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Updated: Oct 14, 2025

Author Spotlight: Exploring the Role of Ion Channels in Cancer: Characterization and Potential Treatment Approaches
Published on: June 16, 2023
Block of Voltage-Gated Sodium Channels as a Potential Novel Anti-cancer Mechanism of TIC10
Eva Fuchs1, David Alexander Christian Messerer1, Georg Karpel-Massler2
1Department of Anesthesiology and Intensive Care Medicine, University Hospital of Ulm, Ulm, Germany.
Abstract:
Background: Tumor therapeutics are aimed to affect tumor cells selectively while sparing healthy ones. For this purpose, a huge variety of different drugs are in use. Recently, also blockers of voltage-gated sodium channels (VGSCs) have been recognized to possess potentially beneficial effects in tumor therapy. As these channels are a frequent target of numerous drugs, we hypothesized that currently used tumor therapeutics might have the potential to block VGSCs in addition to their classical anti-cancer activity. In the present work, we have analyzed the imipridone TIC10, which belongs to a novel class of anti-cancer compounds, for its potency to interact with VGSCs. Methods: Electrophysiological experiments were performed by means of the patch-clamp technique using heterologously expressed human heart muscle sodium channels (hNav1.5), which are among the most common subtypes of VGSCs occurring in tumor cells. Results: TIC10 angular inhibited the hNav1.5 channel in a state- but not use-dependent manner. The affinity for the resting state was weak with an extrapolated Kr of about 600 μM. TIC10 most probably did not interact with fast inactivation. In protocols for slow inactivation, a half-maximal inhibition occurred around 2 µM. This observation was confirmed by kinetic studies indicating that the interaction occurred with a slow time constant. Furthermore, TIC10 also interacted with the open channel with an affinity of approximately 4 µM. The binding site for local anesthetics or a closely related site is suggested as a possible target as the affinity for the well-characterized F1760K mutant was reduced more than 20-fold compared to wild type. Among the analyzed derivatives, ONC212 was similarly effective as TIC10 angular, while TIC10 linear more selectively interacted with the different states. Conclusion: The inhibition of VGSCs at low micromolar concentrations might add to the anti-tumor properties of TIC10.
Insights
The novel anti-cancer compound TIC10 blocks voltage-gated sodium channels (VGSCs) at low micromolar concentrations. This interaction may enhance TIC10's anti-tumor effects by selectively targeting cancer cells.
Area of Science:
- Pharmacology
- Oncology
- Molecular Biology
Background:
- Tumor therapeutics aim for selective cancer cell targeting.
- Voltage-gated sodium channels (VGSCs) show potential in cancer therapy.
- Existing therapeutics may possess dual anti-cancer and VGSC-blocking activities.
Purpose of the Study:
- To investigate the imipridone TIC10's interaction with VGSCs.
- To determine if TIC10 exhibits VGSC blocking properties.
- To explore the potential contribution of VGSC inhibition to TIC10's anti-cancer effects.
Main Methods:
- Patch-clamp electrophysiology on heterologously expressed hNav1.5 channels.
- State-dependent inhibition analysis.
- Kinetic studies and mutant analysis (F1760K).
Main Results:
- TIC10 inhibited hNav1.5 channels in a state-dependent manner.
- Low micromolar affinities were observed for resting, slow inactivated, and open states (IC50 ~2-4 µM).
- TIC10 likely binds to a site similar to local anesthetics, as indicated by reduced affinity in the F1760K mutant.
Conclusions:
- TIC10 inhibits VGSCs at therapeutically relevant concentrations.
- VGSC inhibition is a potential mechanism contributing to TIC10's anti-tumor activity.
- Further research into TIC10 and its derivatives for cancer therapy is warranted.
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