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PMID: 12707044 Published · ppublish English Journal Article Research Support, U.S. Gov't, Non-P.H.S. Research Support, U.S. Gov't, P.H.S.

Amplification and overexpression of the L-MYC proto-oncogene in ovarian carcinomas.

The American journal of pathology ·Vol. 162 ·No. 5 ·2003-05-00 ·Pages 1603-10

Wu R, Lin L, Beer DG, Ellenson LH, Lamb BJ, Rouillard JM, Kuick R, Hanash S, Schwartz DR, Fearon ER, Cho KR

Abstract

Gene amplification is an important mechanism of oncogene activation in various human cancers, including ovarian carcinomas (OvCas). We used restriction landmark genomic scanning (RLGS) to detect amplified DNA fragments in the genomes of 47 primary OvCas. Visual analysis of the RLGS gel images revealed several OvCa samples with spots of greater intensity than corresponding spots from normal tissues, indicating possible DNA amplification in specific tumors. Two primary tumors (E1 and S12) shared four high-intensity spots. A recently developed informatics tool termed Virtual Genome Scans was used to compare the RLGS patterns in these tumors with patterns predicted from the human genome sequence. Virtual Genome Scans determined that three of the four fragments localized to chromosome 1p34-35, a region containing the proto-oncogene L-MYC. Sixty-eight primary OvCas, including 40 analyzed by RLGS, were screened by quantitative polymerase chain reaction (PCR) for possible amplification of L-MYC. Ten tumors with increased L-MYC copy number were identified, including tumor E1, which showed an approximately 24-fold increase in copy number compared to normal DNA. Southern analysis of several tumors confirmed the quantitative PCR results. Using sequence tagged site (STS) markers flanking L-MYC, increased DNA copy number in tumor E1 was found to span the region flanking L-MYC between D1S432 and D1S463 ( approximately 3.1 Mb). Other tumors showed amplification only at the L-MYC locus. Using oligonucleotide microarrays, L-MYC was found to be more frequently overexpressed in OvCas than either c-MYC or N-MYC relative to ovarian surface epithelium. Quantitative reverse transcriptase-PCR analysis confirmed elevated L-MYC expression in a substantial fraction of OvCas, including nine of nine tumors with increased L-MYC copy number. The data implicate L-MYC gene amplification and/or overexpression in human OvCa pathogenesis.

