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MiR-181b modulates EGFR-dependent VCAM-1 expression and monocyte adhesion in glioblastoma
1Graduate Institute of Basic Medical Science, China Medical University, Taichung, Taiwan.
Abstract:
Tumor-associated macrophages (TAMs) originate as circulating monocytes, and are recruited to gliomas, where they facilitate tumor growth and migration. Understanding the interaction between TAM and cancer cells may identify therapeutic targets for glioblastoma multiforme (GBM). Vascular cell adhesion molecule-1 (VCAM-1) is a cytokine-induced adhesion molecule expressed on the surface of cancer cells, which is involved in interactions with immune cells. Analysis of the glioma patient database and tissue immunohistochemistry showed that VCAM-1 expression correlated with the clinico-pathological grade of gliomas. Here, we found that VCAM-1 expression correlated positively with monocyte adhesion to GBM, and knockdown of VCAM-1 abolished the enhancement of monocyte adhesion. Importantly, upregulation of VCAM-1 is dependent on epidermal-growth-factor-receptor (EGFR) expression, and inhibition of EGFR effectively reduced VCAM-1 expression and monocyte adhesion activity. Moreover, GBM possessing higher EGFR levels (U251 cells) had higher VCAM-1 levels compared to GBMs with lower levels of EGFR (GL261 cells). Using two- and three-dimensional cultures, we found that monocyte adhesion to GBM occurs via integrin α4β1, which promotes tumor growth and invasion activity. Increased proliferation and tumor necrosis factor-α and IFN-γ levels were also observed in the adherent monocytes. Using a genetic modification approach, we demonstrated that VCAM-1 expression and monocyte adhesion were regulated by the miR-181 family, and lower levels of miR-181b correlated with high-grade glioma patients. Our results also demonstrated that miR-181b/protein phosphatase 2A-modulated SP-1 de-phosphorylation, which mediated the EGFR-dependent VCAM-1 expression and monocyte adhesion to GBM. We also found that the EGFR-dependent VCAM-1 expression is mediated by the p38/STAT3 signaling pathway. Our study suggested that VCAM-1 is a critical modulator of EGFR-dependent interaction of monocytes with GBM, which raises the possibility of developing effective and improved therapies for GBM.
Insights
Vascular cell adhesion molecule-1 (VCAM-1) promotes monocyte adhesion to glioblastoma, driving tumor growth. Targeting the EGFR-VCAM-1 pathway offers a potential therapeutic strategy for glioblastoma multiforme (GBM).
Area of Science:
- Immunology
- Oncology
- Molecular Biology
Background:
- Tumor-associated macrophages (TAMs) are crucial for glioblastoma multiforme (GBM) progression.
- Understanding monocyte-GBM interactions is key to identifying new therapeutic targets.
- Vascular cell adhesion molecule-1 (VCAM-1) mediates immune cell adhesion and is implicated in glioma pathogenesis.
Purpose of the Study:
- To investigate the role of VCAM-1 in monocyte recruitment to GBM.
- To elucidate the regulatory mechanisms of VCAM-1 expression in GBM.
- To explore VCAM-1 as a potential therapeutic target for GBM.
Main Methods:
- Analysis of glioma patient databases and immunohistochemistry.
- In vitro studies using 2D and 3D GBM cell cultures.
- Gene knockdown experiments and EGFR inhibition assays.
- Investigation of signaling pathways including miR-181, EGFR, p38/STAT3, and integrin α4β1.
Main Results:
- VCAM-1 expression positively correlates with glioma grade and monocyte adhesion.
- EGFR signaling drives VCAM-1 expression and subsequent monocyte adhesion.
- Monocyte adhesion via integrin α4β1 promotes GBM growth and invasion.
- miR-181b levels are inversely correlated with glioma grade and regulate VCAM-1 expression.
Conclusions:
- VCAM-1 is a critical mediator of EGFR-dependent monocyte recruitment in GBM.
- The EGFR-VCAM-1 axis represents a promising therapeutic target for GBM.
- Modulation of miR-181b may offer a novel strategy for GBM treatment.

