Treatment of liver metastases from a solid pseudopapillary tumor of the pancreas.
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Biomedical subjects
Publications and source records attributed to Harold Essenfeld.
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OBJECTIVE: There are no endoscopic features that distinguish intestinal metaplasia of the cardia (CIM) from the normal cardia. Biopsy specimens are therefore randomly obtained from normal-appearing mucosa with significant potential sampling errors. Enhanced magnification endoscopy involves the combined use of magnification endoscopy with acetic acid instillation. This study assessed the value of enhanced magnification endoscopy in detecting CIM. METHODS: Patients undergoing elective upper endoscopy were invited to participate in the study. Patients were included if the squamocolumnar junction and the esophagogastric junction were judged to be at the same level. Enhanced magnification endoscopy was performed with 3% acetic acid instillation. Standard endoscopy was followed by magnification endoscopy and repeated after acetic acid spraying. Surface patterns were characterized before and after acetic acid spraying. The observed surface patterns were compared with histological results obtained from a single targeted biopsy specimen of each pattern. RESULTS: The overall prevalence of CIM was 34.8% (86/247 patients). After excluding 52 patients because of endoscopic evidence of Barrett's esophagus, 195 patients were eligible for participation in the study. In the study group, CIM was detected in 86 patients (44.1%) in targeted biopsy samples. No dysplasia was identified. Enhanced magnification endoscopy detected four different patterns of the mucosal surface: I) round pits, II) reticular, III) villous, and IV) ridged. The yields of detection of intestinal metaplasia according to endoscopic patterns were I) 0%, II) 5.3% (odds ratio = 0.05), III) 57.7% (odds ratio = 7.5, p = 0.0001), and IV) 95.8% (odds ratio = 42.8, p = 0.0001). CONCLUSIONS: CIM is more common than previously reported. Enhanced magnification endoscopy identifies two characteristic endoscopic patterns, villous (pattern III) and ridged (pattern IV), with outstanding clarity and resolution that correlate with histological identification of CIM with a single targeted biopsy sample. Enhanced magnification endoscopy will permit longitudinal studies of an entity that can be identified endoscopically.
CONTEXT: Current conventional tissue-processing methods employ fixation of tissues with neutral buffered formalin, dehydration with alcohol, and clearing with xylene before paraffin impregnation. Because the time required for this procedure is usually 8 hours or longer, it is customary to process tissues in automated instruments throughout the night. Although this time-honored method continues to serve histology laboratories well, it has a number of shortcomings, such as a 1-day delay of diagnosis, the need to batch specimens, the relatively large volumes and toxicity of reagents used, and the extent of RNA degradation. OBJECTIVE: To describe a rapid new method of tissue processing using a continuous-throughput technique. Design.-We used a combination of common histologic reagents, excluding formalin and xylene, as well as microwave energy, to develop a rapid processing method. The effect of this method on the quality of histomorphology, histochemistry, immunohistochemistry, and RNA content of processed tissue was compared with that of adjacent tissue sections processed by the conventional processing technique. We also assessed the impact of this rapid processing system on our practice by comparing the turnaround times of surgical pathology reports before and after its implementation. RESULTS: The new processing method permitted preparation of paraffin blocks from fresh or prefixed tissue in about 1 hour. The procedure allowed continuous flow of specimens at 15-minute intervals. It eliminated the use of formalin and xylene in the processing and used considerably lower volumes of other chemical reagents. Histomorphologic, histochemical, and immunohistochemical results were comparable to the parallel sections prepared by the conventional method. The new technique, however, preserved higher quality RNA. Use of the new methodology led to the diagnosis and reporting of more than one third of surgical pathology specimens on the same day that they were received, as compared to 1% of same-day reporting before the implementation of the rapid processing system. CONCLUSION: The quality of hematoxylin-eosin, histochemical, and immunohistochemical tissue sections provided by the new system is comparable to that obtained following the conventional processing method. The new system preserves RNA better than the conventional method. It also shortens the processing time to about 1 hour from the receipt of fresh or prefixed tissue, eliminates the need for formalin and xylene, and reduces the volume of other chemicals. Most importantly, it impacts overall patient management by allowing for considerably shorter turnaround times for completion of surgical pathology reports.