MeSH Terms
Base Sequence Chromosome Mapping Chromosomes, Human, Pair 1 DNA Primers Female Gene Amplification Genes, myc Humans Ovarian Neoplasms/genetics Polymerase Chain Reaction/methods Proto-Oncogene Mas Proto-Oncogene Proteins c-myc/genetics Restriction Mapping Reverse Transcriptase Polymerase Chain Reaction
Chemicals
DNA Primers MAS1 protein, human Proto-Oncogene Mas Proto-Oncogene Proteins c-myc
Authors & Affiliations
11 authors, click to expand affiliations / ORCID
Wu Rong
Department of Pathology, University of Michigan Medical School, Ann Arbor, Michigan, USA. kathcho@umich.edu
Lin Lin
Beer David G
Ellenson Lora H
Lamb Barbara J
Rouillard Jean-Marie
Kuick Rork
Hanash Samir
Schwartz Donald R
Fearon Eric R
Cho Kathleen R
References (59)
59 references, click to expand
  1. L-myc, a new myc-related gene amplified and expressed in human small cell lung cancer.
    Nature. 1985 Nov 7-13;318(6041):69-73 PMID: 2997622
  2. Contrasting roles for c-Myc and L-Myc in the regulation of cellular growth and differentiation in vivo.
    EMBO J. 1995 Feb 15;14(4):743-56 PMID: 7882978
  3. c-myc and chromosome 8 centromere studies of ovarian cancer by interphase FISH.
    Exp Mol Pathol. 1999 Jun;66(2):140-8 PMID: 10409442
  4. Amplification of N-myc in untreated human neuroblastomas correlates with advanced disease stage.
    Science. 1984 Jun 8;224(4653):1121-4 PMID: 6719137
  5. Correspondence of RLGS-M spot behavior with tissue expression on mouse homologue of DP1/TB2 gene.
    Biochem Biophys Res Commun. 1995 Aug 24;213(3):967-74 PMID: 7654261
  6. The human myc gene family: structure and activity of L-myc and an L-myc pseudogene.
    Genes Dev. 1987 Dec;1(10):1311-26 PMID: 3322939
  7. Amplification of oncogenes in human cancer cells.
    Bioessays. 1998 Jun;20(6):473-9 PMID: 9699459
  8. DNA binding by N- and L-Myc proteins.
    Oncogene. 1993 Apr;8(4):1093-8 PMID: 8455937
  9. Two-dimensional separation and cloning of chromosome 1 NotI-EcoRV-derived genomic fragments.
    Genomics. 1996 Dec 1;38(2):124-32 PMID: 8954793
  10. Studies of the inheritance of human ribosomal DNA variants detected in two-dimensional separations of genomic restriction fragments.
    Genetics. 1996 Sep;144(1):307-16 PMID: 8878694
  11. MYC oncogenes and human neoplastic disease.
    Oncogene. 1999 May 13;18(19):3004-16 PMID: 10378696
  12. L-myc cooperates with ras to transform primary rat embryo fibroblasts.
    Mol Cell Biol. 1988 Jun;8(6):2668-73 PMID: 2457153
  13. Amplification of HER-2/neu oncogene in human ovarian cancer.
    Int J Gynecol Cancer. 1992 Nov;2(6):291-4 PMID: 11576271
  14. Gene amplification of c-myc and N-myc in small cell carcinoma of the lung.
    Science. 1986 Jul 25;233(4762):461-4 PMID: 3014659
  15. Studies of the HER-2/neu proto-oncogene in human breast and ovarian cancer.
    Science. 1989 May 12;244(4905):707-12 PMID: 2470152
  16. Cancer statistics, 2002.
    CA Cancer J Clin. 2002 Jan-Feb;52(1):23-47 PMID: 11814064
  17. Precursor lesions of ovarian epithelial malignancy.
    Histopathology. 2001 Feb;38(2):87-95 PMID: 11207821
  18. Identification and characterization of a 19q12 amplicon in esophageal adenocarcinomas reveals cyclin E as the best candidate gene for this amplicon.
    Cancer Res. 2000 Dec 15;60(24):7021-7 PMID: 11156406
  19. Genetic variation detected by quantitative analysis of end-labeled genomic DNA fragments.
    Proc Natl Acad Sci U S A. 1994 Sep 13;91(19):9052-6 PMID: 7916459
  20. Integrated genomic and epigenomic analyses pinpoint biallelic gene inactivation in tumors.
    Nat Genet. 2002 Nov;32(3):453-8 PMID: 12355068
  21. Gene expression in ovarian cancer reflects both morphology and biological behavior, distinguishing clear cell from other poor-prognosis ovarian carcinomas.
    Cancer Res. 2002 Aug 15;62(16):4722-9 PMID: 12183431
  22. Restriction landmark genomic scanning (RLGS-M)-based genome-wide scanning of mouse liver tumors for alterations in DNA methylation status.
    Cancer Res. 1997 Aug 1;57(15):3294-9 PMID: 9242463
  23. Co-amplification of a novel cyclophilin-like gene (PPIE) with L-myc in small cell lung cancer cell lines.
    Oncogene. 1998 Aug 27;17(8):1019-26 PMID: 9747881
  24. Sequence-specific DNA binding by the c-Myc protein.
    Science. 1990 Nov 23;250(4984):1149-51 PMID: 2251503
  25. A genomic scanning method for higher organisms using restriction sites as landmarks.
    Proc Natl Acad Sci U S A. 1991 Nov 1;88(21):9523-7 PMID: 1946366
  26. The significance of oncogene amplification in primary breast cancer.
    Int J Cancer. 1989 Feb 15;43(2):270-2 PMID: 2563720
  27. c-myc amplification in ovarian cancer.
    Gynecol Oncol. 1990 Sep;38(3):340-2 PMID: 2227545
  28. Two-dimensional separations of the genome and proteome of neuroblastoma cells.
    Electrophoresis. 1996 Nov;17(11):1741-51 PMID: 8982607
  29. Amplification and expression of the c-myc oncogene in human lung cancer cell lines.
    Nature. 1983 Nov 10-16;306(5939):194-6 PMID: 6646201
  30. Detection of numerical aberration in chromosome 17 and c-erbB2 gene amplification in epithelial ovarian cancer using recently established dual color FISH.
    Eur J Gynaecol Oncol. 2001;22(1):23-5 PMID: 11321488
  31. HER-2/neu oncogene amplification in stage I and stage III ovarian papillary serous carcinoma.
