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S-phase checkpoints regulate Apo2 ligand/TRAIL and CPT-11-induced apoptosis of prostate cancer cells
Subrata Ray1, Sunitha Shyam, Gail C Fraizer
1Department of Cancer Biology, Lerner Research Institute, Cleveland Clinic, Cleveland, OH, USA.
Abstract:
As S-phase checkpoints play critical roles in maintaining genomic integrity and replicating the human genome correctly, understanding the molecular mechanism by which they regulate the therapeutic response is of great interest. Previously, we reported that the cytotoxic effect of a zinc-bound form of Apo2 ligand/tumor necrosis factor-related apoptosis-inducing ligand (Apo2L/TRAIL), which is currently evaluated in clinical trials, in combination with low-dose CPT-11, induces apoptosis of C4-2 human prostate cancer cells and tissues. Here, we show that apoptosis, induced synergistically by this combination treatment, was associated with accumulation of cells in early S phase, indicated by cell cycle analyses, increased proliferating cell nuclear antigen, and Chk2-Thr(68) phosphorylation in tumors xenografted in mice. The combination treatment induced an S-phase checkpoint response through activation of Chk2 and Chk1 by the ataxia telangiectasia mutated and ataxia telangiectasia mutated and Rad3 related kinases, leading to phosphorylation and decreased Cdc25A levels. Cdc25A-dependent regulation of cyclin-dependent kinase 2 (Cdk2) and changes in association of p21(WAF1/CIP1) and hSpy1 with Cdk2 resulted in inhibition of Cdk2-associated kinase activity. Knockdown of ataxia telangiectasia mutated/Chk2 and ataxia telangiectasia mutated and Rad3 related/Chk1 by small inhibitory RNAs abrogated the S-phase checkpoint and accelerated apoptosis, resulting in caspase-3 activation and poly(ADP-ribose) polymerase 1 cleavage following combination treatment. Thus, Apo2L/TRAIL + CPT-11 treatment-induced apoptosis is regulated through an S-phase checkpoint controlled by the Chk2-Cdc25A and Chk1-Cdc25A pathways and inhibition of Cdk2-associated kinase activity. Low-dose CPT-11 and aphidicolin increased the proportion of S-phase cells and sensitized cells to Apo2L/TRAIL, by inducing phosphatidylserine externalization, caspase activation, and poly(ADP-ribose) polymerase 1 cleavage. Combinations with S-phase arrest-inducing chemotherapeutic drugs may represent promising avenues for clinical development of Apo2L/TRAIL.
Insights
Combining Apo2L/TRAIL with CPT-11 triggers an S-phase checkpoint, halting cancer cell replication and promoting apoptosis. This mechanism involves Chk2, Chk1, and Cdc25A, offering new therapeutic strategies for prostate cancer.
Area of Science:
- Molecular Biology
- Cancer Research
- Cell Cycle Regulation
Background:
- S-phase checkpoints are crucial for genomic integrity during DNA replication.
- Apo2L/TRAIL (tumor necrosis factor-related apoptosis-inducing ligand) is evaluated in clinical trials for cancer therapy.
- Previous studies showed synergistic cytotoxic effects of Apo2L/TRAIL and CPT-11 on prostate cancer cells.
Purpose of the Study:
- To elucidate the molecular mechanism of synergistic apoptosis induced by Apo2L/TRAIL and CPT-11 in prostate cancer.
- To investigate the role of S-phase checkpoints in regulating the therapeutic response to this combination treatment.
Main Methods:
- Cell cycle analysis to assess cell accumulation in S-phase.
- Western blotting to detect phosphorylation of Chk2 and Chk1, and levels of Cdc25A.
- Small inhibitory RNA (siRNA) knockdown of key checkpoint proteins (ATM/Chk2, ATR/Chk1).
- Assessment of apoptosis markers (caspase-3 activation, PARP cleavage) and Cdk2 kinase activity.
Main Results:
- The combination treatment induced S-phase arrest, evidenced by cell cycle analysis and increased PCNA.
- Activation of ATM/ATR kinases led to Chk1/Chk2 phosphorylation, resulting in Cdc25A downregulation.
- Inhibition of Cdk2-associated kinase activity was observed, mediated by Cdc25A and altered p21/hSpy1 binding.
- siRNA-mediated knockdown of ATM/Chk2 and ATR/Chk1 abrogated the S-phase checkpoint and enhanced apoptosis.
Conclusions:
- Apo2L/TRAIL and CPT-11 synergistically induce apoptosis via an S-phase checkpoint regulated by Chk2-Cdc25A and Chk1-Cdc25A pathways.
- Inhibition of Cdk2 kinase activity is a key downstream event in this apoptotic pathway.
- Combining Apo2L/TRAIL with S-phase arrest-inducing agents like CPT-11 shows promise for prostate cancer therapy.
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