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Neovascularization directed by CAVIN1/CCBE1/VEGFC confers TMZ-resistance in glioblastoma
Mei Wang1, Die Xia1, Daxing Xu1
1Department of Laboratory Medicine, The Affiliated Wuxi People's Hospital of Nanjing Medical University, Wuxi People's Hospital, Wuxi Medical Center, Nanjing Medical University, Wuxi 214023, China; Center of Clinical Research, The Affiliated Wuxi People's Hospital of Nanjing Medical University, Wuxi People's Hospital, Wuxi Medical Center, Nanjing Medical University, Wuxi 214023, China.
Abstract:
Acquisition of resistance to temozolomide (TMZ) poses a significant challenge in glioblastoma (GBM) therapy. Neovascularization, a pivotal process in tumorigenesis and development, remains poorly understood in its contribution to chemoresistance in GBMs. This study unveils aberrant vascular networks within TMZ-resistant (TMZ-R) GBM tissues and identifies the extracellular matrix (ECM) protein CCBE1 as a potential mediator. Through in vivo and in vitro experiments involving gain and loss of function assessments, we demonstrate that high expression of CCBE1 promotes hyper-angiogenesis and orchestrates partial endothelial-to-mesenchymal transition (EndMT) in human microvascular endothelial cells (HCMEC/d3) within GBM. This is likely driven by VEGFC/Rho signaling. Intriguingly, CCBE1 overexpression substantially fails to promote tumor growth, but endows resistance to GBM cells in a vascular endothelial cell-dependent manner. Mechanically, the constitutive phosphorylation of SP1 at Ser101 drives the upregulation of CCBE1 transcription in TMZ resistant tumors, and the excretion of CCBE1 depends on caveolae associated protein 1 (CAVIN1) binding and assembling. Tumor cells derived CCBE1 promotes VEGFC maturation, activates VEGFR2/VEGFR3/Rho signaling in vascular endothelial cells, and ultimately results in hyper-angiogenesis in TMZ-R tumors. Collectively, the current study uncovers the cellular and molecular basis of abnormal angiogenesis in a chemo resistant microenvironment, implying that curbing CCBE1 is key to reversing TMZ resistance.
Insights
Extracellular matrix protein CCBE1 drives abnormal blood vessel growth in glioblastoma, contributing to temozolomide resistance. Targeting CCBE1 may reverse chemoresistance in glioblastoma (GBM) therapy.
Area of Science:
- Oncology
- Molecular Biology
- Cell Biology
Background:
- Temozolomide (TMZ) resistance is a major hurdle in glioblastoma (GBM) treatment.
- The role of neovascularization in GBM chemoresistance is not fully understood.
- Aberrant vascular networks are observed in TMZ-resistant GBM.
Purpose of the Study:
- To investigate the role of extracellular matrix (ECM) protein CCBE1 in GBM chemoresistance.
- To elucidate the mechanisms by which CCBE1 influences angiogenesis and chemoresistance.
- To identify potential therapeutic targets for overcoming TMZ resistance in GBM.
Main Methods:
- In vivo and in vitro gain and loss of function experiments.
- Assessment of CCBE1 expression in TMZ-resistant GBM tissues.
- Analysis of VEGFC/Rho signaling pathways and endothelial-to-mesenchymal transition (EndMT).
- Investigation of SP1 phosphorylation and CAVIN1 involvement in CCBE1 regulation.
Main Results:
- High CCBE1 expression correlates with hyper-angiogenesis in TMZ-resistant GBM.
- CCBE1 promotes partial EndMT in endothelial cells via VEGFC/Rho signaling.
- CCBE1 overexpression confers TMZ resistance in a vascular endothelial cell-dependent manner.
- Constitutive SP1 phosphorylation at Ser101 upregulates CCBE1 transcription, dependent on CAVIN1.
Conclusions:
- CCBE1 is a key mediator of abnormal angiogenesis in the chemoresistant GBM microenvironment.
- CCBE1 derived from tumor cells promotes VEGFC maturation and activates VEGFR/Rho signaling.
- Targeting CCBE1 presents a promising strategy to reverse TMZ resistance in GBM.
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