Comprehensive analysis of genomic alterations in gliosarcoma and its two tissue components
- 28 March 2002
- journal article
- research article
- Published by Wiley in Genes, Chromosomes and Cancer
- Vol. 34 (4) , 416-427
- https://doi.org/10.1002/gcc.10087
Abstract
Gliosarcoma is a variant of glioblastoma multiforme characterized by two components displaying gliomatous or sarcomatous differentiation. We investigated 38 gliosarcomas for aberrations of tumor‐suppressor genes and proto‐oncogenes that are commonly altered in glioblastomas. Amplification of CDK4, MDM2, EGFR, and PDGFRA were found in 11% (4/35), 8% (3/38), 8% (3/38), and 3% (1/35) of the tumors, respectively. Nine of 38 gliosarcomas (24%) carried TP53 mutations. PTEN mutations were identified in 45% (9/20) of the investigated tumors. Twenty gliosarcomas were analyzed by comparative genomic hybridization (CGH). Chromosomal imbalances commonly detected were gains on chromosomes 7 (15/20; 75%), X (4/20; 20%), 9q, and 20q (3/20, 15% each); and losses on chromosomes 10 and 9p (7/20, 35% each), and 13q (3/20, 15%). Five different high‐level amplifications were mapped to 4q12–q21 (1 case), 6p21 (1 case), 7p12 (2 cases), proximal 12q (4 cases), and 14q32 (1 case) by CGH. Southern blot and/or differential PCR analyses identified amplification of PDGFRA (4q12), CCND3 (6p21), EGFR (7p12), CDK4 (12q14) and/or MDM2 (12q14.3–q15), and AKT1 (14q32.3) in the respective tumors. Separate analysis of the gliomatous and sarcomatous components of eight gliosarcomas by CGH after microdissection and universal DNA amplification revealed that both components shared 57% of the chromosomal imbalances detected. Taken together, our data indicate that the genomic changes in gliosarcomas closely resemble those found in glioblastomas. However, the number of chromosomes involved in imbalances in gliosarcomas was significantly lower than that in glioblastomas, indicating a higher genomic stability in gliosarcomas. In addition, we provide further support for the hypothesis that the gliomatous and sarcomatous components are derived from a single precursor cell clone, which progressed into subclones with distinct morphological features during tumor evolution. According to our data, gain/amplification of genes on proximal 12q may facilitate the development of a sarcomatous phenotype.Keywords
Funding Information
- Deutsche Krebshilfe/Dr. Mildred Scheel Stiftung (10-1639-Re3, 10-1124-Li1)
This publication has 34 references indexed in Scilit:
- Degenerate oligonucleotide-primed PCR: General amplification of target DNA by a single degenerate primerPublished by Elsevier ,2004
- Genetic reflection of glioblastoma biopsy material in xenografts: characterization of 11 glioblastoma xenograft lines by comparative genomic hybridizationJournal of Neurosurgery, 2000
- Clinical outcome of gliosarcoma compared with glioblastoma multiforme: North Central Cancer Treatment Group resultsJournal of Neurosurgery, 1998
- Frequent In activation of CDKN2A and Rare Mutation of TP53 in PCNSLBrain Pathology, 1998
- Genetic analysis of glioblastoma multiforme provides evidence for subgroups within the gradeGenes, Chromosomes and Cancer, 1998
- Chromosomal abnormalities in glioblastoma multiforme tumors and glioma cell lines detected by comparative genomic hybridizationInternational Journal of Cancer, 1995
- Quantitative analysis of comparative genomic hybridizationCytometry, 1995
- Optimizing comparative genomic hybridization for analysis of DNA sequence copy number changes in solid tumorsGenes, Chromosomes and Cancer, 1994
- Comparative Genomic Hybridization for Molecular Cytogenetic Analysis of Solid TumorsScience, 1992
- Spindle-cell glioblastoma or gliosarcoma?Neuropathology and Applied Neurobiology, 1991