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Updated: Oct 22, 2025

A Rapid Screening Workflow to Identify Potential Combination Therapy for GBM using Patient-Derived Glioma Stem Cells
Published on: March 28, 2021
Alkylaminophenol and GPR17 Agonist for Glioblastoma Therapy: A Combinational Approach for Enhanced Cell Death
Phuong Doan1,2,3, Phung Nguyen1,2,3, Akshaya Murugesan1,2,4
1Molecular Signaling Group, Faculty of Medicine and Health Technology, Tampere University, P.O. Box 553, 33101 Tampere, Finland.
Abstract:
Drug resistance and tumor heterogeneity limits the therapeutic efficacy in treating glioblastoma, an aggressive infiltrative type of brain tumor. GBM cells develops resistance against chemotherapeutic agent, temozolomide (TMZ), which leads to the failure in treatment strategies. This enduring challenge of GBM drug resistance could be rational by combinatorial targeted therapy. Here, we evaluated the combinatorial effect of phenolic compound (2-(3,4-dihydroquinolin-1(2H)-yl)(p-tolyl)methyl)phenol (THTMP), GPR17 agonist 2-({5-[3-(Morpholine-4-sulfonyl)phenyl]-4-[4-(trifluoromethoxy)phenyl]-4H-1,2,4-triazol-3-yl}sulfanyl)-N-[4-(propan-2-yl)phenyl]acetamide (T0510.3657 or T0) with the frontline drug, TMZ, on the inhibition of GBM cells. Mesenchymal cell lines derived from patients' tumors, MMK1 and JK2 were treated with the combination of THTMP + T0, THTMP + TMZ and T0 + TMZ. Cellular migration, invasion and clonogenicity assays were performed to check the migratory behavior and the ability to form colony of GBM cells. Mitochondrial membrane permeability (MMP) assay and intracellular calcium, [Ca2+]i, assay was done to comprehend the mechanism of apoptosis. Role of apoptosis-related signaling molecules was analyzed in the induction of programmed cell death. In vivo validation in the xenograft models further validates the preclinical efficacy of the combinatorial drug. GBM cells exert better synergistic effect when exposed to the cytotoxic concentration of THTMP + T0, than other combinations. It also inhibited tumor cell proliferation, migration, invasion, colony-forming ability and cell cycle progression in S phase, better than the other combinations. Moreover, the combination of THTMP + T0 profoundly increased the [Ca2+]i, reactive oxygen species in a time-dependent manner, thus affecting MMP and leading to apoptosis. The activation of intrinsic apoptotic pathway was regulated by the expression of Bcl-2, cleaved caspases-3, cytochrome c, HSP27, cIAP-1, cIAP-2, p53, and XIAP. The combinatorial drug showed promising anti-tumor efficacy in GBM xenograft model by reducing the tumor volume, suggesting it as an alternative drug to TMZ. Our findings indicate the coordinated administration of THTMP + T0 as an efficient therapy for inhibiting GBM cell proliferation.
Insights
This study explored combining novel compounds with temozolomide (TMZ) to treat glioblastoma (GBM). The THTMP + T0 combination demonstrated significant anti-cancer effects, offering a promising alternative therapy for GBM.
Area of Science:
- Oncology
- Pharmacology
- Molecular Biology
Background:
- Glioblastoma (GBM) exhibits drug resistance and tumor heterogeneity, limiting therapeutic efficacy.
- Temozolomide (TMZ) resistance in GBM necessitates novel treatment strategies, such as combinatorial targeted therapy.
Purpose of the Study:
- To evaluate the combinatorial effects of (2-(3,4-dihydroquinolin-1(2H)-yl)(p-tolyl)methyl)phenol (THTMP) and GPR17 agonist T0510.3657 (T0) with TMZ against GBM cells.
- To investigate the mechanisms underlying the anti-cancer activity of these combinations, including apoptosis induction and cell cycle regulation.
Main Methods:
- Mesenchymal GBM cell lines (MMK1, JK2) were treated with THTMP + T0, THTMP + TMZ, and T0 + TMZ.
- Assays included cellular migration, invasion, clonogenicity, mitochondrial membrane permeability (MMP), and intracellular calcium ([Ca2+]i) levels.
- Apoptosis-related signaling molecules and in vivo xenograft models were analyzed.
Main Results:
- The THTMP + T0 combination exhibited superior synergistic effects compared to other combinations, inhibiting GBM cell proliferation, migration, invasion, and colony formation.
- This combination significantly increased intracellular calcium and reactive oxygen species, leading to altered MMP and apoptosis.
- The intrinsic apoptotic pathway was activated, evidenced by changes in Bcl-2, cleaved caspases-3, cytochrome c, and other related proteins.
Conclusions:
- The coordinated administration of THTMP + T0 shows significant anti-tumor efficacy in GBM, acting synergistically to inhibit cell proliferation and induce apoptosis.
- This combination represents a promising therapeutic approach for glioblastoma, potentially overcoming TMZ resistance.

