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Updated: Jul 5, 2026

Screening Ion Channels in Cancer Cells
Published on: June 16, 2023
An unexpected role for ion channels in brain tumor metastasis
1The University of Alabama at Birmingham, Department of Neurobiology & Center for Glial Biology in Medicine, 1719 6th Avenue S., CIRC 410, Birmingham, AL 35294-0021, USA. sontheimer@uab.edu
Abstract:
Over the past two decades it has become apparent that essentially all living cells express voltage-activated ion channels. While the role of ion channels for electrical signaling between excitable cells is well known, their function in non-excitable cells is somewhat enigmatic. Research on cancer cells suggests that certain ion channels, K+ channels in particular, may be involved in aberrant tumor growth and channel inhibitors often lead to growth arrest. An unsuspected role for K+ and Cl(-) channels has now been documented for primary brain tumors, glioma, where the concerted activity of these channels promotes cell invasion and the formation of brain metastasis. Specifically, Ca2+-activated K+ (BK) channels colocalize with ClC-3 Cl(-) channels to the invading processes of these tumor cells. Upon a rise in intracellular Ca2+, these channels activate and release K+ and Cl(-) ions together with obligated water causing a rapid shrinkage of the leading process. This in turn facilitates the invasion of the cell into the narrow and tortuous extracellular brain spaces. The NKCC1 cotransporter accumulates intracellular Cl(-) to unusually high concentrations, thereby establishing an outward directed gradient for Cl(-) ions. This allows glioma cells to utilize Cl(-) as an osmotically active anion during invasion. Importantly, the inhibition of Cl(-) channels retards cell volume changes, and, in turn, compromises tumor cell invasion. These findings have led to the clinical evaluation of a Cl(-) channel blocking peptide, chlorotoxin, in patients with malignant glioma. Data from this clinical trial shows remarkable tumor selectivity for chlorotoxin. The experimental therapeutic was well tolerated and is now evaluated in a multi-center phase II clinical trial. A similar role for Cl(-) and K+ channels is suspected in other metastatic cancers, and lessons learned from studies of gliomas may pave the way towards the development of novel therapeutics targeting ion channels.
Insights
Ion channels play a critical role in glioma invasion and metastasis. Blocking chloride (Cl-) channels with chlorotoxin shows promise as a targeted therapy for malignant glioma.
Area of Science:
- Oncology
- Neuroscience
- Cell Biology
Background:
- Ion channels are crucial for electrical signaling in excitable cells, but their function in non-excitable cells, including cancer cells, is less understood.
- Research indicates that potassium (K+) channels are implicated in tumor growth, with inhibitors causing growth arrest.
- Primary brain tumors like glioma exhibit aberrant ion channel activity contributing to their invasive nature.
Purpose of the Study:
- To investigate the role of K+ and chloride (Cl-) channels in glioma cell invasion and brain metastasis.
- To elucidate the specific ion channels involved and their mechanism of action in facilitating tumor cell movement.
- To evaluate the therapeutic potential of targeting these ion channels in malignant glioma.
Main Methods:
- Investigated the colocalization of Ca2+-activated K+ (BK) channels and ClC-3 Cl- channels in glioma cell processes.
- Analyzed the effect of ion channel activity on cell volume changes and invasion using microscopy and functional assays.
- Assessed the efficacy of Cl- channel inhibition using chlorotoxin in preclinical models and clinical trials.
Main Results:
- Concerted activity of BK and ClC-3 channels promotes glioma cell invasion by regulating cell volume.
- Chloride (Cl-) ions, accumulated via the NKCC1 cotransporter, act as osmotically active anions during invasion.
- Inhibition of Cl- channels significantly reduces cell volume changes and compromises tumor cell invasion.
- Chlorotoxin demonstrates remarkable tumor selectivity and good tolerability in clinical trials for malignant glioma.
Conclusions:
- Ion channels, particularly K+ and Cl- channels, are key drivers of glioma invasion and metastasis.
- Targeting Cl- channels represents a promising therapeutic strategy for malignant gliomas.
- Findings suggest potential applications of ion channel inhibitors in other metastatic cancers.
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