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Updated: Sep 11, 2025

A Protocol for Explant Cultures of IDH1-mutant Diffuse Low-grade Gliomas
Published on: May 9, 2025
Tumor-initiating genetics and therapy drive divergent molecular evolution in IDH-mutant gliomas
Abstract:
Astrocytomas and oligodendrogliomas are slow-growing and treatment-sensitive IDH-mutant gliomas diagnosed at ages 30-50. Local tumor regrowth and treatment resistance is inevitable resulting in 3-10 year astrocytoma and up to >20 years oligodendroglioma survival. We sought to identify genetic changes associated with tumor evolution in response to therapy through multi-timepoint whole-genome/whole-exome sequencing of 206 IDH-mutant glioma patient samples collected through the Glioma Longitudinal Analysis (GLASS) Consortium. We validated known genomic markers of tumor progression, including hypermutation and CDKN2A homozygous deletion, and discovered novel genetic alterations that distinguish the response to treatment in astrocytomas compared to oligodendrogliomas. Point mutations in PIK3CA , PIK3R1 , and NOTCH1 were newly acquired in recurrent oligodendrogliomas and associated with increased mutation rates. Focal oncogene amplifications, together with CDKN2A homozygous deletions, were associated with an increase in recurrence-specific chromosomal imbalances in astrocytomas. Mutational signature analysis revealed additional differences and detected enrichment for the SBS11, and SBS119 mutational signatures after temozolomide treatment in both IDH-glioma subtypes, whereas astrocytomas showed increased ID8 signatures after radiotherapy. These signatures suggest that the genomes of oligodendroglioma and astrocytoma adapt to the selective pressures of tumor progression and treatment in different ways. However, in both IDH-mutant glioma subtypes we observed a convergence of acquired driver gene alterations with genome-wide changes and worse patient outcomes, signaling selection of treatment-refractory clones. By identifying new prognostic markers and delineating the genomic divergence of oligodendrogliomas and astrocytomas after diagnosis, our results suggest that different DNA damage response mechanisms are engaged following chemo- and radiation therapy.
Insights
Genetic changes drive IDH-mutant glioma evolution during treatment. Astrocytomas and oligodendrogliomas acquire distinct alterations, leading to treatment resistance and worse outcomes in these brain tumors.
Area of Science:
- Neuro-oncology
- Genomics
- Cancer Biology
Background:
- IDH-mutant astrocytomas and oligodendrogliomas are slow-growing gliomas with variable survival rates.
- Tumor regrowth and treatment resistance are common challenges in managing these brain tumors.
- Understanding the genetic evolution under therapeutic pressure is crucial for improving patient outcomes.
Purpose of the Study:
- To identify genetic alterations associated with tumor evolution in IDH-mutant gliomas in response to therapy.
- To compare the genomic divergence between astrocytomas and oligodendrogliomas during treatment.
Main Methods:
- Multi-timepoint whole-genome and whole-exome sequencing of 206 IDH-mutant glioma patient samples from the Glioma Longitudinal Analysis (GLASS) Consortium.
- Validation of known genomic markers and discovery of novel genetic alterations.
- Mutational signature analysis to assess the impact of temozolomide and radiotherapy.
Main Results:
- Acquired point mutations in PIK3CA, PIK3R1, and NOTCH1 were observed in recurrent oligodendrogliomas.
- Focal oncogene amplifications and CDKN2A homozygous deletions were linked to chromosomal imbalances in astrocytomas.
- Distinct mutational signatures (SBS11, SBS119, ID8) were associated with specific treatments and glioma subtypes.
Conclusions:
- Oligodendrogliomas and astrocytomas exhibit different genomic adaptation strategies under treatment selective pressures.
- Convergence of acquired driver alterations and genome-wide changes signals the selection of treatment-refractory clones.
- Findings suggest differential DNA damage response mechanisms following chemotherapy and radiotherapy in IDH-mutant gliomas.
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