Desmoplastic small round cell tumor: evaluation of reverse transcription-polymerase chain reaction and fluorescence in situ hybridization as ancillary molecular diagnostic techniques

2017 ◽  
Vol 471 (5) ◽  
pp. 631-640 ◽  
Author(s):  
Mustafa Mohamed ◽  
David Gonzalez ◽  
Karen J. Fritchie ◽  
John Swansbury ◽  
Dorte Wren ◽  
...  
2006 ◽  
Vol 130 (12) ◽  
pp. 1813-1818 ◽  
Author(s):  
Nirmala A. Jambhekar ◽  
Izhar N. Bagwan ◽  
Prachi Ghule ◽  
Tanuja M. Shet ◽  
Roshni F. Chinoy ◽  
...  

Abstract Context.—The Ewing family of tumors are often difficult to distinguish from other malignant small round cell tumors, but more than 90% have EWS-FLI1 chimeric transcript, which acts as a potential molecular diagnostic marker. Objective.—To do a comparative analysis of 32 cases with EWS-FLI1: Ewing family of tumors (n = 30), desmoplastic small round cell tumor (n = 1), and undifferentiated sarcoma (n = 1). Design.—The initial diagnosis was made on core biopsy (n = 22) and open biopsy (n = 4) specimens by using morphology and immunohistochemistry and on fine-needle aspiration cytology ([FNAC], n = 6) specimens. EWS-FLI1 was detected by reverse transcriptase polymerase chain reaction on all 32 fresh FNAC samples and by fluorescence in situ hybridization on 16 paraffin blocks. Results.—The 19 male and 13 female patients had bone (n = 19) or soft tissue (n = 13) tumors. Histologic groups were typical Ewing sarcoma (n = 15), atypical Ewing sarcoma (n = 4), Askin Rosai tumors (n = 5), desmoplastic small round cell tumor (n = 1), undifferentiated sarcoma (n = 1), and cases diagnosed as malignant small round cell tumors on FNAC (n = 6). All tumors except desmoplastic small round cell tumor and undifferentiated sarcoma were CD99 positive. EWS-FLI1 by reverse transcriptase polymerase chain reaction was noted in 15 cases of typical Ewing sarcoma, 4 cases of atypical Ewing sarcoma, 5 cases of Askin Rosai tumor, and no cases of desmoplastic small round cell tumor or undifferentiated sarcoma. With use of fluorescence in situ hybridization, EWS break was detected in 10 of 11 paraffin blocks used and was negative in desmoplastic small round cell tumor. Conclusions.—The excellent correlation of routine histologic findings in Ewing family of tumors with results on immunohistochemistry and fluorescence in situ hybridization on archival material and reverse transcriptase polymerase chain reaction on fresh FNAC specimens underscores that the traditional observation on routine histologic examination is a time-tested tool. The diagnosis of Ewing family of tumors can be validated on archival material or fresh biopsy samples, including those obtained by FNAC.


Author(s):  
Tanushri Mukherjee ◽  
Soma Mukherjee ◽  
Rajat Dutta

<p>Pediatric tumors are challenging in the context of best diagnosis, treatment, and prognosis. For tumors which have a genetic association or a cancer predisposition syndrome, the prognosis depends on accurate diagnosis. The application of molecular genetics to pediatric tumors has resulted in better diagnostic and prognostic factors for patient management. Molecular diagnostic techniques, such as reverse transcription polymerase chain reaction and fluorescence in situ hybridization (FISH), have become important tests for childhood tumors. Targeted therapies are aimed at specific translocations which are detected by FISH. Molecular techniques help in monitoring of minimal residual disease in childhood tumors.</p>


2003 ◽  
Vol 6 (1) ◽  
pp. 43-53 ◽  
Author(s):  
Michael K. Fritsch ◽  
Julia A. Bridge ◽  
Amy E. Schuster ◽  
Elizabeth J. Perlman ◽  
Pedram Argani

Pediatric small round cell tumors still pose tremendous diagnostic problems. In difficult cases, the ability to detect tumor-specific gene fusion transcripts for several of these neoplasms, including Ewing sarcoma/peripheral primitive neuroectodermal tumor (ES/PNET), synovial sarcoma (SS), alveolar rhabdomyosarcoma (ARMS), and desmoplastic small round cell tumor (DSRCT) using reverse transcriptase–polymerase chain reaction (RT-PCR), can be extremely helpful. Few studies to date, however, have systematically examined several different tumor types for the presence of multiple different fusion transcripts in order to determine the specificity and sensitivity of the RT-PCR method, and no study has addressed this issue for formalin-fixed material. The objectives of this study were to address the specificity, sensitivity, and practicality of such an assay applied strictly to formalin-fixed tissue blocks. Our results demonstrate that, for these tumors, the overall sensitivity for detecting each fusion transcript is similar to that reported in the literature for RT-PCR on fresh or formalin-fixed tissues. The specificity of the assay is very high, being essentially 100% for each primer pair when interpreting the results from visual inspection of agarose gels. However, when these same agarose gels were examined using Southern blotting, a small number of tumors also yielded reproducibly detectable weak signals for unexpected fusion products, in addition to a strong signal for the expected fusion product. Fluorescence in situ hybridization (FISH) studies in one such case indicated that a rearrangement that would account for the unexpected fusion was not present, while another case was equivocal. The overall specificity for each primer pair used in this assay ranged from 94 to 100%. Therefore, RT-PCR using formalin-fixed paraffin-embedded tissue sections can be used to detect chimeric transcripts as a reliable, highly sensitive, and highly specific diagnostic assay. However, we strongly suggest that the final interpretation of the results from this assay be viewed in light of the other features of the case, including clinical history, histology, and immunohistochemistry, by the diagnostic pathologist. Additional studies such as FISH may be useful in clarifying the nature of equivocal or unexpected results.


Author(s):  
G. W. Hacker ◽  
I. Zehbe ◽  
J. Hainfeld ◽  
A.-H. Graf ◽  
C. Hauser-Kronberger ◽  
...  

In situ hybridization (ISH) with biotin-labeled probes is increasingly used in histology, histopathology and molecular biology, to detect genetic nucleic acid sequences of interest, such as viruses, genetic alterations and peptide-/protein-encoding messenger RNA (mRNA). In situ polymerase chain reaction (PCR) (PCR in situ hybridization = PISH) and the new in situ self-sustained sequence replication-based amplification (3SR) method even allow the detection of single copies of DNA or RNA in cytological and histological material. However, there is a number of considerable problems with the in situ PCR methods available today: False positives due to mis-priming of DNA breakdown products contained in several types of cells causing non-specific incorporation of label in direct methods, and re-diffusion artefacts of amplicons into previously negative cells have been observed. To avoid these problems, super-sensitive ISH procedures can be used, and it is well known that the sensitivity and outcome of these methods partially depend on the detection system used.


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