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Updated: May 30, 2026

Mapping the Structure-Function Relationships of Disordered Oncogenic Transcription Factors Using Transcriptomic Analysis
Published on: June 27, 2020
Oncogenic activation of FOXR1 by 11q23 intrachromosomal deletion-fusions in neuroblastoma
E E Santo1, M E Ebus, J Koster
1Department of Oncogenomics, Academic Medical Center, University of Amsterdam, Amsterdam, The Netherlands.
Abstract:
Neuroblastoma tumors frequently show loss of heterozygosity of chromosome 11q with a shortest region of overlap in the 11q23 region. These deletions are thought to cause inactivation of tumor suppressor genes leading to haploinsufficiency. Alternatively, micro-deletions could lead to gene fusion products that are tumor driving. To identify such events we analyzed a series of neuroblastomas by comparative genomic hybridization and single-nucleotide polymorphism arrays and integrated these data with Affymetrix mRNA profiling data with the bioinformatic tool R2 (http://r2.amc.nl). We identified three neuroblastoma samples with small interstitial deletions at 11q23, upstream of the forkhead-box R1 transcription factor (FOXR1). Genes at the proximal side of the deletion were fused to FOXR1, resulting in fusion transcripts of MLL-FOXR1 and PAFAH1B2-FOXR1. FOXR1 expression has only been detected in early embryogenesis. Affymetrix microarray analysis showed high FOXR1 mRNA expression exclusively in the neuroblastomas with micro-deletions and rare cases of other tumor types, including osteosarcoma cell line HOS. RNAi silencing of FOXR1 strongly inhibited proliferation of HOS cells and triggered apoptosis. Expression profiling of these cells and reporter assays suggested that FOXR1 is a negative regulator of fork-head box factor-mediated transcription. The neural crest stem cell line JoMa1 proliferates in culture conditional to activity of a MYC-ER transgene. Over-expression of the wild-type FOXR1 could functionally replace MYC and drive proliferation of JoMa1. We conclude that FOXR1 is recurrently activated in neuroblastoma by intrachromosomal deletion/fusion events, resulting in overexpression of fusion transcripts. Forkhead-box transcription factors have not been previously implicated in neuroblastoma pathogenesis. Furthermore, this is the first identification of intrachromosomal fusion genes in neuroblastoma.
Insights
Neuroblastoma tumors often have chromosome 11q deletions. Researchers found new gene fusions involving FOXR1 (forkhead-box R1) in these deletions, driving tumor growth.
Area of Science:
- Genomics
- Cancer Biology
- Molecular Oncology
Background:
- Neuroblastoma frequently exhibits 11q deletions, potentially inactivating tumor suppressor genes or creating novel fusion genes.
- Micro-deletions in the 11q23 region are hypothesized to drive tumor development through gene fusions.
Purpose of the Study:
- To identify gene fusion events resulting from micro-deletions in neuroblastoma.
- To investigate the role of the forkhead-box R1 (FOXR1) transcription factor in neuroblastoma pathogenesis.
Main Methods:
- Comparative genomic hybridization (CGH) and single-nucleotide polymorphism (SNP) arrays were used to analyze neuroblastoma samples.
- Affymetrix mRNA profiling and bioinformatic analysis integrated genomic and transcriptomic data.
- RNA interference (RNAi) and reporter assays were employed to study FOXR1 function.
Main Results:
- Three neuroblastoma samples revealed micro-deletions at 11q23, leading to MLL-FOXR1 and PAFAH1B2-FOXR1 gene fusions.
- High FOXR1 mRNA expression was observed in neuroblastomas with these micro-deletions and in some other tumor types.
- FOXR1 overexpression drove proliferation in a neural crest stem cell line and inhibited proliferation/induced apoptosis in osteosarcoma cells upon silencing.
Conclusions:
- FOXR1 is recurrently activated in neuroblastoma via intrachromosomal deletion/fusion events, leading to overexpression of fusion transcripts.
- This study identifies intrachromosomal fusion genes in neuroblastoma for the first time.
- Forkhead-box transcription factors are implicated in neuroblastoma pathogenesis, with FOXR1 acting as a potential oncogene.
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