Genetic alterations that deregulate RB and PDGFRA signaling pathways drive tumor progression in IDH2-mutant
Kensuke Tateishi1,2,3, Yohei Miyake4,5, Taishi Nakamura4,5
1Department of Neurosurgery, Graduate School of Medicine, Yokohama City University, 3-9 Fukuura, Kanazawa, Yokohama, 2360004, Japan. ktate12@yokohama-cu.ac.jp.
Abstract:
In IDH-mutant astrocytoma, IDH2 mutation is quite rare and biological mechanisms underlying tumor progression in IDH2-mutant astrocytoma remain elusive. Here, we report a unique case of IDH2 mutant astrocytoma, CNS WHO grade 3 that developed tumor progression. We performed a comprehensive genomic and epigenomic analysis for primary and recurrent tumors and found that both tumors harbored recurrent IDH2R172K and TP53R248W mutation with CDKN2A/B hemizygous deletion. We also found amplifications of CDK4 and MDM2 with PDGFRA gain in the recurrent tumor and upregulated protein expressions of these genes. We further developed, for the first time, a xenograft mouse model of IDH2R172K and TP53R248W mutant astrocytoma from the recurrent tumor, but not from the primary tumor. Consistent with parent recurrent tumor cells, amplifications of CDK4 and MDM2 and PDGFRA gain were found, while CDKN2A/B was identified as homozygous deletion in the xenografts, qualifying for integrated diagnosis of astrocytoma, IDH2-mutant, CNS WHO grade 4. Cell viability assay found that CDK4/6 inhibitor and PDGFR inhibitor potently decreased cell viability in recurrent tumor cells, as compared to primary tumor cells. These findings suggest that gene alterations that activate retinoblastoma (RB) signaling pathways and PDGFR may drive tumor progression and xenograft formation in IDH2-mutant astrocytoma, which is equivalent to progressive IDH1-mutant astrocytoma. Also, our findings suggest that these genomic alterations may represent therapeutic targets in IDH2-mutant astrocytoma.
Insights
IDH2-mutant astrocytoma progression is driven by CDK4, MDM2, and PDGFRA alterations. Targeting these pathways shows promise for treating advanced IDH2-mutant astrocytoma, offering new therapeutic avenues.
Area of Science:
- Neuro-oncology
- Cancer Genomics
- Molecular Biology
Background:
- IDH-mutant astrocytomas are a significant brain tumor type, but the mechanisms of IDH2-mutant astrocytoma progression are poorly understood.
- IDH2 mutations are rare in astrocytomas, making the study of their progression particularly challenging.
Observation:
- A unique case of IDH2-mutant astrocytoma (CNS WHO grade 3) demonstrated tumor progression.
- Comprehensive genomic and epigenomic analysis revealed IDH2R172K and TP53R248W mutations with CDKN2A/B deletion in both primary and recurrent tumors.
- The recurrent tumor showed amplifications of CDK4 and MDM2, and PDGFRA gain, with corresponding protein upregulation.
Findings:
- A novel xenograft mouse model of IDH2R172K and TP53R248W mutant astrocytoma was successfully developed from the recurrent tumor.
- The xenografts exhibited CDK4 and MDM2 amplifications, PDGFRA gain, and homozygous CDKN2A/B deletion, consistent with CNS WHO grade 4 astrocytoma.
- Cell viability assays indicated that CDK4/6 and PDGFR inhibitors were more effective against recurrent tumor cells than primary tumor cells.
Implications:
- Alterations activating retinoblastoma (RB) signaling pathways and PDGFR likely drive tumor progression and xenograft formation in IDH2-mutant astrocytoma.
- These genomic alterations represent potential therapeutic targets for progressive IDH2-mutant astrocytoma.
- The findings offer insights comparable to progressive IDH1-mutant astrocytoma, suggesting unified therapeutic strategies.
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