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ZSTK474 targeting PIK3R3 inhibits the Wilms' tumor through G0 / G1 phase arrest
Maoxian Li1,2, Jiayan Liu1, Liming Jin1
1Department of Urology, National Clinical Research Center for Child Health and Disorders, Ministry of Education Key Laboratory of Child Development and Disorders, Chongqing Key Laboratory of Pediatrics, International Science and Technology Cooperation Base of Child Development and Critical Disorders, Children's Hospital of Chongqing Medical University, Chongqing, P.R China.
Purpose:
Wilms' tumor (WT), also known as nephroblastoma, is the predominant form of primary malignant renal cancer. The unfavorable prognoses linked to anaplastic nephroblastoma and recurrent nephroblastoma emphasize the crucial requirement for the exploration of innovative treatment modalities for WT.
Methods:
Our study conducted one-way Cox regression and Kaplan-Meier analyses using TARGET-WT nephroblastoma data to identify differentially expressed genes in nephroblastoma and evaluate their prognostic relevance. Utilizing the Connectivity Map database, ZSTK474 emerged as a viable therapeutic option for WT. The effect of ZSTK474 on WT and related underlying mechanisms were further investigated through in vitro and in vivo investigations.
Results:
The in vivo experiment results indicated that ZSTK474 effectively inhibited subcutaneous tumor growth in WT mice. CCK-8 assays revealed two nephroblastoma cell lines exhibited half-inhibitory concentrations of 2μM and 2.51μM for ZSTK474, respectively. ZSTK474 was shown to inhibit the migration and invasion capabilities of WT cells in both Transwell and wound healing assays. Flow cytometry apoptosis and TUNEL assays demonstrated that ZSTK474 induced apoptosis in WT cells. Cell cycle analysis revealed that ZSTK474 led to the induction of G0/G1 phase arrest. Sequencing of ZSTK474-treated WiT49 cells suggested that the impact of ZSTK474 on WT might be mediated by the PI3K/Akt pathway, specifically by inhibiting PIK3R3. Knock-down of PIK3R3 confirmed that ZSTK474 downregulated PIK3R3, reducing Akt phosphorylation, cyclin D and CDK4 levels and elevating P21 expression in nephroblastoma cells. However, current research has limitations, including a lack of understanding of the long-term effects and potential resistance mechanisms of new therapies.
Conclusion:
This research provides insight into the potential of ZSTK474 and other PI3K inhibitors for treating nephroblastoma.
Insights
ZSTK474 effectively inhibits Wilms' tumor (nephroblastoma) growth and induces apoptosis by targeting the PI3K/Akt pathway. This study highlights ZSTK474 as a promising therapeutic agent for nephroblastoma treatment.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Wilms' tumor (nephroblastoma) is the most common primary kidney cancer in children.
- Anaplastic and recurrent Wilms' tumor have poor prognoses, necessitating novel therapeutic strategies.
Purpose of the Study:
- To identify novel therapeutic targets for Wilms' tumor (nephroblastoma).
- To evaluate the efficacy and mechanism of ZSTK474 as a potential treatment for Wilms' tumor.
Main Methods:
- Cox regression and Kaplan-Meier analyses were used on TARGET-WT data.
- In vitro and in vivo studies investigated ZSTK474's effects on Wilms' tumor cells and xenografts.
- Connectivity Map database identified ZSTK474 as a potential therapeutic agent.
Main Results:
- ZSTK474 significantly inhibited Wilms' tumor growth in vivo and in vitro.
- ZSTK474 induced apoptosis and G0/G1 phase arrest in Wilms' tumor cells.
- The drug's mechanism involves inhibiting PIK3R3, downregulating the PI3K/Akt pathway, and affecting cell cycle regulators.
Conclusions:
- ZSTK474 demonstrates significant anti-tumor activity against Wilms' tumor.
- This study supports the potential of ZSTK474 and PI3K inhibitors for nephroblastoma treatment.
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