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Updated: Nov 20, 2025

Live-Cell Imaging Assays to Study Glioblastoma Brain Tumor Stem Cell Migration and Invasion
Published on: August 29, 2018
Thymosin β 4 gene silencing decreases stemness and invasiveness in glioblastoma
Hans-Georg Wirsching1, Shanmugarajan Krishnan, Ana-Maria Florea
11 Department of Neurology, Laboratory of Molecular Neuro-Oncology, University Hospital Zurich, Zurich, Switzerland.
Abstract:
Thymosin beta 4 is a pleiotropic actin-sequestering polypeptide that is involved in wound healing and developmental processes. Thymosin beta 4 gene silencing promotes differentiation of neural stem cells whereas thymosin beta 4 overexpression initiates cortical folding of developing brain hemispheres. A role of thymosin beta 4 in malignant gliomas has not yet been investigated. We analysed thymosin beta 4 staining on tissue microarrays and performed interrogations of the REMBRANDT and the Cancer Genome Atlas databases. We investigated thymosin beta 4 expression in seven established glioma cell lines and seven glioma-initiating cell lines and induced or silenced thymosin beta 4 expression by lentiviral transduction in LNT-229, U87MG and GS-2 cells to study the effects of altered thymosin beta 4 expression on gene expression, growth, clonogenicity, migration, invasion, self-renewal and differentiation capacity in vitro, and tumorigenicity in vivo. Thymosin beta 4 expression increased with grade of malignancy in gliomas. Thymosin beta 4 gene silencing in LNT-229 and U87MG glioma cells inhibited migration and invasion, promoted starvation-induced cell death in vitro and enhanced survival of glioma-bearing mice. Thymosin beta 4 gene silencing in GS-2 cells inhibited self-renewal and promoted differentiation in vitro and decreased tumorigenicity in vivo. Gene expression analysis suggested a thymosin beta 4-dependent regulation of mesenchymal signature genes and modulation of TGFβ and p53 signalling networks. We conclude that thymosin beta 4 should be explored as a novel molecular target for anti-glioma therapy.
Insights
Thymosin beta 4 (Tβ4) promotes malignant glioma growth and invasion. Silencing Tβ4 inhibits glioma progression, suggesting Tβ4 as a potential therapeutic target for brain tumors.
Area of Science:
- Neuro-oncology
- Molecular Biology
- Cancer Research
Background:
- Thymosin beta 4 (Tβ4) is a key regulator of actin dynamics, implicated in wound healing and neural development.
- Its role in malignant gliomas, particularly glioblastoma, remains unexplored.
- Tβ4's functions suggest potential involvement in cancer progression.
Purpose of the Study:
- To investigate the role of Thymosin beta 4 (Tβ4) in malignant gliomas.
- To assess Tβ4 expression levels in gliomas of varying grades.
- To evaluate the therapeutic potential of targeting Tβ4 in glioma models.
Main Methods:
- Analysis of Tβ4 expression in glioma tissue microarrays and public databases (REMBRANDT, TCGA).
- Assessment of Tβ4 expression in established and initiating glioma cell lines.
- In vitro and in vivo functional studies using lentiviral-mediated Tβ4 gene silencing or overexpression in glioma cells.
- Gene expression profiling to identify Tβ4-regulated pathways.
Main Results:
- Tβ4 expression positively correlates with glioma grade.
- Tβ4 gene silencing suppressed glioma cell migration, invasion, and self-renewal, while promoting differentiation and cell death.
- Silencing Tβ4 enhanced survival in glioma-bearing mice and reduced tumor growth.
- Gene expression analysis indicated Tβ4 regulates mesenchymal genes and TGFβ/p53 signaling.
Conclusions:
- Thymosin beta 4 (Tβ4) plays a significant role in promoting glioma malignancy.
- Tβ4 inhibition demonstrates anti-glioma effects in vitro and in vivo.
- Tβ4 represents a promising molecular target for novel anti-glioma therapies.
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