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.Purpose To evaluate the usefulness of quantitative findings of pretherapy lymphoscintigraphy in predicting the effects of complex decongestive therapy (CDT) in patients with upper extremity lymphedema after breast cancer treatment. Methods and Results We retrospectively analyzed patients with unilateral breast cancer-related lymphedema (BCRL) who underwent pretherapy lymphoscintigraphy and completed 2 weeks of CDT. A total of 18 patients with unilateral BCRL clinical stage II underwent 30-minute sessions of CDT five times per week for 2 weeks. The quantitative asymmetry index (QAI) of the upper extremity, axillary lymph node (LN) uptake, and axillary plus supraclavicular LN uptake from lymphoscintigraphy were calculated. The volume of lymphedema was calculated by percentage excess volume (PEV) at initial and posttreatment. The CDT response was assessed using percentage reduction in excess volume (PREV). Correlation analyses were conducted using Kendall tau rank correlation. There was positive correlation between upper extremity QAI at 2 hours and initial PEV. Negative correlations were found between axillary LN QAI at 1, 2 hours, and initial PEV, and between axillary plus supraclavicular LN QAI at 1, 2 hours, and initial PEV. The PREV showed a positive correlation with axillary LN QAI at 2 hours after injection (tau-b = 0.354, p = 0.041). Conclusion Quantitative findings of pretherapy lymphoscintigraphy have potential value for use in predicting the response to CDT in patients with upper extremity lymphedema after breast cancer treatment. Using QAIs from lymphoscintigraphy, we could estimate the excess volume of lymphedema.Although the physical and biologic principles of radiation therapy have remained relatively unchanged, a technologic renaissance has led to continuous and ever-changing growth in the field of radiation oncology. As a result, medical devices, techniques, and indications have changed considerably during the past 20-30 years. For example, advances in CT and MRI have revolutionized the treatment planning process for a variety of central nervous system diseases, including primary and metastatic tumors, vascular malformations, and inflammatory diseases. PP1 supplier The resultant improved ability to delineate normal from abnormal tissue has enabled radiation oncologists to achieve more precise targeting and helped to mitigate treatment-related complications. Nevertheless, posttreatment complications still occur and can pose a diagnostic challenge for radiologists. These complications can be divided into acute, early-delayed, and late-delayed complications on the basis of the time that they manifest after radiation therapy and include leukoencephalopathy, vascular complications, and secondary neoplasms. The different irradiation technologies and applications of these technologies in the brain, current concepts used in treatment planning, and essential roles of the radiation oncologist in the setting of brain disease are reviewed. In addition, relevant imaging findings that can be used to delineate the extent of disease before treatment, and the expected posttreatment imaging changes are described. Common and uncommon complications related to radiation therapy and the associated imaging manifestations also are discussed. Familiarity with these entities may aid the radiologist in making the diagnosis and help guide appropriate management. ©RSNA, 2020.Endoscopic US-guided biliary drainage (BD) is performed for various types of biliary obstruction and is mainly indicated for unsuccessful conventional transpapillary endoscopic retrograde cholangiodrainage. In endoscopic US BD, an extra-anatomic drainage route between the gastrointestinal (GI) tract and the biliary system is created with a covered metallic stent or plastic stent. Procedural types of endoscopic US BD include hepaticogastrostomy, hepaticojejunostomy (after gastrectomy), choledochoduodenostomy, hepaticoduodenostomy, and endoscopic US-guided gallbladder drainage. The technical and clinical success rates of endoscopic US BD are reported to be 94%-97% and 88%-100%, respectively. CT is crucial both in preprocedural assessment and postprocedural monitoring. CT is used to determine the indications for endoscopic US BD, which include the type of biliary obstruction, collateral vessels in the puncture route, ascites, the volume of the liver segment, the distribution of an intrahepatic tumor, and GI tract patency. After endoscopic US BD, common subclinical findings are a small amount of intraperitoneal gas, localized edematous change in the GI tract, a notch in the placed stent, and localized biliary dilatation caused by stent placement. Stent malfunction after endoscopic US BD is caused by impaction of debris and/or food, stent migration into the GI tract, or tumor overgrowth and/or hyperplasia. Complications that can occur include internal stent migration, intraperitoneal biloma, arterial bleeding or pseudoaneurysm, perforation of the GI tract, and portobiliary fistula. The incidence of clinical endoscopic US BD-related complications is 11%-23%. ©RSNA, 2020.Background Traumatic injuries are a leading cause of death and morbidity. Despite their comprising a small ( less then 5%) segment of all hospitalizations, the length of stay (LOS) is above average; and the cost of care for the more than 20 million trauma inpatients nears $30 billion per year. Adding insult to injury, risk factors for health-care-associated infections (HAI), including invasive devices and comprised integrity, may be particularly pronounced in this population, potentially exacerbating the clinical and economic burden. Our aim was to determine the distribution, determinants, and burden of HAI after traumatic injury using LOS as a surrogate for health-care-related expense. Patients and Methods This retrospective cohort study used the Trauma Quality Improvement Project (TQIP) database (2013-2016). Patients 16 to 89 years of age were included. Those who developed at least one of the following were counted as cases Catheter-related central blood stream infection, catheter-related urinary tract infeive policies and support for infection prevention programs and interventions.
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