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Updated: May 19, 2026

Screening Ion Channels in Cancer Cells
Published on: June 16, 2023
Voltage-gated potassium channel EAG2 controls mitotic entry and tumor growth in medulloblastoma via regulating cell
Xi Huang1, Adrian M Dubuc, Rintaro Hashizume
1Howard Hughes Medical Institute, San Francisco, CA 94158, USA.
Abstract:
Medulloblastoma (MB) is the most common pediatric CNS malignancy. We identify EAG2 as an overexpressed potassium channel in MBs across different molecular and histological subgroups. EAG2 knockdown not only impairs MB cell growth in vitro, but also reduces tumor burden in vivo and enhances survival in xenograft studies. Mechanistically, we demonstrate that EAG2 protein is confined intracellularly during interphase but is enriched in the plasma membrane during late G2 phase and mitosis. Disruption of EAG2 expression results in G2 arrest and mitotic catastrophe associated with failure of premitotic cytoplasmic condensation. While the tumor suppression function of EAG2 knockdown is independent of p53 activation, DNA damage checkpoint activation, or changes in the AKT pathway, this defective cell volume control is specifically associated with hyperactivation of the p38 MAPK pathway. Inhibition of the p38 pathway significantly rescues the growth defect and G2 arrest. Strikingly, ectopic membrane expression of EAG2 in cells at interphase results in cell volume reduction and mitotic-like morphology. Our study establishes the functional significance of EAG2 in promoting MB tumor progression via regulating cell volume dynamics, the perturbation of which activates the tumor suppressor p38 MAPK pathway, and provides clinical relevance for targeting this ion channel in human MBs.
Insights
The potassium channel EAG2 promotes pediatric brain tumor growth. Inhibiting EAG2 or the p38 MAPK pathway halts medulloblastoma progression and improves survival.
Area of Science:
- Oncology
- Molecular Biology
- Neuroscience
Background:
- Medulloblastoma (MB) is the most common malignant brain tumor in children.
- Identifying novel therapeutic targets is crucial for improving MB patient outcomes.
Purpose of the Study:
- To investigate the role of the EAG2 potassium channel in medulloblastoma pathogenesis.
- To elucidate the molecular mechanisms by which EAG2 influences MB cell growth and survival.
Main Methods:
- EAG2 expression analysis in MB patient samples.
- In vitro cell growth assays and in vivo xenograft studies following EAG2 knockdown.
- Cell cycle analysis, protein localization studies, and pathway analysis (p38 MAPK, AKT, p53).
Main Results:
- EAG2 is overexpressed across diverse MB subgroups and drives tumor progression.
- EAG2 knockdown impairs MB cell growth, reduces tumor burden, and enhances survival.
- EAG2 regulates cell volume dynamics, leading to G2/M cell cycle arrest and mitotic catastrophe upon disruption.
- EAG2's tumor-suppressive effects are mediated via p38 MAPK pathway activation, independent of p53 or AKT signaling.
Conclusions:
- EAG2 is a key regulator of cell volume and mitosis in medulloblastoma.
- Targeting EAG2 or the p38 MAPK pathway represents a promising therapeutic strategy for pediatric medulloblastoma.
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