    Exp Mol Pathol. 1999 Jun;66(2):163-9 PMID: 10409445
  32. C-myc proto-oncogene amplification detected by polymerase chain reaction in archival human ovarian carcinomas.
    Am J Pathol. 1990 Sep;137(3):653-8 PMID: 2205100
  33. Combined restriction landmark genomic scanning and virtual genome scans identify a novel human homeobox gene, ALX3, that is hypermethylated in neuroblastoma.
    Genes Chromosomes Cancer. 2002 Mar;33(3):285-94 PMID: 11807986
  34. Detection of numerical chromosomal abnormalities in epithelial ovarian neoplasms by fluorescence in situ hybridization (FISH) and a review of the current literature.
    Appl Immunohistochem Mol Morphol. 2002 Jun;10(2):187-93 PMID: 12051640
  35. In vivo amplification and rearrangement of c-myc oncogene in human breast tumors.
    J Natl Cancer Inst. 1988 Jul 6;80(9):665-71 PMID: 3373555
  36. Co-amplification of a novel gene, NAG, with the N-myc gene in neuroblastoma.
    Oncogene. 1999 Jan 7;18(1):233-8 PMID: 9926938
  37. The Myc/Max/Mad network and the transcriptional control of cell behavior.
    Annu Rev Cell Dev Biol. 2000;16:653-99 PMID: 11031250
  38. Numerical abnormalities of chromosomes 1, 11, 17, and X are associated with stromal invasion in serous and mucinous epithelial ovarian tumours.
    J Pathol. 1999 Sep;189(1):53-9 PMID: 10451488
  39. Virtual genome scan: a tool for restriction landmark-based scanning of the human genome.
    Genome Res. 2001 Aug;11(8):1453-9 PMID: 11483587
  40. Changes of chromosomes 1, 3, 6, and 11 in metastatic effusions arising from breast and ovarian cancer.
    Cancer Genet Cytogenet. 1999 Apr;110(1):34-40 PMID: 10198620
  41. A minimal critical region of the 8p22-23 amplicon in esophageal adenocarcinomas defined using sequence tagged site-amplification mapping and quantitative polymerase chain reaction includes the GATA-4 gene.
    Cancer Res. 2000 Mar 1;60(5):1341-7 PMID: 10728696
  42. Detection of c-myc oncogene amplification and chromosomal anomalies in metastatic prostatic carcinoma by fluorescence in situ hybridization.
    Cancer Res. 1997 Feb 1;57(3):524-31 PMID: 9012485
  43. Band 1p36 abnormalities and t(1;17) in ovarian carcinoma.
    Cancer Genet Cytogenet. 1997 Jul 15;96(2):106-10 PMID: 9216715
  44. Chromosomal assignment of human genomic NotI restriction fragments in a two-dimensional electrophoresis profile.
    Genomics. 1996 Jan 1;31(1):28-35 PMID: 8808276
  45. Frequent amplification of C-erbB2 (HER-2/Neu) oncogene in cervical carcinoma as detected by non-fluorescence in situ hybridization technique on paraffin sections.
    Oncology. 1999;56(1):83-7 PMID: 9885382
  46. Amplification and rearrangement of L-myc in human small-cell lung cancer.
    Mutat Res. 1992 May;276(3):307-15 PMID: 1374523
  47. Receptors for hormones and growth factors and (onco)-gene amplification in human ovarian cancer.
    Int J Cancer. 1992 Sep 9;52(2):218-24 PMID: 1325950
  48. New approach for detection of amplification in cancer DNA using restriction landmark genomic scanning.
    Cancer Res. 1992 Jul 1;52(13):3642-7 PMID: 1617637
  49. Genetics and ovarian carcinoma.
    Semin Oncol. 1998 Jun;25(3):265-80 PMID: 9633840
  50. Major oncogenes and tumor suppressor genes involved in epithelial ovarian cancer (review).
    Int J Oncol. 2000 Mar;16(3):567-76 PMID: 10675491
  51. Relationship of C-erbB-2 protein expression and gene amplification to invasion and metastasis in human gastric cancer.
    Cancer. 1993 Oct 1;72(7):2083-8 PMID: 8397058
  52. Chromosome localization and expression pattern of Lmyc and Bmyc in murine embryonal carcinoma cells.
    Oncogene. 1988 Dec;3(6):679-85 PMID: 2577870
  53. Cyclin D1 gene amplification and overexpression are present in ductal carcinoma in situ of the breast.
    J Pathol. 1999 Feb;187(3):279-84 PMID: 10398079
  54. Comparative analysis of the expression and oncogenic activities of Xenopus c-, N-, and L-myc homologs.
    Mol Cell Biol. 1993 Apr;13(4):2456-68 PMID: 8455622
  55. Interphase fluorescence in situ hybridization studies of ovarian adenocarcinomas using the midisatellite probe.
    Gynecol Oncol. 1999 Feb;72(2):208-14 PMID: 10021303
  56. HER-2/neu oncogene amplification by fluorescence in situ hybridization in epithelial tumors of the ovary.
    Am J Clin Pathol. 1999 Mar;111(3):311-6 PMID: 10078105
  57. Aggressive subtypes of human colorectal tumors frequently exhibit amplification of the c-myc gene.
    Oncogene. 1991 Jan;6(1):125-9 PMID: 1992440
  58. High yield of restriction fragment length polymorphisms in two-dimensional separations of human genomic DNA.
    Genomics. 1995 Jan 20;25(2):345-53 PMID: 7789966
  59. Use of restriction enzymes to detect potential gene sequences in mammalian DNA.
    Nature. 1987 May 28-Jun 3;327(6120):336-8 PMID: 2438557
Article Info
Journal
The American journal of pathology
Abbr.
Am J Pathol
ISSN
0002-9440
Published
2003-05-00
Pages
1603-10
Language
English
Region
United States
NLM ID
0370502
PMCID
PMC1851191
Subset
IM
Grants
NCI NIH HHS · P30 CA046592 · United States
NCI NIH HHS · U19 CA084953 · United States
NCI NIH HHS · P30 CA46592 · United States
NCI NIH HHS · U19 CA84953 · United States
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