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Updated: Oct 30, 2025

Translational Orthotopic Models of Glioblastoma Multiforme
Published on: February 17, 2023
PML Differentially Regulates Growth and Invasion in Brain Cancer
Maria Tampakaki1,2,3, Mariam-Eleni Oraiopoulou1, Eleftheria Tzamali1
1Institute of Computer Science, Foundation for Research and Technology-Hellas, 70013 Heraklion, Greece.
Abstract:
Glioblastoma is the most malignant brain tumor among adults. Despite multimodality treatment, it remains incurable, mainly because of its extensive heterogeneity and infiltration in the brain parenchyma. Recent evidence indicates dysregulation of the expression of the Promyelocytic Leukemia Protein (PML) in primary Glioblastoma samples. PML is implicated in various ways in cancer biology. In the brain, PML participates in the physiological migration of the neural progenitor cells, which have been hypothesized to serve as the cell of origin of Glioblastoma. The role of PML in Glioblastoma progression has recently gained attention due to its controversial effects in overall Glioblastoma evolution. In this work, we studied the role of PML in Glioblastoma pathophysiology using the U87MG cell line. We genetically modified the cells to conditionally overexpress the PML isoform IV and we focused on its dual role in tumor growth and invasive capacity. Furthermore, we targeted a PML action mediator, the Enhancer of Zeste Homolog 2 (EZH2), via the inhibitory drug DZNeP. We present a combined in vitro-in silico approach, that utilizes both 2D and 3D cultures and cancer-predictive computational algorithms, in order to differentiate and interpret the observed biological results. Our overall findings indicate that PML regulates growth and invasion through distinct cellular mechanisms. In particular, PML overexpression suppresses cell proliferation, while it maintains the invasive capacity of the U87MG Glioblastoma cells and, upon inhibition of the PML-EZH2 pathway, the invasion is drastically eliminated. Our in silico simulations suggest that the underlying mechanism of PML-driven Glioblastoma physiology regulates invasion by differential modulation of the cell-to-cell adhesive and diffusive capacity of the cells. Elucidating further the role of PML in Glioblastoma biology could set PML as a potential molecular biomarker of the tumor progression and its mediated pathway as a therapeutic target, aiming at inhibiting cell growth and potentially clonal evolution regarding their proliferative and/or invasive phenotype within the heterogeneous tumor mass.
Insights
Promyelocytic Leukemia Protein (PML) plays a dual role in Glioblastoma, suppressing proliferation but maintaining invasion. Inhibiting the PML-EZH2 pathway drastically reduces invasion, suggesting PML as a therapeutic target for brain tumors.
Area of Science:
- Neuro-oncology
- Molecular Biology
- Computational Biology
Background:
- Glioblastoma is a highly aggressive and incurable brain tumor.
- Tumor heterogeneity and infiltration contribute to Glioblastoma's poor prognosis.
- Dysregulated Promyelocytic Leukemia Protein (PML) expression is observed in Glioblastoma.
Purpose of the Study:
- To investigate the role of PML isoform IV in Glioblastoma pathophysiology.
- To analyze the impact of PML on tumor growth and invasive capacity.
- To evaluate the therapeutic potential of targeting the PML-EZH2 pathway.
Main Methods:
- Genetic modification of U87MG cells for conditional PML overexpression.
- In vitro studies using 2D and 3D cell cultures.
- In silico computational algorithms for data interpretation.
- Pharmacological inhibition of the PML-EZH2 pathway using DZNeP.
Main Results:
- PML overexpression suppressed cell proliferation in Glioblastoma cells.
- PML maintained the invasive capacity of U87MG Glioblastoma cells.
- Inhibition of the PML-EZH2 pathway significantly reduced Glioblastoma cell invasion.
- In silico simulations indicated PML modulates cell adhesion and diffusion.
Conclusions:
- PML regulates Glioblastoma growth and invasion through distinct mechanisms.
- The PML-EZH2 pathway is crucial for Glioblastoma cell invasion.
- PML may serve as a biomarker for Glioblastoma progression.
- Targeting the PML-mediated pathway offers a potential therapeutic strategy for Glioblastoma.
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