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April 23, 2026Biomolecules and Biomedicine0 citationsOpen Access

Genomic and mutational landscape of anaplastic ependymoma: Insights from the AACR Project GENIE Consortium

EGEdie GobelArizona State UniversityGSGrace S. SaglimbeniCreighton UniversityIPIosef I. PerezArizona State University

Key Points

  • The study aims to characterize the genomic profile and identify therapeutic targets in anaplastic ependymoma.
  • Conducted a retrospective analysis of AE cases from the AACR Project GENIE repository.
  • Examined recurrent somatic mutations and copy number alterations using descriptive and non-parametric statistics.
  • Explored variations based on sex and race within the demographic data.
  • Identified frequent mutations in TERT, KMT2D, KMT2A, and KMT2C, indicative of chromatin remodeling disruptions.
  • Observed dysregulation of p53 and DNA damage response pathways through mutations in TP53 and CDKN2A.
  • Notch signaling alterations were noted with mutations in NOTCH1 and NOTCH2, highlighting potential therapeutic pathways.

Abstract

Anaplastic ependymoma (AE) is a rare and aggressive central nervous system tumor that predominantly affects children and remains inadequately characterized at the genomic level. This study aimed to delineate the genomic and demographic landscape of histologically defined AE while identifying potential therapeutic targets. We conducted a retrospective analysis of AE cases from the American Association for Cancer Research (AACR) Project Genomics Evidence Neoplasia Information Exchange (GENIE) repository via cBioPortal, examining recurrent somatic mutations, copy number alterations, mutation co-occurrence, and exploratory sex- and race-based enrichment using descriptive and non-parametric statistics. The most frequent alterations included mutations in the telomerase reverse transcriptase (TERT) promoter, followed by recurrent changes in lysine methyltransferase 2D (KMT2D), lysine methyltransferase 2A (KMT2A), lysine methyltransferase 2C (KMT2C), E1A binding protein p300 (EP300), additional sex combs like 1 (ASXL1), and SET domain containing 2 (SETD2), indicating significant disruption of chromatin remodeling. Recurrent alterations in tumor protein p53 (TP53), ataxia telangiectasia mutated (ATM), and cyclin-dependent kinase inhibitor 2A (CDKN2A) suggested dysregulation of the p53 and DNA damage response pathways. Additionally, alterations in notch receptor 1 (NOTCH1) and notch receptor 2 (NOTCH2) indicated aberrant NOTCH signaling. Neurofibromin 2 (NF2) mutations were observed in male patients, and exploratory subgroup differences emerged across racial groups. Overall, AE appears to be driven by recurrent alterations in chromatin remodeling, p53, DNA damage response, and NOTCH signaling pathways, highlighting these areas as priorities for future biological validation and therapeutic investigation.

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Cite This Study

Gobel et al. (2026) studied this question.

synapsesocial.com/papers/69e9b89b85696592c86ebc7fhttps://doi.org/10.17305/bb.2026.13602
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