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Updated: Sep 21, 2025

Live-3D-Cell Immunocytochemistry Assays of Pediatric Diffuse Midline Glioma
Published on: November 11, 2021
Convergent evolution and multi-wave clonal invasion in H3 K27-altered diffuse midline gliomas treated with a PDGFR
Sasi Arunachalam1, Karol Szlachta1, Samuel W Brady1
1Department of Computational Biology, St. Jude Children's Research Hospital, MS 1135, Room IA6038, 262 Danny Thomas Place, Memphis, TN, 38105, USA.
Abstract:
The majority of diffuse midline gliomas, H3 K27-altered (DMG-H3 K27-a), are infiltrating pediatric brain tumors that arise in the pons with no effective treatment. To understand how clonal evolution contributes to the tumor's invasive spread, we performed exome sequencing and SNP array profiling on 49 multi-region autopsy samples from 11 patients with pontine DMG-H3 K27-a enrolled in a phase I clinical trial of PDGFR inhibitor crenolanib. For each patient, a phylogenetic tree was constructed by testing multiple possible clonal evolution models to select the one consistent with somatic mutations and copy number variations across all tumor regions. The tree was then used to deconvolute subclonal composition and prevalence at each tumor region to study convergent evolution and invasion patterns. Somatic variants in the PI3K pathway, a late event, are enriched in our cohort, affecting 70% of patients. Convergent evolution of PI3K at distinct phylogenetic branches was detected in 40% of the patients. 24 (~ 50%) of tumor regions were occupied by subclones of mixed lineages with varying molecular ages, indicating multiple waves of invasion across the pons and extrapontine. Subclones harboring a PDGFRA amplicon, including one that amplified a PDGRFAY849C mutant allele, were detected in four patients; their presence in extrapontine tumor and normal brain samples imply their involvement in extrapontine invasion. Our study expands the current knowledge on tumor invasion patterns in DMG-H3 K27-a, which may inform the design of future clinical trials.
Insights
Diffuse midline gliomas (DMG-H3 K27-a) invade the brain through multiple waves. PI3K pathway mutations and PDGFRA amplicon subclones drive this invasive spread, offering insights for new treatments.
Area of Science:
- Neuro-oncology
- Cancer genomics
- Pediatric oncology
Background:
- Diffuse midline gliomas, H3 K27-altered (DMG-H3 K27-a), are aggressive pediatric brain tumors lacking effective treatments.
- Understanding tumor invasion mechanisms is crucial for developing therapeutic strategies.
Purpose of the Study:
- To investigate clonal evolution and invasion patterns in pontine DMG-H3 K27-a.
- To identify genetic drivers contributing to tumor spread.
Main Methods:
- Exome sequencing and SNP array profiling of multi-region autopsy samples from 11 patients.
- Phylogenetic tree construction to model clonal evolution.
- Subclonal composition and prevalence analysis.
Main Results:
- PI3K pathway somatic variants were enriched (70% of patients), with convergent evolution observed in 40%.
- Mixed lineage subclones occupied 50% of tumor regions, indicating multiple invasion waves.
- PDGFRA amplicon subclones, including a mutant allele, were linked to extrapontine invasion.
Conclusions:
- Clonal evolution and specific genetic alterations (PI3K, PDGFRA) significantly contribute to DMG-H3 K27-a invasion.
- Findings provide insights into tumor spread mechanisms and may inform future clinical trial designs.

