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Published on: July 25, 2020
AKT1 as a therapeutic target for platinum-resistant SOX2 positive ovarian cancer cells
Mengyang Xue1,2, Li Kang3, Yunfeng Zhang3
1The Third School of Clinical Medicine, Southern Medical University, Guangzhou, 510515, China.
Abstract:
Ovarian cancer remains the most lethal gynecological malignancy, largely owing to its chemotherapy resistance and high recurrence rate. Emerging evidence has linked the aberrant expression of SOX2, a transcription factor that is important in the development and maintenance of stem cell state, with chemoresistance and poor prognosis of ovarian cancer patients. In this study, we aimed to elucidate the mechanisms that drive aberrant SOX2 expression in ovarian cancer cells. By examining multiple ovarian cancer cell lines and a panel of clinical tumor samples, we observed a broad overexpression of SOX2 in ovarian cancer cell lines and tumors. To identify signaling pathway(s) that drives SOX2 overexpression in ovarian cancer cells, we screened a set of small-molecule kinase inhibitors that target 30 major cellular kinases. Among the top hits identified are AKT inhibitors. We demonstrated that inhibition or knockdown of AKT1 can drastically downregulate SOX2 protein level, impairs the growth and stemness of SOX2-positive ovarian cancer cells, and markedly sensitize SOX2-positive ovarian cancer cells to platinum drugs. Mechanically, we found that AKT1 drives SOX2 overexpression primarily by enhancing its protein stability and does so by phosphorylating SOX2 at threonine 116. Altogether, our study reveals an underlying mechanism that drives SOX2 overexpression in ovarian cancer and underscores pharmacological inhibition of AKT1 as a potential therapeutic strategy to sensitize SOX2-positive ovarian cancer to platinum drugs.
Insights
Aberrant SOX2 expression drives ovarian cancer chemoresistance. Inhibiting AKT1 kinase reduces SOX2 levels, impairs cancer growth, and sensitizes tumors to platinum drugs, offering a new therapeutic strategy.
Area of Science:
- Gynecological Oncology
- Cancer Stem Cells
- Molecular Oncology
Background:
- Ovarian cancer is a lethal malignancy with high recurrence and chemotherapy resistance.
- SOX2, a stem cell factor, is linked to poor prognosis and chemoresistance in ovarian cancer patients.
- Mechanisms driving SOX2 overexpression in ovarian cancer require elucidation.
Purpose of the Study:
- To investigate the signaling pathways responsible for aberrant SOX2 overexpression in ovarian cancer.
- To explore the therapeutic potential of targeting these pathways.
Main Methods:
- Screening of small-molecule kinase inhibitors across ovarian cancer cell lines and clinical tumor samples.
- Assessing the impact of AKT1 inhibition/knockdown on SOX2 levels, cell growth, stemness, and platinum drug sensitivity.
- Investigating the molecular mechanism of AKT1-mediated SOX2 regulation, including phosphorylation at threonine 116.
Main Results:
- SOX2 was broadly overexpressed in ovarian cancer cell lines and tumors.
- AKT inhibitors were identified as key regulators of SOX2 expression.
- AKT1 inhibition/knockdown reduced SOX2 protein, impaired cancer cell growth and stemness, and sensitized cells to platinum drugs.
- AKT1 enhances SOX2 protein stability via phosphorylation at threonine 116.
Conclusions:
- Aberrant SOX2 overexpression in ovarian cancer is driven by AKT1 signaling, primarily through enhanced protein stability.
- Pharmacological inhibition of AKT1 represents a promising therapeutic strategy to overcome platinum drug resistance in SOX2-positive ovarian cancers.
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