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Prediction of paclitaxel sensitivity by CDK1 and CDK2 activity in human breast cancer cells
Satoshi Nakayama1, Yasuhiro Torikoshi, Takeshi Takahashi
1Central Research Laboratories, Sysmex Corporation, 4-4-4, Takatsukadai, Nishi-ku, Kobe, Japan. Nakayama.Satoshi@sysmex.co.jp
Introduction:
Paclitaxel is used widely in the treatment of breast cancer. Not all tumors respond to this drug, however, and the characteristics that distinguish resistant tumors from sensitive tumors are not well defined. Activation of the spindle assembly checkpoint is required for paclitaxel-induced cell death. We hypothesized that cyclin-dependent kinase (CDK) 1 activity and CDK2 activity in cancer cells, which reflect the activation state of the spindle assembly checkpoint and the growth state, respectively, predict sensitivity to paclitaxel.
Methods:
Cell viability assays and DNA and chromatin morphology analyses were performed in human breast cancer cell lines to evaluate sensitivity to paclitaxel and the cell cycle response to paclitaxel. We then examined the specific activities of CDK1 and CDK2 in these cell lines and in xenograft models of human breast cancer before and after paclitaxel treatment. Protein expression and kinase activity of CDKs and cyclins were analyzed using a newly developed assay system.
Results:
In the cell lines, biological response to paclitaxel in vitro did not accurately predict sensitivity to paclitaxel in vivo. Among the breast cancer xenograft tumors, however, tumors with significantly increased CDK1 specific activity after paclitaxel treatment were sensitive to paclitaxel in vivo, whereas tumors without such an increase were resistant to paclitaxel in vivo. Baseline CDK2 specific activity was higher in tumors that were sensitive to paclitaxel than in tumors that were resistant to paclitaxel.
Conclusions:
The change in CDK1 specific activity of xenograft tumors after paclitaxel treatment and the CDK2 specific activity before paclitaxel treatment are both associated with the drug sensitivity in vivo. Analysis of cyclin-dependent kinase activity in the clinical setting could be a powerful approach for predicting paclitaxel sensitivity.
Insights
Cyclin-dependent kinase (CDK) 1 and CDK2 activity predict paclitaxel sensitivity in breast cancer. Increased CDK1 activity after treatment and higher baseline CDK2 activity indicate sensitivity, aiding clinical prediction.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Paclitaxel is a key breast cancer treatment, but tumor resistance limits efficacy.
- Predicting paclitaxel response remains a challenge.
- Spindle assembly checkpoint activation is crucial for paclitaxel's cell death induction.
Purpose of the Study:
- To investigate if cyclin-dependent kinase (CDK) 1 and CDK2 activity predict paclitaxel sensitivity in breast cancer.
- To correlate CDK activity with the spindle assembly checkpoint and cell growth states.
Main Methods:
- Evaluated paclitaxel sensitivity and cell cycle response in human breast cancer cell lines and xenografts.
- Measured specific activities of CDK1 and CDK2 before and after paclitaxel treatment.
- Analyzed protein expression and kinase activity of CDKs and cyclins using a novel assay.
Main Results:
- In vitro cell line response did not predict in vivo sensitivity.
- Increased CDK1 specific activity post-paclitaxel treatment correlated with in vivo sensitivity in xenografts.
- Higher baseline CDK2 specific activity was observed in paclitaxel-sensitive tumors.
Conclusions:
- Changes in CDK1 activity after paclitaxel treatment and baseline CDK2 activity predict in vivo drug sensitivity.
- Measuring cyclin-dependent kinase activity could offer a powerful clinical tool for predicting paclitaxel response.
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