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Updated: Sep 20, 2025

Flexible Organic Electronic Devices for Pulsed Electric Field Therapy of Glioblastoma
Published on: August 9, 2022
PEDOT:PSS coated electrodes reduce intracellular oxidation and cell damage with pulsed electric field application
Romanos Poulkouras1, Gerwin Dijk2, Marie Lefevre3
1Mines Saint-Etienne, Centre CMP, Department of Bioelectronics, Gardanne, France; Institut de Neurosciences de la Timone (INT), Centre National de la Recherche Scientifique (CNRS) and Aix-Marseille Université, Marseille, France.
Abstract:
Glioblastoma Multiforme is a highly lethal form of brain cancer, resistant to traditional therapeutic approaches and oftentimes hardly resectable. The application of pulsed electric fields (PEF) is gaining prominence as a highly effective approach for combating malignant tumors. However, PEF application at high voltages can generate reactive oxygen species through electrochemical events at electrodes, which can greatly affect intracellular processes and damage healthy cells. Here, we present an in depth study on the cellular impact of coating metal electrodes with an organic polymer PEDOT:PSS. We compared the effect of PEF application through coated and uncoated gold electrodes on the U87 human glioblastoma cell line. The results show that PEF application using PEDOT:PSS-coated electrodes does not induce intracellular ROS generation, even at high voltages, contrary to that observed with uncoated electrodes. PEF delivery with PEDOT:PSS coated electrodes results in minimal cell electroporation and a lower intracellular calcium response than uncoated metal electrodes. The application of the antioxidant MnTBAP allowed us to establish that superoxide generation is partially responsible for the higher intracellular calcium response observed in uncoated metal electrodes. The results demonstrate that PEDOT-coated electrodes allow for PEF application without intracellular ROS generation, with the trade-off being a diminished electroporation efficiency. These electrodes could therefore be useful for PEF application in ROS-sensitive tissues, as well as for disentangling the effect of PEFs on cells from the metabolic impact of electrolytic events arising from the electrode material.
Insights
Pulsed electric fields (PEF) combat glioblastoma, but can cause cell damage via reactive oxygen species (ROS). Coating electrodes with PEDOT:PSS prevents ROS generation during PEF treatment, offering a safer approach for sensitive tissues.
Area of Science:
- Biomedical Engineering
- Oncology
- Materials Science
Background:
- Glioblastoma Multiforme is an aggressive brain cancer with limited treatment options.
- Pulsed electric fields (PEF) show promise for cancer therapy but can induce harmful reactive oxygen species (ROS).
- Electrochemical events at electrodes during PEF can generate ROS, damaging cells.
Purpose of the Study:
- To investigate the cellular impact of coating metal electrodes with PEDOT:PSS for PEF application.
- To compare ROS generation and cellular responses using coated versus uncoated electrodes.
- To assess the potential of PEDOT:PSS-coated electrodes for safer PEF cancer therapy.
Main Methods:
- Coating gold electrodes with PEDOT:PSS.
- Applying PEF to U87 human glioblastoma cells using coated and uncoated electrodes.
- Measuring intracellular ROS generation and calcium response.
- Utilizing the antioxidant MnTBAP to identify ROS contributors.
Main Results:
- PEDOT:PSS-coated electrodes prevented intracellular ROS generation during high-voltage PEF.
- Uncoated electrodes induced significant ROS generation and higher intracellular calcium response.
- PEDOT:PSS-coated electrodes resulted in minimal cell electroporation and reduced calcium response.
- Superoxide generation was identified as a partial cause of the calcium response with uncoated electrodes.
Conclusions:
- PEDOT:PSS-coated electrodes enable PEF application without inducing intracellular ROS.
- This offers a safer alternative for PEF treatment in ROS-sensitive tissues.
- A trade-off exists: reduced electroporation efficiency with coated electrodes.
- These electrodes facilitate the study of PEF effects separate from electrode-induced metabolic impacts.
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