Targeting CDK2 Confers Vulnerability to Lenvatinib Via Driving Senescence in Anaplastic Thyroid Cancer
Ben Ma1,2, Youzhou Sang2,3, Xiaoxue Du1,2
1Department of Head and Neck Surgery, Fudan University Shanghai Cancer Center, Shanghai, 200032, P. R. China.
Abstract:
Anaplastic thyroid cancer (ATC) is the most lethal tumor arising from thyroid follicular epithelium. Lenvatinib is an off-label use option for ATC patients in many countries but an approved prescription in Japan. However, lenvatinib resistance is a substantial clinical challenge. Clinical ATC samples including lenvatinib-resistant tumors are used to build patient-derived cells and patient-derived xenografts. High-throughput drug screening and synergy analyses are performed to identify an effective combination partner for lenvatinib. Cellular functions are detected by cell senescence, apoptosis, cell cycle, cell viability and colony formation assays. CDK2 inhibition showed the significant synthetic lethality with lenvatinib via inhibiting G1/S transition and inducing cell senescence in ATC. High expression of CDK2 is associated with lenvatinib resistance and poor clinical outcomes of ATC patients. Lenvatinib increased protein expression of CDK2 in lenvatinib-resistant ATC cells. Mechanistically, lenvatinib inhibited protein degradation of CDK2 via reducing CDK2's interaction with the RACK1-FBW7 complex, which is involved in ubiquitination and subsequent proteasomal degradation of CDK2. Combination of CDK2 inhibitors in clinical trials (Dinaciclib or PF-07104091) and lenvatinib markedly suppressed growth of xenograft tumors from the lenvatinib-resistant patient. The findings support the combination therapy strategy of lenvatinib and CDK2 inhibitor for lenvatinib-resistant ATC patients with high CDK2 expression.
Insights
Combining lenvatinib with a CDK2 inhibitor offers a new strategy for treating anaplastic thyroid cancer (ATC). This approach targets lenvatinib-resistant tumors by inhibiting CDK2, a key factor in resistance.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- Anaplastic thyroid cancer (ATC) is highly lethal, with lenvatinib resistance posing a significant clinical challenge.
- Lenvatinib is used for ATC, but effective treatment options for resistant cases are limited.
Purpose of the Study:
- To identify effective combination therapies for lenvatinib-resistant anaplastic thyroid cancer.
- To investigate the role of CDK2 in lenvatinib resistance and explore CDK2 inhibition as a therapeutic strategy.
Main Methods:
- Patient-derived cells and xenografts from ATC were established.
- High-throughput drug screening and synergy analyses were performed.
- Cellular functions (senescence, apoptosis, cell cycle, viability) were assessed; CDK2 expression and degradation pathways were analyzed.
Main Results:
- CDK2 inhibition demonstrated synthetic lethality with lenvatinib, inhibiting cell cycle transition and inducing senescence in ATC.
- High CDK2 expression correlated with lenvatinib resistance and poor patient outcomes.
- Lenvatinib increased CDK2 protein levels by disrupting its degradation via the RACK1-FBW7 complex.
- Combination therapy with lenvatinib and CDK2 inhibitors suppressed xenograft tumor growth in resistant models.
Conclusions:
- CDK2 inhibition is a promising therapeutic strategy for lenvatinib-resistant ATC.
- Combining lenvatinib with CDK2 inhibitors may overcome resistance in patients with high CDK2 expression.
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