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Published on: November 5, 2012
A novel mechanism of checkpoint abrogation conferred by Chk1 downregulation
Zhan Xiao1, John Xue, Thomas J Sowin
1Cancer Research, Abbott Laboratories, 100 Abbott Park Rd., Abbott Park, IL 60064-6101, USA.
Abstract:
Chk1 is the major mediator in the activation of cell-cycle checkpoints in response to a variety of genotoxic stresses. We have previously shown that inhibition of Chk1 sensitizes tumor cells to topoisomerase inhibitors such as camptothecin and doxorubicin through abrogation of cell-cycle arrest (S or G2/M checkpoints). However, it was not clear whether inhibition of Chk1 could potentiate antimetabolites, a mainstay of cancer therapy, which confer genotoxic stress through a different mechanism than topoisomerase inhibitors. 5-Fluorouracil (5-FU) is the most widely used antimetabolite in the treatment of colorectal, breast and other major types of cancers. Here we demonstrate that 5-FU activates Chk1 and induces an early S-phase arrest. Chk1 downregulation abrogates this arrest and dramatically sensitizes tumor cells to the cytotoxic effects of 5-FU. 5-FU confers S-phase arrest through Chk1-mediated Cdc25A proteolysis leading to inhibition of Cdk2. Chk1 elimination stabilizes the Cdc25A protein and results in the abrogation of the S checkpoint and resumption of DNA synthesis, which leads to excessive accumulation of double-stranded DNA breaks. As a result, downregulation of Chk1 potentiates 5-FU efficacy through induction of premature chromosomal condensation followed by apoptosis. Interestingly, the profiles of various cell-cycle markers indicate that cells progress to early M phase to induce apoptosis after checkpoint abrogation. Yet, cells fail to increase their DNA content to 4N as revealed by FACS analysis, probably due to the dramatic induction of double-stranded DNA breaks and chromosomal fragmentation. This is significantly different from the cell-cycle profiles observed in the potentiation of topoisomerase inhibitors by Chk1 siRNA, which showed mitotic progression with 4N DNA content leading to mitotic catastrophe after abrogation of the S or G2 checkpoint. Thus, our results illustrate a novel mode of checkpoint abrogation and cell death conferred by Chk1 inhibition. Additionally, we show that Chk1 deficiency potentiates 5-FU efficacy through the preferential induction of the caspase-8 pathway and subsequent caspase-3 activation. In conclusion, we have clearly demonstrated that inhibition of Chk1 not only potentiates the toxicity of conventional DNA-damaging agents such as ionizing radiation and topoisomerase inhibitors, but also enhances the toxicity of antimetabolites in cancer cell lines. This discovery reveals novel scope of checkpoint abrogation and will significantly broaden the potential application of Chk1 inhibitors in cancer therapy if they do not potentiate the toxicity of 5-FU in normal cells.
Insights
Inhibiting Chk1 kinase sensitizes cancer cells to 5-Fluorouracil (5-FU) by abrogating cell-cycle arrest, leading to increased DNA damage and apoptosis. This reveals a new strategy for enhancing antimetabolite cancer therapy.
Area of Science:
- Cellular biology
- Cancer research
- Molecular oncology
Background:
- Chk1 kinase is crucial for cell-cycle checkpoints responding to DNA damage.
- Previous studies showed Chk1 inhibition potentiates topoisomerase inhibitors.
- The effect of Chk1 inhibition on antimetabolites like 5-FU was unclear.
Purpose of the Study:
- To investigate if Chk1 inhibition potentiates the efficacy of 5-Fluorouracil (5-FU).
- To elucidate the mechanism by which Chk1 downregulation affects 5-FU-induced cell-cycle arrest and cytotoxicity.
- To explore the potential of Chk1 inhibitors in combination cancer therapy.
Main Methods:
- Utilized Chk1 downregulation (e.g., siRNA) in cancer cell lines.
- Administered 5-Fluorouracil (5-FU) to assess cytotoxicity and cell-cycle effects.
- Analyzed cell-cycle progression, DNA damage, apoptosis markers, and specific signaling pathways (e.g., caspase activation).
Main Results:
- 5-FU activates Chk1 and induces an S-phase arrest.
- Chk1 downregulation abrogates 5-FU-induced S-phase arrest, sensitizing cells to 5-FU.
- This potentiation occurs via stabilization of Cdc25A, leading to excessive DNA breaks, premature chromosomal condensation, and apoptosis through the caspase-8/caspase-3 pathway.
- This mechanism differs from Chk1 inhibition with topoisomerase inhibitors.
Conclusions:
- Chk1 inhibition potentiates the efficacy of the antimetabolite 5-FU by inducing a novel mode of checkpoint abrogation and cell death.
- This finding broadens the potential application of Chk1 inhibitors in combination cancer therapy.
- Further investigation is needed to ensure safety in normal cells.
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