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The mismatch repair gene hPMS2 is mutated in primary breast cancer

Gabriela A Balogh1, Rebecca C Heulings, Jose Russo

  • 1Breast Cancer Research Laboratory, Fox Chase Cancer Center, Philadelphia, PA 19111, USA.

Insights

Mutations in the hPMS2 mismatch repair (MMR) gene were found in breast cancers and even in adjacent normal tissues. These hPMS2 gene mutations may indicate early changes before cancer develops.

Area of Science:

  • Oncology
  • Molecular Biology
  • Genetics

Background:

  • Mismatch repair (MMR) genes are crucial for correcting DNA replication errors.
  • Mutations in MMR genes are linked to cancer development.
  • The hPMS2 gene is a key component of the MMR system.

Purpose of the Study:

  • To investigate mutations in the hPMS2 MMR gene in primary breast cancers.
  • To examine breast tissues adjacent to cancerous lesions for hPMS2 mutations.
  • To understand the role of hPMS2 mutations in early breast cancer development.

Main Methods:

  • Analysis of cDNA sequences of the hPMS2 gene.
  • Western blotting using a specific antibody against the hPMS2 protein.
  • Examination of 20 primary breast cancer tissues and 7 adjacent normal breast tissues.

Main Results:

  • Nine distinct missense mutations and one nonsense mutation (leading to premature truncation) were identified in the hPMS2 gene in primary breast cancers.
  • The truncated hPMS2 protein (75 kDa) was detected alongside the wild-type form (100 kDa) via Western blotting.
  • The same hPMS2 gene mutations and truncated protein were found in normal-appearing tissues adjacent to cancerous lesions in two samples.

Conclusions:

  • Primary breast cancers harbor mutations in the hPMS2 MMR gene.
  • Normal-appearing breast tissue adjacent to primary lesions can also carry these hPMS2 mutations.
  • These findings suggest that hPMS2 gene alterations may occur early in breast carcinogenesis, preceding visible neoplastic changes.

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