Association of CDKN2A/B and MTAP deletions in adult-type diffuse gliomas

Blake A Ebner1, Cristiane M Ida1, Thomas M Kollmeyer

  • 1Department of Laboratory Medicine and Pathology, Mayo Clinic, Rochester, Minnesota USA.

Insights

Genetic analysis of adult-type diffuse gliomas reveals that CDKN2A/B and MTAP deletions frequently co-occur. Large 9p losses lead to concurrent heterozygous deletions, but smaller deletions may result in discordant copy numbers, impacting MTAP immunohistochemistry as a surrogate marker.

Area of Science:

  • Neuro-oncology
  • Cancer Genomics
  • Molecular Pathology

Background:

  • CDKN2A/B deletions are common in adult-type diffuse gliomas.
  • MTAP deletion often co-occurs with CDKN2A/B deletion.
  • MTAP immunohistochemistry (IHC) is proposed as a surrogate marker for CDKN2A/B status.

Purpose of the Study:

  • To investigate the genomic association between CDKN2A/B and MTAP deletions in adult-type diffuse gliomas.
  • To determine if MTAP IHC accurately reflects CDKN2A/B and MTAP copy number status.

Main Methods:

  • Chromosomal microarray analysis of CDKN2A/B and MTAP deletions in 333 adult-type diffuse gliomas.
  • MTAP IHC performed on a subset of 63 tumors.
  • Analysis of chromosomal alteration sizes to understand deletion patterns.

Main Results:

  • CDKN2A/B and MTAP deletions were concurrent in 99.5% of analyzed gliomas.
  • Large 9p losses resulted in concurrent heterozygous deletions of both genes.
  • Smaller deletions leading to homozygous CDKN2A/B deletion did not always include MTAP, causing discordance.

Conclusions:

  • Adult-type diffuse gliomas typically exhibit concurrent heterozygous deletions of CDKN2A/B and MTAP.
  • Tumor divergence in homozygous deletion status can lead to discordant copy numbers for CDKN2A/B and MTAP.
  • Discordant cases complicate the use of MTAP IHC as a reliable surrogate for CDKN2A/B status.

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