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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.
Abstract:
DNA replication stress (DRS) is a predominant cause of genome instability, a driver of tumorigenesis and malignant progression. Nucleoside analogue-type chemotherapeutic drugs introduce DNA damage and exacerbate DRS in tumor cells. However, the mechanisms underlying the antitumor effect of these drugs are not fully understood. Here, we show that the fluorinated thymidine analogue trifluridine (FTD), an active component of the chemotherapeutic drug trifluridine/tipiracil, delayed DNA synthesis by human replicative DNA polymerases by acting both as an inefficient deoxyribonucleotide triphosphate source (FTD triphosphate) and as an obstacle base (trifluorothymine) in the template DNA strand, which caused DRS. In cells, FTD decreased the thymidine triphosphate level in the dNTP pool and increased the FTD triphosphate level, resulting in the activation of DRS-induced cellular responses during S-phase. In addition, replication protein A-coated single-stranded DNA associated with FancD2 and accumulated after tumor cells completed S-phase. Finally, FTD activated the p53-p21 pathway and suppressed tumor cell growth by inducing cellular senescence via mitosis skipping. In contrast, tumor cells that lost wild-type p53 underwent apoptotic cell death via aberrant late mitosis with severely impaired separation of sister chromatids. These results demonstrate that DRS induced by a nucleoside analogue-type chemotherapeutic drug suppresses tumor growth irrespective of p53 status by directing tumor cell fate toward cellular senescence or apoptotic cell death according to p53 status. IMPLICATIONS: Chemotherapeutic drugs that increase DRS during S-phase but allow tumor cells to complete S-phase may have significant antitumor activity even when functional p53 is lost.
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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