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.

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.

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