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  • 1
    Keywords: CANCER ; EXPRESSION ; GROWTH ; tumor ; CELL ; MODEL ; PATHWAY ; PATHWAYS ; COHORT ; DISEASE ; GENE ; GENE-EXPRESSION ; RNA ; DIFFERENTIATION ; TUMORS ; ACTIVATION ; BINDING ; BIOLOGY ; TARGET ; CHROMATIN ; gene expression ; PROMOTER ; genetics ; MODULATION ; C-MYC ; REPRESSION ; TRANSCRIPTIONAL REPRESSION ; MYCN ; neuroblastoma ; N-MYC ; signaling ; ONCOLOGY ; B-CELL LYMPHOMAS ; miRNA ; outcome ; MICRORNA ; CELL BIOLOGY ; Genetic ; COHORTS ; EXPRESSION SIGNATURES ; PATHWAY DEREGULATION
    Abstract: Increased activity of MYC protein-family members is a common feature in many cancers. Using neuroblastoma as a tumor model, we established a microRNA (miRNA) signature for activated MYCN/c-MYC signaling in two independent primary neuroblastoma tumor cohorts and provide evidence that c-MYC and MYCN have overlapping functions. On the basis of an integrated approach including miRNA and messenger RNA (mRNA) gene expression data we show that miRNA activation contributes to widespread mRNA repression, both in c-MYC- and MYCN-activated tumors. c-MYC/MYCN-induced miRNA activation was shown to be dependent on c-MYC/MYCN promoter binding as evidenced by chromatin immunoprecipitation. Finally, we show that pathways, repressed through c-MYC/MYCN miRNA activation, are highly correlated to tumor aggressiveness and are conserved across different tumor entities suggesting that c-MYC/MYCN activate a core set of miRNAs for cooperative repression of common transcriptional programs related to disease aggressiveness. Our results uncover a widespread correlation between miRNA activation and c-MYC/MYCN-mediated coding gene expression modulation and further substantiate the overlapping functions of c-MYC and MYCN in the process of tumorigenesis. Oncogene (2010) 29, 1394-1404; doi:10.1038/onc.2009.429; published online 30 November 2009
    Type of Publication: Journal article published
    PubMed ID: 19946337
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  • 2
    Keywords: RECEPTOR ; CANCER ; EXPRESSION ; N-MYC ; TUMOR-SUPPRESSOR ; MICRORNA ; TRANSCRIPTIONAL TARGET ; THERAPEUTIC TARGET ; ACTIVATING MUTATIONS ; ALK KINASE
    Abstract: Neuroblastoma is an embryonic tumor arising from immature sympathetic nervous system cells. Recurrent genomic alterations include MYCN and ALK amplification as well as recurrent patterns of gains and losses of whole or large partial chromosome segments. A recent whole genome sequencing effort yielded no frequently recurring mutations in genes other than those affecting ALK. However, the study further stresses the importance of DNA copy number alterations in this disease, in particular for genes implicated in neuritogenesis. Here we provide additional evidence for the importance of focal DNA copy number gains and losses, which are predominantly observed in MYCN amplified tumors. A focal 5 kb gain encompassing the MYCN regulated miR-17 approximately 92 cluster as sole gene was detected in a neuroblastoma cell line and further analyses of the array CGH data set demonstrated enrichment for other MYCN target genes in focal gains and amplifications. Next we applied an integrated genomics analysis to prioritize MYCN down regulated genes mediated by MYCN driven miRNAs within regions of focal heterozygous or homozygous deletion. We identified RGS5, a negative regulator of G-protein signaling implicated in vascular normalization, invasion and metastasis, targeted by a focal homozygous deletion, as a new MYCN target gene, down regulated through MYCN activated miRNAs. In addition, we expand the miR-17 approximately 92 regulatory network controlling TGFss signaling in neuroblastoma with the ring finger protein 11 encoding gene RNF11, which was previously shown to be targeted by the miR-17 approximately 92 member miR-19b. Taken together, our data indicate that focal DNA copy number imbalances in neuroblastoma (1) target genes that are implicated in MYCN signaling, possibly selected to reinforce MYCN oncogene addiction and (2) serve as a resource for identifying new molecular targets for treatment.
    Type of Publication: Journal article published
    PubMed ID: 23308108
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