Functional Restoration of BRCA1 Nonsense Mutations by Aminoglycoside-Induced Readthrough

Renata B V Abreu1, Thiago T Gomes1, Thales C Nepomuceno1,2

  • 1Divisão de Pesquisa Clínica, Instituto Nacional de Câncer, Rio de Janeiro, Brazil.

Insights

The aminoglycoside G418 can restore full-length BRCA1 protein synthesis and DNA repair function in breast cancer cells with nonsense mutations. This approach shows promise for treating BRCA1-associated cancers by suppressing premature termination codons.

Area of Science:

  • Genetics
  • Molecular Biology
  • Oncology

Background:

  • BRCA1 is a crucial tumor suppressor involved in DNA repair.
  • Nonsense mutations in BRCA1 lead to truncated proteins and increased breast and ovarian cancer risk.
  • Premature termination codons (PTCs) are generated by these mutations.

Purpose of the Study:

  • To demonstrate that the aminoglycoside G418 can induce PTC readthrough in BRCA1.
  • To restore full-length BRCA1 protein expression and function in cancer cells.
  • To evaluate the clinical relevance of BRCA1 PTC readthrough.

Main Methods:

  • Treatment of HCC1395 breast tumor cells (carrying R1751X BRCA1 mutation) with G418.
  • Assessment of BRCA1 protein synthesis, homologous recombination (HR) DNA repair, and cell cycle checkpoint activation.
  • Evaluation of various BRCA1 nonsense variants in a GFP construct and functional assessment of readthrough variants.

Main Results:

  • G418 treatment restored full-length BRCA1 protein synthesis in HCC1395 cells.
  • Restored BRCA1 protein recovered HR DNA repair and cell cycle checkpoint activation.
  • BRCA1 PTC readthrough levels varied based on stop codon context, and functional assessment of readthrough variants was performed.

Conclusions:

  • G418 effectively induces BRCA1 PTC readthrough, restoring protein function.
  • This study provides proof-of-concept for using aminoglycosides to treat BRCA1-mutated cancers.
  • The findings highlight the potential of targeting PTCs for therapeutic benefit in hereditary breast and ovarian cancers.

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