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Updated: Mar 26, 2026

Co-culture of Glioblastoma Stem-like Cells on Patterned Neurons to Study Migration and Cellular Interactions
Published on: February 24, 2021
Calcium signaling orchestrates glioblastoma development: Facts and conjunctures
Catherine Leclerc1, Jacques Haeich2, Francisco J Aulestia3
1Centre de Biologie du Développement, Université Toulouse 3, 118 route de Narbonne, F31062 Toulouse, Cedex 04, France; CNRS UMR5547, Toulouse F31062, France.
Abstract:
While it is a relatively rare disease, glioblastoma multiform (GBM) is one of the more deadly adult cancers. Following current interventions, the tumor is never eliminated whatever the treatment performed; whether it is radiotherapy, chemotherapy, or surgery. One hypothesis to explain this poor outcome is the "cancer stem cell" hypothesis. This concept proposes that a minority of cells within the tumor mass share many of the properties of adult neural stem cells and it is these that are responsible for the growth of the tumor and its resistance to existing therapies. Accumulating evidence suggests that Ca(2+) might also be an important positive regulator of tumorigenesis in GBM, in processes involving quiescence, maintenance, proliferation, or migration. Glioblastoma tumors are generally thought to develop by co-opting pathways that are involved in the formation of an organ. We propose that the cells initiating the tumor, and subsequently the cells of the tumor mass, must hijack the different checkpoints that evolution has selected in order to prevent the pathological development of an organ. In this article, two main points are discussed. (i) The first is the establishment of a so-called "cellular society," which is required to create a favorable microenvironment. (ii) The second is that GBM can be considered to be an organism, which fights to survive and develop. Since GBM evolves in a limited space, its only chance of development is to overcome the evolutionary checkpoints. For example, the deregulation of the normal Ca(2+) signaling elements contributes to the progression of the disease. Thus, by manipulating the Ca(2+) signaling, the GBM cells might not be killed, but might be reprogrammed toward a new fate that is either easy to cure or that has no aberrant functioning. This article is part of a Special Issue entitled: Calcium and Cell Fate. Guest Editors: Jacques Haiech, Claus Heizmann, Joachim Krebs, Thierry Capiod and Olivier Mignen.
Insights
Glioblastoma multiforme (GBM) is a deadly cancer driven by cancer stem cells. Manipulating calcium signaling may reprogram GBM cells, offering a new therapeutic approach beyond current treatments.
Area of Science:
- Neuro-oncology
- Cancer Stem Cell Biology
- Calcium Signaling
Background:
- Glioblastoma multiforme (GBM) is an aggressive and often fatal adult brain cancer.
- Current treatments like surgery, radiotherapy, and chemotherapy fail to eliminate GBM tumors.
- The cancer stem cell hypothesis suggests a subset of tumor cells drives GBM growth and therapy resistance.
Purpose of the Study:
- To explore the role of calcium (Ca2+) in glioblastoma multiforme (GBM) tumorigenesis.
- To propose that GBM cells hijack developmental pathways and evolutionary checkpoints.
- To investigate therapeutic strategies targeting Ca2+ signaling for GBM treatment.
Main Methods:
- Review of existing literature on GBM, cancer stem cells, and calcium signaling.
- Conceptual framework proposing GBM as a "cellular society" and an "organism."
- Analysis of Ca2+ signaling deregulation in GBM progression.
Main Results:
- Accumulating evidence implicates Ca2+ in GBM quiescence, maintenance, proliferation, and migration.
- GBM development involves co-opting organ formation pathways and overcoming evolutionary checkpoints.
- Deregulation of Ca2+ signaling is linked to GBM progression.
Conclusions:
- GBM can be viewed as an organism that fights for survival by manipulating cellular processes.
- Targeting Ca2+ signaling may offer a novel strategy to reprogram GBM cells, potentially leading to cures.
- Reprogramming GBM cells via Ca2+ manipulation could offer an alternative to cell killing, improving treatment outcomes.
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