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Updated: May 3, 2026

Real-Time Monitoring of Aurora kinase A Activation using Conformational FRET Biosensors in Live Cells
Published on: July 30, 2020
Targeting Aurora kinase-A downregulates cell proliferation and angiogenesis in neuroblastoma
Carmelle Romain1, Pritha Paul2, Kwang Woon Kim1
1Department of Pediatric Surgery, Vanderbilt University Medical Center, Nashville TN.
Purpose:
Aurora kinase A (AURKA) overexpression is associated with poor prognosis in neuroblastoma and has been described to upregulate VEGF in gastric cancer cells. However, the exact role of AURKA in the regulation of neuroblastoma tumorigenesis remains unknown. We hypothesize that AURKA-mediated stabilization of N-Myc may affect VEGF expression and angiogenesis in neuroblastoma. Therefore, we sought to determine whether inhibition of AURKA modulates neuroblastoma angiogenesis.
Methods:
Cell viability and anchorage-independent growth were determined after silencing AURKA or after treatment with MLN8237, AURKA inhibitor. Immunofluorescence was used to determine N-Myc localization. Human umbilical vein endothelial cells (HUVECs) were used to assess angiogenesis in vitro. Real time-PCR and ELISA were performed to determine VEGF transcription and secretion, respectively.
Results:
Knockdown of AURKA significantly reduced cell proliferation and inhibited anchorage-independent growth. It also decreased N-Myc protein levels and nuclear localization. AURKA inhibition also decreased HUVECs tubule formation along with VEGF transcription and secretion. Similarly, MLN8237 treatment decreased neuroblastoma tumorigenicity in vitro.
Conclusions:
Our findings demonstrate that AURKA plays a critical role in neuroblastoma angiogenesis. AURKA regulates nuclear translocation of N-Myc in neuroblastoma cells, thus potentially affecting cell proliferation, anchorage-independent cell growth, and angiogenesis. Targeting AURKA might provide a novel therapeutic strategy in treating aggressive neuroblastomas.
Insights
Aurora kinase A (AURKA) inhibition reduces neuroblastoma growth and angiogenesis by decreasing N-Myc stabilization and VEGF expression. Targeting AURKA offers a potential therapeutic strategy for aggressive neuroblastomas.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Research
Background:
- Aurora kinase A (AURKA) overexpression correlates with poor prognosis in neuroblastoma.
- AURKA's role in neuroblastoma tumorigenesis and angiogenesis is not fully understood.
- VEGF upregulation by AURKA in gastric cancer suggests a potential link to angiogenesis.
Purpose of the Study:
- To investigate the role of AURKA in neuroblastoma angiogenesis.
- To determine if AURKA inhibition modulates neuroblastoma angiogenesis.
- To test the hypothesis that AURKA-mediated N-Myc stabilization affects VEGF expression and angiogenesis.
Main Methods:
- Silencing AURKA or using MLN8237 (AURKA inhibitor) to assess effects on cell viability and anchorage-independent growth.
- Immunofluorescence to analyze N-Myc protein localization.
- In vitro angiogenesis assays using human umbilical vein endothelial cells (HUVECs).
- Real-time PCR and ELISA to quantify VEGF transcription and secretion.
Main Results:
- AURKA knockdown significantly reduced neuroblastoma cell proliferation and anchorage-independent growth.
- AURKA inhibition decreased N-Myc protein levels and its nuclear localization.
- Inhibition of AURKA reduced HUVECs tubule formation, VEGF transcription, and secretion.
- MLN8237 treatment decreased overall neuroblastoma tumorigenicity in vitro.
Conclusions:
- AURKA plays a critical role in regulating neuroblastoma angiogenesis.
- AURKA influences neuroblastoma cell proliferation, growth, and angiogenesis via N-Myc nuclear translocation.
- Targeting AURKA presents a promising therapeutic strategy for aggressive neuroblastomas.
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