ERG gene rearrangement status in prostate cancer detected by immunohistochemistry

被引:66
作者
Falzarano, Sara Moscovita [2 ,5 ]
Zhou, Ming [2 ,3 ]
Carver, Paula [2 ]
Tsuzuki, Toyonori [4 ]
Simmerman, Kelly [2 ]
He, Huiying [2 ]
Magi-Galluzzi, Cristina [1 ,2 ,3 ]
机构
[1] Cleveland Clin, Dept Anat Pathol, Cleveland, OH 44195 USA
[2] Cleveland Clin, Pathol & Lab Med Inst, Cleveland, OH 44195 USA
[3] Cleveland Clin, Glickman Urol & Kidney Inst, Cleveland, OH 44195 USA
[4] Nagoya Daini Red Cross Hosp, Dept Pathol, Nagoya, Aichi, Japan
[5] Univ Siena, Dept Pathol & Human Oncol, I-53100 Siena, Italy
关键词
ERG; Fluorescence in situ hybridization; Immunohistochemistry; Prostate cancer; TRANSCRIPTION FACTORS; FUSION; TMPRSS2-ERG; HETEROGENEITY; OVEREXPRESSION; PROGRESSION; PREVALENCE; EXPRESSION; ANTIBODY; TUMORS;
D O I
10.1007/s00428-011-1128-4
中图分类号
R36 [病理学];
学科分类号
100104 ;
摘要
TMPRSS2-ERG, the most common gene fusion in prostate cancer, is associated with expression of a truncated protein product of the oncogene ERG. A novel anti-ERG monoclonal antibody has been recently characterized. We investigated the correlation between ERG rearrangement assessed by fluorescence in situ hybridization (FISH) and ERG expression detected by immunohistochemistry in a large cohort of patients treated with radical prostatectomy for clinically localized prostate cancer. Thirteen tissue microarrays comprising 305 tumors and a subset of 112 samples of nonneoplastic prostatic tissue were assessed for ERG rearrangement status by FISH and for ERG expression by immunohistochemistry. Accuracy of ERG detection by immunohistochemistry in predicting ERG status as assessed by FISH (criterion standard) was calculated in terms of sensitivity, specificity, positive and negative predictive values. Of 305 tumor foci, 103 (34%) showed ERG rearrangement by FISH. ERG was detected by immunohistochemistry in 100 (33%) cases, 99 of which were FISH positive. ERG detection by immunohistochemistry demonstrated a sensitivity and specificity of 96% and 99%, respectively, with positive and negative predictive values of 99% and 98%, respectively. None of the 112 samples of nonneoplastic prostatic tissue was rearranged by FISH or showed any ERG expression. In conclusion, ERG detection by immunohistochemistry in prostate cancer was highly predictive of ERG rearrangement as assessed by FISH in a large cohort of prostatectomy patients. Given the high yield and the easier task of performing immunohistochemistry vs. FISH, ERG assessment by immunohistochemistry may be useful for characterizing ERG status in prostate cancer.
引用
收藏
页码:441 / 447
页数:7
相关论文
共 29 条
[1]  
Anderson MK, 1999, DEVELOPMENT, V126, P3131
[2]   Duplication of the fusion of TMPRSS2 to ERG sequences identifies fatal human prostate cancer [J].
Attard, G. ;
Clark, J. ;
Ambroisine, L. ;
Fisher, G. ;
Kovacs, G. ;
Flohr, P. ;
Berney, D. ;
Foster, C. S. ;
Fletcher, A. ;
Gerald, W. L. ;
Moller, H. ;
Reuter, V. ;
De Bono, J. S. ;
Scardino, P. ;
Cuzick, J. ;
Cooper, C. S. .
ONCOGENE, 2008, 27 (03) :253-263
[3]   TMPRSS2-ERG fusion heterogeneity in Multifocal prostate cancer: Clinical and biologic implications [J].
Barry, Marc ;
Perner, Sven ;
Demichelis, Francesca ;
Rubin, Mark A. .
UROLOGY, 2007, 70 (04) :630-633
[4]   Transcription factor Erg regulates angiogenesis and endothelial apoptosis through VE-cadherin [J].
Birdsey, Graeme M. ;
Dryden, Nicola H. ;
Amsellem, Valerie ;
Gebhardt, Frank ;
Sahnan, Kapil ;
Haskard, Dorian O. ;
Dejana, Elisabetta ;
Mason, Justin C. ;
Randi, Anna M. .
BLOOD, 2008, 111 (07) :3498-3506
[5]   Aberrant ERG expression cooperates with loss of PTEN to promote cancer progression in the prostate [J].
Carver, Brett S. ;
Tran, Jennifer ;
Gopalan, Anuradha ;
Chen, Zhenbang ;
Shaikh, Safa ;
Carracedo, Arkaitz ;
Alimonti, Andrea ;
Nardella, Caterina ;
Varmeh, Shohreh ;
Scardino, Peter T. ;
Cordon-Cardo, Carlos ;
Gerald, William ;
Pandolfi, Pier Paolo .
NATURE GENETICS, 2009, 41 (05) :619-624
[6]   Role of the TMPRSS2-ERG gene fusion in prostate cancer [J].
Chinnaiyan, Arul M. .
NEOPLASIA, 2008, 10 (02) :177-U23
[7]   Diversity of TMPRSS2-ERG fusion transcripts in the human prostate [J].
Clark, J. ;
Merson, S. ;
Jhavar, S. ;
Flohr, P. ;
Edwards, S. ;
Foster, C. S. ;
Eeles, R. ;
Martin, F. L. ;
Phillips, D. H. ;
Crundwell, M. ;
Christmas, T. ;
Thompson, A. ;
Fisher, C. ;
Kovacs, G. ;
Cooper, C. S. .
ONCOGENE, 2007, 26 (18) :2667-2673
[8]   Prevalence of TMPRSS2-ERG and SLC45A3-ERG gene fusions in a large prostatectomy cohort [J].
Esgueva, Raquel ;
Perner, Sven ;
LaFargue, Christopher J. ;
Scheble, Veit ;
Stephan, Carsten ;
Lein, Michael ;
Fritzsche, Florian R. ;
Dietel, Manfred ;
Kristiansen, Glen ;
Rubin, Mark A. .
MODERN PATHOLOGY, 2010, 23 (04) :539-546
[9]   A novel monoclonal antibody against DOG1 is a sensitive and specific marker for gastrointestinal stromal tumors [J].
Espinosa, Inigo ;
Lee, Cheng-Han ;
Kim, Mi Kyung ;
Rouse, Bich-Tien ;
Subramanian, Subbaya ;
Montgomery, Kelli ;
Varma, Sushama ;
Corless, Christopher L. ;
Heinrich, Michael C. ;
Smith, Kevin S. ;
Wang, Zhong ;
Rubin, Brian ;
Nielsen, Torsten O. ;
Seitz, Robert S. ;
Ross, Douglas T. ;
West, Robert B. ;
Cleary, Michael L. ;
van de Rijn, Matt .
AMERICAN JOURNAL OF SURGICAL PATHOLOGY, 2008, 32 (02) :210-218
[10]   Immunohistochemical Surrogates for Genetic Alterations of CCDN1, PML, ALK, and NPM1 Genes in Lymphomas and Acute Myeloid Leukemia [J].
Falini, Brunangelo ;
Martelli, Maria Paola ;
Tiacci, Enrico ;
Ascani, Stefano ;
Thiede, Christian ;
Pileri, Stefano A. .
BEST PRACTICE & RESEARCH CLINICAL HAEMATOLOGY, 2010, 23 (03) :417-431