patients with PCN, but other lung infections and, above all pulmonary invasive manoeuvres, can cause this complication. In our experience, HIV-infected patients who develop pneumothorax have a bad prognosis.

Adult↗

Primary lung cancer complicated with pneumothorax.

Eighteen lung cancer patients with a pneumothorax complication were studied. Pneumothorax appears rarely in lung cancer patients, having been found in 18 out of 5567 (0.32%) at our hospital over a period of ten years. Of the 18 patients, eight had adenocarcinoma, seven epidermoid carcinoma and three alveolar cell carcinoma. Unlike those of previous reports, our results showed pneumothorax not to be found exclusively on the same side as the lung cancer. It was contralateral in five cases. Pneumothorax was the initial manifestation of lung cancer in three cases and occurred as a complication in another 15. Of these 15 patients, 11 were described as developing pneumothorax between one and twelve months after completion of radiation therapy for lung cancer. Another two patients developed pneumothorax following cytotoxic chemotherapy. Pneumothorax occurred prior to any treatment for lung cancer in the remaining two patients. The factors contributing to pneumothorax in the lung cancer patients were the rupture of the necrotic neoplastic tissue into the pleural cavity, the rupture of a subpleural bleb or the formation of interstitial air due to partial bronchial obstruction by the tumor, complications arising from radiation therapy and cytotoxic chemotherapy, or any combination of such factors. Pneumothorax was an ominous sign for the lung cancer patients. Most (12/14) died within six months of the onset of pneumothorax.

Aged↗

Risk factors of pneumothorax during the first 24 hours of life.

BACKGROUND: Pneumothorax is one of the air leak syndrome and is more common in the newborn period than in any other childhood periods. It can be divided into spontaneous pneumothorax and secondary pneumothorax from underlying lung pathology or assisted ventilation. Pneumothorax results in longer hospital stays and even deaths in some cases. To date, there are few studies that focus on identifying risk factors of pneumothorax. We conducted this study to ascertain risk factors for pneumothorax, in order to create a guideline to prevent this condition. MATERIAL AND METHOD: This is a retrospective case-control study. CASEs were infants with the diagnosis of pneumothorax (P25.1 Pneumothorax originating in the perinatal period) between January 2001 and December 2004. Controls were those whose birth times followed in the immediate chronology to the cases. CASE: control ratio was 1:2. Univariate analysis was used to compare the two groups. Odds ratio and 95% confidence interval were used to identify possible risk factors. Statistical significance was considered as p < 0.05. RESULTS: There are 44 cases and 88 controls. Risk factors are shown as Odds ratio and 95% confidence interval. Infant factors associated with higher risk of pneumothorax are male (2.6; 1.2, 5.6), low birth weight (19.3; 2.3, 160.2), vacuum extraction (20.9; 1.1, 403.4), meconium-stained amniotic fluid (4.5; 1.8, 11.0), low 1-minute Apgar score (78.3; 4.5, 1357.8), and the administration of bag and mask positive-pressure ventilation (29.0; 3.6, 233.5). Maternal factor associated with higher risk of pneumothorax is poor antenatal care (3.5; 1.04, 11.9). CONCLUSION: All pregnant women should be encouraged to have good antenatal care. Mother who has complication(s) during pregnancy and delivery should receive special care to prevent perinatal depression. For mothers with meconium-stained amniotic fluid, close fetal monitoring and tracheal suction for meconium after delivery should be appropriately considered to prevent meconium aspiration. Finally, neonatal resuscitation, when needed, should be done very carefully by following the American Heart Association and the American Academy of Pediatrics guidelines, especially for bag and mask positive-pressure ventilation.

Case-Control Studies↗

[Operative procedure for simultaneous spontaneous pneumothorax].

We have treated 542 cases of spontaneous pneumothorax during the past 20 years, among them 40 cases of bilateral simultaneous spontaneous pneumothorax and 55 cases of non-simultaneous bilateral pneumothorax were included. This paper discusses when the bilateral operation for bilateral simultaneous spontaneous pneumothorax can be carried out and operative approach to bilateral simultaneous thoracotomy. The following results were obtained: Contralateral pneumothorax after an operation for unilateral spontaneous pneumothorax occurred in 25% of teenagers. In cases of spontaneous pneumothorax with occurrence of contralateral pneumothorax, bilateral simultaneous thoracotomy must be performed. In cases of simultaneous spontaneous pneumothorax, we performed simultaneous bilateral thoracotomy, thereby decreasing the psychologic tension of patients and shortening the hospitalization period. The bilateral axillary incision for simultaneous bilateral thoracotomy in cases of simultaneous spontaneous pneumothorax caused least blood loss compared with median sternotomy and transverse bilateral thoracotomy. The transverse bilateral thoracotomy, on the other hand, opens up a larger operating field.

Adolescent↗