O6-methylguanine-induced transcriptional mutagenesis reduces p53 tumor-suppressor function

Monika Ezerskyte1, João A Paredes1, Stefano Malvezzi1

  • 1Unit of Biochemical Toxicology, Institute of Environmental Medicine, Karolinska Institutet, SE-171 77 Stockholm, Sweden.

Insights

Transcriptional mutagenesis (TM) caused by DNA damage, like O6-methylguanine, can alter tumor suppressor protein p53 function. This disruption impairs cell death and cell-cycle arrest, contributing to cancer development.

Area of Science:

  • Molecular Biology
  • Cancer Research
  • Genetics

Background:

  • Mutagenesis altering protein function is key in diseases like cancer.
  • The role of transcriptional mutagenesis (TM) in disease development is not fully understood.
  • O6-methylguanine is a mutagenic lesion that can affect DNA and protein function.

Purpose of the Study:

  • To investigate the impact of O6-methylguanine on p53 transcriptional fidelity and function.
  • To determine how TM affects p53's role in regulating cell death and cell-cycle arrest.
  • To assess the contribution of TM to tumorigenesis.

Main Methods:

  • Human cells were used to study the effects of O6-methylguanine.
  • RNA-sequencing was employed to quantify levels of TM.
  • The transactivation of p53 target genes and cell-cycle checkpoint functions were analyzed.

Main Results:

  • TM increased from 0.14% to 14.7% when DNA repair was compromised.
  • Expression of a dominant-negative p53 mutant (R248W) due to TM reduced transactivation of CDKN1A (p21) and BBC3 (PUMA).
  • This led to deregulated retinoblastoma protein signaling, loss of G1/S cell-cycle arrest, and impaired apoptosis.

Conclusions:

  • Transcriptional mutagenesis can induce phenotypic changes in mammalian cells.
  • TM can impair the tumor-suppressor functions of p53.
  • These findings highlight the significant role of TM in tumorigenesis.

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