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Updated: Feb 12, 2026

SpOT the Correct Tissue Every Time in Multi-tissue Blocks
Published on: May 31, 2015
Blocking distinct interactions between Glioblastoma cells and their tissue microenvironment: A novel multi-targeted
Melanie Mettang1,2, Viola Meyer-Pannwitt1,3,4, Georg Karpel-Massler5
1Department of Pediatrics and Adolescent Medicine, University Medical Center Ulm, Ulm, Germany.
Abstract:
Due to the highly invasive nature of Glioblastoma (GB), complete surgical resection is not feasible, while motile tumour cells are often associated with several specific brain structures that enhance treatment-resistance. Here, we investigate the therapeutic potential of Disulfiram and Carbenoxolone, that inhibit two distinct interactions between GB and the brain tissue microenvironment: stress-induced cell-matrix adhesion and gap junction mediated cell-cell communication, respectively. Increase in cell numbers of tumour-initiating cells, which are cultured in suspension as cell clusters, and adherent differentiated cells can be blocked to a similar extent by Carbenoxolone, as both cell populations form gap junctions, but the adherent differentiated cells are much more sensitive to Disulfiram treatment, which - via modulation of NF-κB signalling - interferes with cell-substrate adhesion. Interestingly, inducing adhesion in tumour-initiating cells without differentiating them does not sensitize for Disulfiram. Importantly, combining Disulfiram, Carbenoxolone and the standard chemotherapeutic drug Temozolomide reduces tumour size in an orthotopic mouse model. Isolating GB cells from their direct environment within the brain represents an important addition to current therapeutic approaches. The blockage of cellular interactions via the clinically relevant substances Disulfiram and Carbenoxolone, has distinct effects on different cell populations within a tumour, potentially reducing motility and/or resistance to apoptosis.
Insights
This study explores Disulfiram and Carbenoxolone as glioblastoma (GB) treatments, targeting cell adhesion and communication. Combining these drugs with Temozolomide significantly reduced tumor size in mice.
Area of Science:
- Neuro-oncology
- Cancer Biology
- Pharmacology
Background:
- Glioblastoma (GB) is highly invasive, making complete surgical resection difficult.
- Tumor cells interact with the brain microenvironment, enhancing treatment resistance and motility.
- Targeting these cellular interactions offers a novel therapeutic strategy.
Purpose of the Study:
- To investigate the therapeutic potential of Disulfiram and Carbenoxolone against glioblastoma.
- To analyze how these drugs affect distinct glioblastoma cell populations and their interactions.
- To evaluate the efficacy of combining these agents with Temozolomide.
Main Methods:
- Investigated Disulfiram's effect on cell-substrate adhesion via NF-κB signaling.
- Assessed Carbenoxolone's impact on gap junction-mediated cell-cell communication.
- Utilized an orthotopic mouse model to test drug combinations.
Main Results:
- Carbenoxolone inhibited both tumor-initiating and differentiated glioblastoma cells.
- Disulfiram showed higher sensitivity in differentiated cells by interfering with cell-substrate adhesion.
- Combined Disulfiram, Carbenoxolone, and Temozolomide significantly reduced tumor size in mice.
Conclusions:
- Disrupting glioblastoma cell-environment interactions is a promising therapeutic approach.
- Disulfiram and Carbenoxolone exhibit distinct effects on different glioblastoma cell populations.
- Combination therapy holds potential for reducing glioblastoma motility and apoptosis resistance.
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