DNA Replication Stress Induced by Trifluridine Determines Tumor Cell Fate According to p53 Status

Yuki Kataoka1,2, Makoto Iimori1, Ryo Fujisawa3

  • 1Department of Molecular Cancer Biology, Graduate School of Pharmaceutical Sciences, Kyushu University, Fukuoka, Japan.

Insights

Trifluridine (FTD), a chemotherapy drug, causes DNA replication stress (DRS) by interfering with DNA synthesis. This stress leads to tumor cell death via senescence or apoptosis, regardless of p53 status, offering a new therapeutic strategy.

Area of Science:

  • Oncology
  • Molecular Biology
  • Genetics

Background:

  • DNA replication stress (DRS) is a key factor in cancer development and progression.
  • Nucleoside analogue chemotherapies induce DNA damage and DRS, but their precise antitumor mechanisms remain unclear.

Purpose of the Study:

  • To elucidate the mechanisms by which the fluorinated thymidine analogue trifluridine (FTD) induces DRS and exerts antitumor effects.
  • To investigate the role of FTD in DNA synthesis, dNTP pool balance, and cellular responses in tumor cells.

Main Methods:

  • Investigated FTD's effects on human replicative DNA polymerases and DNA synthesis.
  • Analyzed intracellular dNTP pools and FTD triphosphate levels.
  • Assessed FTD-induced DNA replication stress responses, including RPA-coated ssDNA and FancD2 association.
  • Examined the activation of the p53-p21 pathway and downstream effects on tumor cell fate (senescence or apoptosis).

Main Results:

  • FTD acts as both an inefficient dNTP source and a template obstacle, causing DRS by delaying DNA synthesis.
  • FTD treatment altered the dNTP pool, increasing FTD triphosphate and decreasing thymidine triphosphate.
  • FTD induced S-phase specific cellular responses, including RPA-coated ssDNA accumulation and FancD2 association.
  • FTD activated the p53-p21 pathway, leading to senescence via mitosis skipping in p53-proficient cells.
  • p53-deficient cells underwent apoptosis due to aberrant mitosis and impaired sister chromatid separation.

Conclusions:

  • FTD-induced DRS suppresses tumor growth by directing cell fate towards senescence or apoptosis, irrespective of p53 status.
  • Chemotherapeutic drugs that induce DRS during S-phase but permit S-phase completion hold significant antitumor potential, even in the absence of functional p53.

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