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Updated: Mar 17, 2026

Author Spotlight: Exploring the Role of Ion Channels in Cancer: Characterization and Potential Treatment Approaches
Published on: June 16, 2023
Calcium Channels and Associated Receptors in Malignant Brain Tumor Therapy
Fernanda B Morrone1, Marina P Gehring2, Natália F Nicoletti2
1Programa de Pós-graduação em Biologia Celular e Molecular (F.B.M., M.P.G., N.F.N), Programa de Pós-graduação em Medicina e Ciências da Saúde, Faculdade de Farmácia, Pontifícia Universidade Católica do RS, Porto Alegre (F.B.M.); Laboratório de Terapia Celular, Centro de Ciências Biológicas e da Saúde, Universidade de Caxias do Sul, Caxias do Sul (N.F.N.), Brasil fernanda.morrone@pucrs.br.
Abstract:
Malignant brain tumors are highly lethal and aggressive. Despite recent advances in the current therapies, which include the combination of surgery and radio/chemotherapy, the average survival rate remains poor. Altered regulation of ion channels is part of the neoplastic transformation, which suggests that ion channels are involved in cancer. Distinct classes of calcium-permeable channels are abnormally expressed in cancer and are likely involved in the alterations underlying malignant growth. Specifically, cytosolic Ca(2+) activity plays an important role in the regulation of cell proliferation, and Ca(2+) signaling is altered in proliferating tumor cells. A series of previous studies emphasized the importance of the T-type low-voltage-gated calcium channels (VGCC) in different cancer types, including gliomas, and remarkably, pharmacologic inhibition of T-type VGCC caused antiproliferative effects and triggered apoptosis of human glioma cells. Other calcium permeable channels, such as transient receptor potential (TRP) channels, contribute to changes in Ca(2+) by modulating the driving force for Ca(2+) entry, and some TRP channels are required for proliferation and migration in gliomas. Furthermore, recent evidence shows that TRP channels contribute to the progression and survival of the glioblastoma patients. Likewise, the purinergic P2X7 receptor acts as a direct conduit for Ca(2+)-influx and an indirect activator of voltage-gated Ca(2+)-channel. Evidence also shows that P2X7 receptor activation is linked to elevated expression of inflammation promoting factors, tumor cell migration, an increase in intracellular mobilization of Ca(2+), and membrane depolarization in gliomas. Therefore, this review summarizes the recent findings on calcium channels and associated receptors as potential targets to treat malignant gliomas.
Insights
Altered calcium channels, including T-type VGCC and TRP channels, are implicated in malignant gliomas. Targeting these calcium channels offers a promising therapeutic strategy for brain cancer.
Area of Science:
- Neuro-oncology
- Molecular biology
- Cancer research
Background:
- Malignant brain tumors, particularly gliomas, exhibit poor survival rates despite aggressive treatments.
- Ion channel dysregulation is a hallmark of neoplastic transformation, suggesting their role in cancer progression.
- Calcium-permeable channels are abnormally expressed in cancers and influence malignant growth.
Purpose of the Study:
- To review recent findings on calcium channels and associated receptors in malignant gliomas.
- To highlight the potential of these channels as therapeutic targets for brain cancer.
Main Methods:
- Literature review of studies on ion channels in glioma.
- Analysis of the role of T-type voltage-gated calcium channels (VGCC), transient receptor potential (TRP) channels, and P2X7 receptors in glioma.
Main Results:
- Pharmacologic inhibition of T-type VGCC shows antiproliferative and pro-apoptotic effects in glioma cells.
- TRP channels are crucial for glioma proliferation, migration, and patient survival.
- P2X7 receptor activation promotes glioma cell migration, inflammation, and intracellular calcium increase.
Conclusions:
- Calcium channels and associated receptors are critically involved in malignant glioma pathogenesis.
- Targeting these calcium channels presents a novel therapeutic avenue for treating aggressive brain tumors.
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