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Published on: January 7, 2019
Ciclopirox activates ATR-Chk1 signaling pathway leading to Cdc25A protein degradation
Tao Shen1,2, Hongyu Zhou1, Chaowei Shang1,2
1Department of Biochemistry and Molecular Biology, Louisiana State University Health Sciences Center, Shreveport, LA, USA.
Abstract:
Ciclopirox olamine (CPX), an off-patent anti-fungal drug, has been found to inhibit the G1-cyclin dependent kinases partly by increasing the phosphorylation and degradation of Cdc25A. However, little is known about the molecular target(s) of CPX responsible for Cdc25A degradation. Here, we show that CPX induced the degradation of Cdc25A neither by increasing CK1α or decreasing DUB3 expression, nor via activating GSK3β, but through activating Chk1 in rhabdomyosarcoma (Rh30) and breast carcinoma (MDA-MB-231) cells. This is strongly supported by the findings that inhibition of Chk1 with TCS2312 or knockdown of Chk1 profoundly attenuated CPX-induced Cdc25A degradation in the cells. Furthermore, we observed that CPX caused DNA damage, which was independent of reactive oxygen species (ROS) induction, but related to iron chelation. CPX treatment resulted in the activation of ataxia telangiectasia mutated (ATM) and ATM-and RAD3-related (ATR) kinases. Treatment with Ku55933 (a selective ATM inhibitor) failed to prevent CPX-induced Chk1 phosphorylation and Cdc25A degradation. In contrast, knockdown of ATR conferred high resistance to CPX-induced Chk1 phosphorylation and Cdc25A degradation. Therefore, the results suggest that CPX-induced degradation of Cdc25A is attributed to the activation of ATR-Chk1 signaling pathway, a consequence of iron chelation-induced DNA damage.
Insights
Ciclopirox olamine (CPX) triggers cancer cell death by promoting Cdc25A protein degradation. This occurs via the ATR-Chk1 pathway, initiated by iron chelation-induced DNA damage, not reactive oxygen species.
Area of Science:
- Molecular Biology
- Cell Biology
- Cancer Research
Background:
- Ciclopirox olamine (CPX), an antifungal, inhibits G1-cyclin dependent kinases.
- CPX increases phosphorylation and degradation of Cdc25A, but its molecular targets remain unclear.
Purpose of the Study:
- To elucidate the molecular mechanism by which CPX induces Cdc25A degradation.
- To identify the signaling pathway responsible for CPX-mediated Cdc25A degradation in cancer cells.
Main Methods:
- Utilized rhabdomyosarcoma (Rh30) and breast carcinoma (MDA-MB-231) cell lines.
- Investigated CPX effects on Cdc25A degradation, Chk1 activation, DNA damage, and kinase signaling (ATM, ATR).
- Employed chemical inhibitors (TCS2312, Ku55933) and gene knockdown techniques.
Main Results:
- CPX induced Cdc25A degradation via Chk1 activation, independent of CK1α, DUB3, or GSK3β.
- CPX caused DNA damage through iron chelation, not ROS induction.
- ATR kinase activation, not ATM, was crucial for CPX-induced Chk1 phosphorylation and Cdc25A degradation.
Conclusions:
- CPX-induced Cdc25A degradation is mediated by the ATR-Chk1 signaling pathway.
- This pathway activation results from iron chelation leading to DNA damage.
- Findings reveal a novel mechanism for CPX's anti-cancer activity.
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