Vertical integration: model for success in the managed care environment?
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Biomedical subjects
Publications and source records attributed to C J Zylak.
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Advances in radiology over the past 20 years are the product of a technologic imperative that has produced new approaches to the acquisition of medical images and modifications to conventional approaches. The imperative has placed radiology at the leading edge of the computer-technology era of modern medicine and has also produced several big-ticket technologies that have been identified as major contributors to rising health care costs. Consequently, the demands for quantitative data on the impact and cost-effectiveness of the use of these technologies in the clinical arena are increasing. Meeting the growing demand for accountability in radiology requires that the discipline adopt innovative approaches for assessing its technologies and acquire new types of data, including documentation of cost savings accrued by selective use of radiologic technologies and demonstration of the efficiency and cost-effectiveness of triage schemes that lead to more effective decision making. The requirement of quantitative accountability represents a new way of doing business for radiology and a new approach to management for those responsible for business.
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Canada has 21 years of experience with a national health care insurance program. This lecture describes the program, its evolution, financing, and attitudes and perceptions of the consumer, the provider (physicians and hospitals), and the funding agencies (governments). Comparisons, where appropriate, with the system in the United States are incorporated.
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The definition of the left hemidiaphragm is frequently lost when patients are evaluated with portable radiographic equipment. Experimental evidence, based on results of radiography and subsequent sagittal sectioning of a frozen, unembalmed human thorax, corroborated the authors' hypothesis that this finding is related to loss of tangential imaging of the apex of the hemidiaphragm due to cephalic angulation of the central beam accompanied by projection of extrapleural fat onto the base of the left lung. In eight of ten patients in whom portable radiography was performed in 10 degrees-15 degrees of lordosis, varying degrees of loss of definition of the left hemidiaphragm were seen, in the absence of disease. This potential pitfall can be avoided by ensuring that the central beam is tangent to the hemidiaphragm. To do otherwise can create the false impression of disease in the left lower lobe, pleural space, or both.
In this study we examined the effect of a 15% increase in extracellular fluid volume on lung density, lung volumes, nitrogen washout, chest radiographs and computerized tomographic (CT) scans of the thorax in 5 volunteers. The objective of the study was to determine the sensitivity of these techniques in detecting small changes in lung water. Lung density was measured by a gamma ray Compton scatter technique and with an Ohio nuclear delta 2020 CT scanner. We measured or derived functional residual capacity, residual volume (RV), vital capacity (VC), and total lung capacity by helium dilution. Single-breath nitrogen washout was used to measure closing volume and the slope of phase III nitrogen washout (delta N2). Chest radiographs were taken in the posteroanterior and lateral projections. With the CT scanner we obtained slices 1 cm thick through the bases of the lungs and at 6 and 12 cm up from the bases. All these measurements were made before and 20 to 90 min after the intravenous infusion of 30 ml/kg body weight of warm saline over a period of 20 min. The most striking findings were a 24% increase in delta N2, a 14% increase in RV, and a 4.5% decrease in VC. Chest radiographs and the CT scans showed an increase in the size of the azygos veins. There was no change in Compton scatter density or the CT numbers. These results suggest that (1) tests of small airway function, such as RV and delta N2, are more sensitive than radiographic techniques to small increases in lung water, (2) there is some protection of the lung to increases in extracellular fluid volume.
It is useful to consider the anterior junction anatomy in terms of three components: the superior recesses, the line, and the inferior recesses. Each component localizes to a specific area retrosternally: the superior recesses--behind the manubrium; the line--behind the upper two thirds of the sternal body; and the inferior recesses--behind the lower third of the sternal body and below where the cardiac mass abuts the anterior chest wall. Since the anterior chest wall curves backward from bottom to top (Figure 61), the coronal plane of the superior recesses is behind that of the anterior junction line, the coronal plane of the inferior recesses being in front of that of the anterior junction line. Accordingly, then, anteroposterior conventional tomograms will usually demonstrate the inferior recesses on the most anterior levels, the line a centimeter or so behind the inferior recesses, the superior recesses a centimeter or so behind the line. Understanding the anterior junction anatomy in terms of three components has widespread use, as shown above, by many examples obtained from everyday film reading. The presence, absence, and location of disease may be diagnosed. As well, mistaken diagnoses may be avoided. Since the anterior junction lung relates to the anterior pleural space, pleural space processes may alter the anterior junction anatomy. It must be realized that although visualization of the normal anterior junction anatomy components may help to exclude the presence of retrosternal abnormality, they are not infallible. It is possible for a small lesion to be entirely contained within the anterior mediastinum and, thus, not alter the normal anterior junction components. A deep retrosternal space, where normally the anterior junction line is formed, may allow an anterior mediastinal mass to be present and a normal anterior junction line to be seen if the mass does not occupy the entire depth of the space. Furthermore, in patients with markedly hyperexpanded lungs, it is conceivable that the cardiac mass may abut the chest wall at the level of the inferior recesses to a lesser degree than usual, or not at all. Marked lung hyperexpansion may also conceivably cause the superior recesses to extend above the manubrium.
The anatomy of the posterior junction is more than just the well-recognized posterior junction line. It is helpful to consider this anatomy in terms of three components, each corresponding to a specific area. (a) The Line--Contact of the parietal and visceral pleural surfaces of the right and left lungs, usually anterior to thoracic vertebral bodies 3-5; (b) The Superior Recesses--Edges of lung contact with the mediastinum, usually anterior to thoracic vertebral bodies 1 and 2, which edges marginate a "V" shaped area above the posterior junction line; (c) The Inferior Recesses--Edges of lung contact with the mediastinum over the posterior azygos and aortic arches and in the vicinity of the superior intercostal veins, which edges marginate an inverted "V" shaped area.
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Computed tomographic (CT) scans of the abdomen were obtained in 65 patients with biopsy-proved but untreated small cell carcinoma of the lung. Intra-abdominal metastases were found in 24 (37%), the majority being in the liver and adrenals. Abdominal CT before treatment is recommended as a part of the staging process in patients with small cell carcinoma of the lung, since extent of disease is relevant to prognosis.
Fluid was introduced into the pleural space in upright anesthetized, ventilated and/or spontaneously breathing dogs, and its distribution was studied radiographically and confirmed on frozen slices. Various lobes were collapsed to determine the resulting effect on fluid distribution and thereby gain an understanding of so-called "atypical" effusions in a clinical setting. It was found that fluid collects in the dependent portion of the thorax and its distribution is affected by deformation of the chest wall and lung. Airway obstruction causes lobar collapse, which creates negative local pressures secondary to distortion of the lung and chest wall. The effusion moves to the area of distortion to diminish these presures. To the extent that these mechanisms operate in man, it appears that pleural effusions remain subpulmonary until atelecasis of the adjacent lung or distortion of the chest wall causes fluid redistribution.
Embolization of metallic mercury is extremely rare. The literature has consisted primarily of scattered case reports. Two cases of patients with mercury embolization are presented. The differential diagnosis of the chest radiograph is discussed.
In 26 deaths from the neonatal unit with a histologic diagnosis of bronchopulmonary dysplasia (BPD), the histologic stage was compared to the radiologic stage according to the criteria described by Northway and Rosan. In 18 patients (69%), the histologic stage corresponded exactly to the radiologic stage. In the remaining eight patients (31%), there was a difference of one stage. If the 14 cases of Stages I and II were taken together there would be a discrepancy of one stage between the histologic and radiologic stages in 50%. However, with Stages III and IV the discrepancy was only 8.3%. There appears to be better correlation as the severity of BPD increases.
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