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VEGFR2 blockade inhibits glioblastoma cell proliferation by enhancing mitochondrial biogenesis
Min Guo1, Junhao Zhang2,3, Jiang Han4
1Department of Radiology, Beijing Tiantan Hospital, Capital Medical University, Beijing, China. guomin04@126.com.
Background:
Glioblastoma is an aggressive brain tumor linked to significant angiogenesis and poor prognosis. Anti-angiogenic therapies with vascular endothelial growth factor receptor 2 (VEGFR2) inhibition have been investigated as an alternative glioblastoma treatment. However, little is known about the effect of VEGFR2 blockade on glioblastoma cells per se.
Methods:
VEGFR2 expression data in glioma patients were retrieved from the public database TCGA. VEGFR2 intervention was implemented by using its selective inhibitor Ki8751 or shRNA. Mitochondrial biogenesis of glioblastoma cells was assessed by immunofluorescence imaging, mass spectrometry, and western blot analysis.
Results:
VEGFR2 expression was higher in glioma patients with higher malignancy (grade III and IV). VEGFR2 inhibition hampered glioblastoma cell proliferation and induced cell apoptosis. Mass spectrometry and immunofluorescence imaging showed that the anti-glioblastoma effects of VEGFR2 blockade involved mitochondrial biogenesis, as evidenced by the increases of mitochondrial protein expression, mitochondria mass, mitochondrial oxidative phosphorylation (OXPHOS), and reactive oxygen species (ROS) production, all of which play important roles in tumor cell apoptosis, growth inhibition, cell cycle arrest and cell senescence. Furthermore, VEGFR2 inhibition exaggerated mitochondrial biogenesis by decreased phosphorylation of AKT and peroxisome proliferator-activated receptor gamma coactivator 1-alpha (PGC1α), which mobilized PGC1α into the nucleus, increased mitochondrial transcription factor A (TFAM) expression, and subsequently enhanced mitochondrial biogenesis.
Conclusions:
VEGFR2 blockade inhibits glioblastoma progression via AKT-PGC1α-TFAM-mitochondria biogenesis signaling cascade, suggesting that VEGFR2 intervention might bring additive therapeutic values to anti-glioblastoma therapy.
Insights
Targeting vascular endothelial growth factor receptor 2 (VEGFR2) in glioblastoma halts tumor growth and induces apoptosis. This occurs through enhanced mitochondrial biogenesis via the AKT-PGC1α-TFAM pathway, suggesting VEGFR2 blockade as a potential glioblastoma therapy.
Area of Science:
- Oncology
- Molecular Biology
- Cell Biology
Background:
- Glioblastoma is an aggressive brain tumor characterized by extensive angiogenesis and poor patient outcomes.
- Anti-angiogenic therapies targeting vascular endothelial growth factor receptor 2 (VEGFR2) are explored for glioblastoma treatment.
- The direct impact of VEGFR2 blockade on glioblastoma cells remains largely uncharacterized.
Purpose of the Study:
- To investigate the effects of VEGFR2 inhibition on glioblastoma cell proliferation and apoptosis.
- To elucidate the underlying molecular mechanisms, particularly the role of mitochondrial biogenesis, in VEGFR2-mediated anti-glioblastoma effects.
Main Methods:
- Retrieved VEGFR2 expression data from The Cancer Genome Atlas (TCGA) for glioma patients.
- Utilized a selective VEGFR2 inhibitor (Ki8751) and short hairpin RNA (shRNA) for VEGFR2 intervention.
- Assessed mitochondrial biogenesis in glioblastoma cells using immunofluorescence imaging, mass spectrometry, and western blot analysis.
Main Results:
- Elevated VEGFR2 expression correlated with higher glioma malignancy (grades III and IV).
- VEGFR2 inhibition significantly reduced glioblastoma cell proliferation and induced apoptosis.
- VEGFR2 blockade promoted mitochondrial biogenesis, evidenced by increased mitochondrial mass, oxidative phosphorylation (OXPHOS), and reactive oxygen species (ROS) production.
- VEGFR2 inhibition downregulated AKT and PGC1α phosphorylation, leading to PGC1α nuclear translocation, increased TFAM expression, and subsequent enhancement of mitochondrial biogenesis.
Conclusions:
- VEGFR2 blockade effectively inhibits glioblastoma progression through the AKT-PGC1α-TFAM-mediated mitochondrial biogenesis pathway.
- VEGFR2 intervention demonstrates potential as an additive therapeutic strategy for glioblastoma treatment.
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