AURKA inhibition induces Ewing's sarcoma apoptosis and ferroptosis through NPM1/YAP1 axis
Huimou Chen1, Jing Hu2,3, Xilin Xiong4
1Department of Oncology, Sun Yat-sen Memorial Hospital of Sun Yat-sen University, Guangzhou, China.
Abstract:
Ewing's sarcoma (ES) is a rare and highly aggressive malignant tumor arising from bone and soft tissue. Suffering from intractable or recurrent diseases, the patients' therapy options are very limited. It is extremely urgent to identify novel potential therapeutic targets for ES and put them into use in clinical settings. In the present study, high-throughput screening of a small molecular pharmacy library was performed. The killing effect of the Aurora kinase A (AURKA) inhibitor TCS7010 in ES cells was identified, and AURKA was selected as the research object for further study. Disparate suppressants were adopted to study the cell death manner of TCS7010. TCS7010 and RNA silencing were used to evaluate the functions of AURKA in the apoptosis and ferroptosis of ES cells. Co-immunoprecipitation assay was used to investigate the correlation of AURKA and nucleophosmin1 (NPM1) in ES. Nude-mice transplanted tumor model was used for investigating the role of AURKA in ES in vivo. Investigations into the protein activities of AURKA were conducted using ES cell lines and xenograft models. AURKA was found to be prominently upregulated in ES. The AURKA expression level was remarkably connected to ES patients' shorter overall survival (OS) and event-free survival (EFS). Furthermore, AURKA inhibition markedly induced the apoptosis and ferroptosis of ES cells and attenuated tumorigenesis in vivo. On the part of potential mechanisms, it was found that AURKA inhibition triggered the apoptosis and ferroptosis of ES cells through the NPM1/Yes1 associated transcriptional regulator (YAP1) axis, which provides new insights into the tumorigenesis of ES. AURKA may be a prospective target for clinical intervention in ES patients.
Insights
Aurora kinase A (AURKA) inhibition shows promise for treating Ewing sarcoma (ES). Targeting AURKA induces cancer cell death and reduces tumor growth, offering a potential new therapy for this aggressive cancer.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Therapeutics
Background:
- Ewing sarcoma (ES) is a rare, aggressive bone and soft tissue cancer with limited treatment options for recurrent or intractable cases.
- There is an urgent need for novel therapeutic targets to improve outcomes for ES patients.
Purpose of the Study:
- To identify novel therapeutic targets for Ewing sarcoma (ES).
- To investigate the role of Aurora kinase A (AURKA) in ES pathogenesis and its potential as a therapeutic target.
Main Methods:
- High-throughput screening identified the AURKA inhibitor TCS7010 for its efficacy against ES cells.
- Experiments involved cell death assays, RNA silencing, co-immunoprecipitation, and a nude-mouse xenograft model to assess AURKA function.
- Investigated the correlation between AURKA, nucleophosmin1 (NPM1), and Yes1 associated transcriptional regulator (YAP1) in ES.
Main Results:
- AURKA is significantly upregulated in ES and its expression correlates with poorer overall survival (OS) and event-free survival (EFS).
- Inhibition of AURKA by TCS7010 or RNA silencing induced apoptosis and ferroptosis in ES cells.
- AURKA inhibition attenuated tumor growth in vivo and was linked to the NPM1/YAP1 axis.
Conclusions:
- AURKA is a promising therapeutic target for Ewing sarcoma.
- Inhibiting AURKA induces cancer cell death via apoptosis and ferroptosis, potentially through the NPM1/YAP1 pathway.
- Targeting AURKA offers a potential new clinical strategy for managing ES.
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