Characteristics of mismatch repair deficiency in sarcomas

Leona A Doyle1, Jonathan A Nowak1, Michael J Nathenson2

  • 1Department of Pathology, Brigham and Women's Hospital and Harvard Medical School, Boston, MA, USA.

Insights

Mismatch repair deficiency (MMR-D) is rare in sarcomas, occurring in 2.3% of tumors. MMR-D sarcomas have higher tumor mutation burden than MMR-proficient sarcomas but lower than MMR-D carcinomas.

Area of Science:

  • Oncology
  • Genomics
  • Cancer Research

Background:

  • Immune checkpoint inhibitors are effective in mismatch repair-deficient (MMR-D) tumors, increasing demand for MMR-D testing.
  • The role and utility of MMR-D testing in sarcomas are not well-established, as MMR-D is not typically implicated in sarcoma pathogenesis.

Purpose of the Study:

  • To determine the frequency, pattern, and clinicopathologic correlates of MMR deficiency in sarcomas.
  • To compare molecular characteristics of MMR-deficient sarcomas with MMR-deficient carcinomas.

Main Methods:

  • Genomic profiling of 304 sarcomas using a massively parallel sequencing platform (447 cancer-associated genes).
  • MMR status assessed by quantifying small insertion/deletion events in homopolymer regions per megabase.
  • Comparison of MMR-deficient sarcomas with MMR-deficient carcinomas (n=70).

Main Results:

  • Seven sarcomas (2.3%) were MMR-deficient: 4 unclassified, 1 pleomorphic rhabdomyosarcoma, 1 epithelioid leiomyosarcoma, 1 malignant PEComa.
  • MMR-deficient sarcomas exhibited significantly elevated tumor mutation burden compared to MMR-proficient sarcomas (median 16 vs. 4.6, p < 0.001).
  • MMR-deficient sarcomas had lower tumor mutation burden (median 28 vs. 16, p = 0.006) and greater chromosomal instability than MMR-deficient carcinomas.

Conclusions:

  • MMR deficiency is rare in histologically classifiable sarcomas (1%) but more common in unclassified sarcomas (10%).
  • MMR-D sarcomas show distinct molecular features compared to MMR-D carcinomas, including lower tumor mutational burden and higher chromosomal instability.
  • Further research is needed to establish the predictive role of MMR-D in sarcomas for immunotherapy response.

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