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Biomedical subjects

Eric J Stern

Publications and source records attributed to Eric J Stern.

At least 19 recordsLinked to original sources

Nonvascular mediastinal trauma.

This article discusses the radiologic and clinical features of nonvascular mediastinal trauma, and focuses on the tracheobronchial tree, the esophagus, and the thoracic duct. Blunt chest and penetrating trauma account for most of the causes of such nonvascular injuries, but iatrogenic and inhalation injuries are other well-known causes. The injury distribution and clinical manifestations are different for each structure. In our combined experience at a level 1 trauma center, the overall prevalence of injury in each organ is low compared with vascular injuries. As such, and given the frequent nonspecific nature of clinical signs and symptoms of nonvascular mediastinal injuries, the diagnosis often is delayed and results in poor treatment outcome.

Bronchi↗

Incidence and outcomes of acute lung injury.

BACKGROUND: Acute lung injury is a critical illness syndrome consisting of acute hypoxemic respiratory failure with bilateral pulmonary infiltrates that are not attributed to left atrial hypertension. Despite recent advances in our understanding of the mechanism and treatment of acute lung injury, its incidence and outcomes in the United States have been unclear. METHODS: We conducted a prospective, population-based, cohort study in 21 hospitals in and around King County, Washington, from April 1999 through July 2000, using a validated screening protocol to identify patients who met the consensus criteria for acute lung injury. RESULTS: A total of 1113 King County residents undergoing mechanical ventilation met the criteria for acute lung injury and were 15 years of age or older. On the basis of this figure, the crude incidence of acute lung injury was 78.9 per 100,000 person-years and the age-adjusted incidence was 86.2 per 100,000 person-years. The in-hospital mortality rate was 38.5 percent. The incidence of acute lung injury increased with age from 16 per 100,000 person-years for those 15 through 19 years of age to 306 per 100,000 person-years for those 75 through 84 years of age. Mortality increased with age from 24 percent for patients 15 through 19 years of age to 60 percent for patients 85 years of age or older (P<0.001). We estimate that each year in the United States there are 190,600 cases of acute lung injury, which are associated with 74,500 deaths and 3.6 million hospital days. CONCLUSIONS: Acute lung injury has a substantial impact on public health, with an incidence in the United States that is considerably higher than previous reports have suggested.

Adolescent↗

Chest radiographic evolution in fat embolism syndrome.

OBJECTIVE: To characterize the temporal chest radiographic findings of fat embolism syndrome. MATERIAL AND METHOD: Twenty-nine patients with clinically diagnosed fat embolism syndrome between 1988-1999 were retrospectively identified from the Trauma Registry of Haborview Medical Center, University of Washington. In twenty-two patients, complete medical records and serial chest radiographs were available. All images were reviewed by a dedicated thoracic radiologist. RESULTS: Two of 22 patients had normal radiographs throughout hospitalization, while 20/22 developed abnormal chest radiographs. The radiographic findings were consistent with non-specific diffuse pulmonary edema in all abnormal cases. The time to appearance of evident radiographic lung injury was < 24 hours of initial trauma in 10/20 (50%), between 24-48 hours in 4/20 (20%), between 48-72 hours in 5/20 (25%), and 1 patient (1/20, 5%) developed an abnormal chest radiograph after 72 hours. Ten of 20 patients (50%) with abnormal radiographs had complete resolution of the edema pattern within 1 week of development of opacities, 3/20 (15%) cases showed complete radiographic resolution between 1-2 weeks, 2/20 (10%) cases showed complete radiographic resolution between 2-3 weeks, 1/20 (5%) showed complete radiographic resolution between 3-4 weeks, and 4/20 (20%) died without resolution of the radiographic finding. CONCLUSION: The chest radiographic appearance of fat embolism syndrome is non-specific. Normal radiographs can also be seen. Most patients presenting with a normal initial radiograph develop radiographic evident abnormalities within 72 hours of injury and most cases showed radiographic resolution within 2 weeks of hospitalization. Although chest imaging play a little role in the clinical management of fat embolism syndrome, understanding of temporal presentation and evolution of the otherwise non-specific pulmonary opacities may help to avoid unnecessary evaluation in selected patients.

Adult↗

Diffuse pulmonary ossification.

Diffuse pulmonary ossification (DPO) is an uncommon condition that is characterized by metaplastic bone formation in the lung parenchyma. It is usually not diagnosed clinically and may be apparent radiographically only when extensive. However, it is occasionally encountered at autopsy or on pathologic evaluation of surgical specimens. This article will review the clinical, histologic, and radiographic manifestations of DPO, focusing primarily on the chest radiograph and CT findings, both of which may be underappreciated, for even experienced radiologists may confuse DPO with other entities such as metastatic calcification as seen in chronic renal failure or chronic granulomatous disease.

