Literature DB >> 12112532

Breakpoint position on 17q identifies the most aggressive neuroblastoma tumors.

Maria Łastowska1, Simon Cotterill, Nick Bown, Catherine Cullinane, Sadick Variend, John Lunec, Tom Strachan, Andrew D J Pearson, Michael S Jackson.   

Abstract

Gain of chromosome arm 17q is a powerful prognostic factor in neuroblastoma, and the distribution of 17q breakpoints suggests that the dosage of one or more genes in 17q22-23 to 17qter is critical for tumor progression. To identify the smallest region of 17q gain, we used eight probes to map translocation breakpoints in 48 primary neuroblastoma tumors. We identified at least five different breakpoints, all localized within the proximal part of 17q (from D17Z1 to MPO). The shortest region of gain identified by these probes extends from MPO (17q23.1) to 17qter. Surprisingly, we found that breakpoints localized proximal to ERBB2 (17q12) were associated with significantly better patient survival than breakpoints localized distal to ERBB2. Breakpoints localized distal to ERBB2 identified patients with a particularly poor prognosis, higher mitotic karyorrhectic index, and stage 4 disease. This implies that breakpoint position on 17q is a discriminative factor within this prognostically poor group of patients. This result also suggests that the biological effect of 17q gain during neuroblastoma progression has a complex basis. We propose that this involves dosage alterations of genes localized on both sides of the 17q breakpoints, with a gene or genes mapping between 17cen and 17q12 acting to suppress progression, and a gene or genes mapping between 17q23.1 and 17qter acting to promote tumor progression. Copyright 2002 Wiley-Liss, Inc.

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Year:  2002        PMID: 12112532     DOI: 10.1002/gcc.10089

Source DB:  PubMed          Journal:  Genes Chromosomes Cancer        ISSN: 1045-2257            Impact factor:   5.006


  10 in total

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2.  MiR-21 is an EGFR-regulated anti-apoptotic factor in lung cancer in never-smokers.

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3.  A novel translocation breakpoint within the BPTF gene is associated with a pre-malignant phenotype.

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Review 4.  Neuroblastoma: evolving therapies for a disease with many faces.

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5.  High-throughput molecular and histopathologic profiling of tumor tissue in a novel transplantable model of murine neuroblastoma: new tools for pediatric drug discovery.

Authors:  Jimmy K Stauffer; Rimas J Orentas; Erin Lincoln; Tahira Khan; Rosalba Salcedo; Julie A Hixon; Timothy C Back; Jun S Wei; Rajesh Patidar; Young Song; Laura Hurd; Maria Tsokos; Edwin W Lai; Graeme Eisenhofer; William Weiss; Javed Khan; Jon M Wigginton
Journal:  Cancer Invest       Date:  2012-06       Impact factor: 2.176

6.  Human fetal neuroblast and neuroblastoma transcriptome analysis confirms neuroblast origin and highlights neuroblastoma candidate genes.

Authors:  Katleen De Preter; Jo Vandesompele; Pierre Heimann; Nurten Yigit; Siv Beckman; Alexander Schramm; Angelika Eggert; Raymond L Stallings; Yves Benoit; Marleen Renard; Anne De Paepe; Geneviève Laureys; Sven Påhlman; Frank Speleman
Journal:  Genome Biol       Date:  2006       Impact factor: 13.583

7.  Functional Common and Rare ERBB2 Germline Variants Cooperate in Familial and Sporadic Cancer Susceptibility.

Authors:  Riyue Bao; Anita Ng; Mark Sasaki; Myvizhi Esai Selvan; Alyna Katti; Hyesan Lee; Lei Huang; Andrew D Skol; Cinzia Lavarino; Hector Salvador; Robert J Klein; Zeynep H Gümüş; Jaume Mora; Kenan Onel
Journal:  Cancer Prev Res (Phila)       Date:  2021-01-08

8.  Specific gene expression profiles and chromosomal abnormalities are associated with infant disseminated neuroblastoma.

Authors:  Cinzia Lavarino; Nai-Kong V Cheung; Idoia Garcia; Gema Domenech; Carmen de Torres; Miguel Alaminos; Jose Rios; William L Gerald; Brian Kushner; Mike LaQuaglia; Jaume Mora
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9.  A constitutional translocation t(1;17)(p36.2;q11.2) in a neuroblastoma patient disrupts the human NBPF1 and ACCN1 genes.

Authors:  Karl Vandepoele; Vanessa Andries; Nadine Van Roy; Katrien Staes; Jo Vandesompele; Geneviève Laureys; Els De Smet; Geert Berx; Frank Speleman; Frans van Roy
Journal:  PLoS One       Date:  2008-05-21       Impact factor: 3.240

10.  Somatic structural variation targets neurodevelopmental genes and identifies SHANK2 as a tumor suppressor in neuroblastoma.

Authors:  Gonzalo Lopez; Karina L Conkrite; Miriam Doepner; Komal S Rathi; Apexa Modi; Zalman Vaksman; Lance M Farra; Eric Hyson; Moataz Noureddine; Jun S Wei; Malcolm A Smith; Shahab Asgharzadeh; Robert C Seeger; Javed Khan; Jaime Guidry Auvil; Daniela S Gerhard; John M Maris; Sharon J Diskin
Journal:  Genome Res       Date:  2020-08-13       Impact factor: 9.043

  10 in total

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