Calcinosis↗

Warfarin-induced tracheobronchial calcification.

Calcification of the trachea and proximal bronchi is a common, normal finding on chest radiographs in the elderly population, especially in women. More extensive airway calcification is also a rare manifestation of many pathologic conditions. The authors report a case of pathologic tracheobronchial calcification associated with long-term warfarin therapy. Chest radiographs showed prominent, diffuse calcification of the tracheobronchial tree. Computed tomography showed extensive calcification of the airway walls, extending from the trachea to the lung periphery.

Aged↗

Six cases of acute central pulmonary embolism revealed on unenhanced multidetector CT of the chest.

OBJECTIVE: Our purpose was to describe the imaging findings of central pulmonary embolism on unenhanced multidetector CT (MDCT) of the chest. CONCLUSION: Unenhanced MDCT of the chest is often performed for the evaluation of nonspecific chest symptoms. Awareness of the rare finding of a high-attenuation centrally located pulmonary embolism on unenhanced MDCT is important because acute pulmonary embolism may be identified when it is not suspected clinically, and such detection can determine further imaging needs and allow the timely initiation of appropriate therapy.

Acute Disease↗

Chest CT scanning for clinical suspected thoracic aortic dissection: beware the alternate diagnosis.

The aim of the study was retrospectively to evaluate the spectrum of chest diseases in patients presenting with clinical suspicion of thoracic aortic dissection in the emergency department. We performed a retrospective medical records review of 86 men and 44 women (ages ranging between 23 and 106 years) with clinically suspected aortic dissection, for CT scan findings and final clinical diagnoses dating between January 1996 and September 2001. All images were obtained by using a standard protocol for aortic dissection. We found aortic dissection in 32 patients (24.6%), 22 of which were Stanford classification type A and 10 Stanford type B. In 70 patients (53.9%), chest pain could not be explained by the CT scan findings. However, in 28 patients (21.5%), CT scanning did reveal an alternate diagnosis that, along with the clinical impression, probably explained the patients' presenting symptoms, including: hiatal hernia (7), pneumonia (5), intrathoracic mass (4), pericardial effusion/hemopericardium (3), esophageal mass/rupture (2), aortic aneurysm without dissection (2), pulmonary embolism (2), pleural effusion (1), aortic rupture (1), and pancreatitis (1). In cases where there is clinical suspicion of aortic dissection, CT scan findings of an alternate diagnosis for the presenting symptoms are only slightly less common than the finding of aortic dissection itself. Although the spectrum of findings will vary depending upon your patient population, beware the alternate diagnosis.

Journal Article↗

Can we rely on mediastinal widening on chest radiography to identify subjects with aortic injury?

Widening of the mediastinum on chest radiography is widely promoted as a useful criterion for detecting aortic injury. We sought to determine the reliability, sensitivity, and specificity of this sign. The initial chest radiographs from 30 subjects with aortic injury and 47 controls were independently reviewed by six radiologists, who were blinded to diagnosis. The radiologists were asked to decide whether the mediastinum was normal or not normal, as well as whether the mediastinum was widened. Agreement, sensitivity, and specificity were assessed. Agreement for overall assessment of the mediastinum was substantial (kappa = 0.64). Individual radiologists had sensitivity varying from 0.77 to 0.97 and specificity varying from 0.62 to 0.89. For "widening" of the mediastinum, agreement was moderate (kappa = 0.49). "Widening" was less sensitive than the radiologists' overall impression (P = 0.01), varying from 0.50 to 0.83, but no difference was detected in specificity (P = 0.36), varying from 0.81 to 0.94. Mediastinal width has unacceptable sensitivity for predicting aortic injury, with substantial inter-reader variability. Medical education has ingrained the widely promoted concept of mediastinum widening, which may be misleading.

Journal Article↗

High-resolution CT of peripheral airways diseases.

Bronchiolitis and bronchiolectasis are nonspecific inflammatory processes of the small airways that have a variable, but often characteristic, appearance on HRCT. Familiarity with the imaging features of these disorders is crucial in rendering an accurate radiographic diagnosis.

Adult↗

That darn scapula: a common pitfall in interpreting the chest radiograph.

For the inexperienced interpreter of chest radiographs, the normal scapula can mimic some very common and potentially serious abnormalities. Failure to recognize this normal bony structure can lead to needless diagnostic work up and treatment. The potentially mimicked abnormalities fall into 3 major categories: lung parenchymal abnormalities, pleural abnormalities, and bone abnormalities. This report discusses scapula anatomy as it pertains to chest radiographic anatomy, and the reasons for misinterpretations, and shows examples of the scapula mimicking pathologic processes.

Diagnostic Errors↗