Scalable and high-throughput platforms to non-invasively record the Action Potentials (APs) of excitable cells are highly demanded to accelerate disease diagnosis and drug discovery. AP recordings are typically achieved with the invasive and low-throughput patch clamp technique. Non-invasive alternatives like planar multielectrode arrays cannot record APs without membrane poration, preventing accurate measurements of disease states and drug effects. Here, we disclose reliable and non-invasive recording of APs with patch clamp-like quality from human stem cell-derived cardiomyocytes using an inkjet-printed polymer semiconductor in an Electrolyte-Gated Field-Effect Transistor configuration. High sensitivity is proven by the detection of drug-induced pro-arrhythmic membrane potential oscillations as early/delayed afterdepolarizations. The higher throughput potential of this platform could significantly enhance disease modelling, drug screening, safety pharmacology and the study of abiotic/biotic interfaces.

Kyndiah, A., Zemignani, G., Ronchi, C., Tullii, G., Khudiakov, A., Iachetta, G., et al. (2025). Non-invasive action potential recordings using printed electrolyte-gated polymer field-effect transistors. NATURE COMMUNICATIONS, 16(1) [10.1038/s41467-025-63484-1].

Non-invasive action potential recordings using printed electrolyte-gated polymer field-effect transistors

Sala L.;
2025

Abstract

Scalable and high-throughput platforms to non-invasively record the Action Potentials (APs) of excitable cells are highly demanded to accelerate disease diagnosis and drug discovery. AP recordings are typically achieved with the invasive and low-throughput patch clamp technique. Non-invasive alternatives like planar multielectrode arrays cannot record APs without membrane poration, preventing accurate measurements of disease states and drug effects. Here, we disclose reliable and non-invasive recording of APs with patch clamp-like quality from human stem cell-derived cardiomyocytes using an inkjet-printed polymer semiconductor in an Electrolyte-Gated Field-Effect Transistor configuration. High sensitivity is proven by the detection of drug-induced pro-arrhythmic membrane potential oscillations as early/delayed afterdepolarizations. The higher throughput potential of this platform could significantly enhance disease modelling, drug screening, safety pharmacology and the study of abiotic/biotic interfaces.
Articolo in rivista - Articolo scientifico
Action potential; Organic bioelectronics; Electrolyte-gated field-effect transistor; hiPSC-derived cardiomyocytes; Non-invasive electrophysiology; Drug safety screening
English
31-ago-2025
2025
16
1
8143
open
Kyndiah, A., Zemignani, G., Ronchi, C., Tullii, G., Khudiakov, A., Iachetta, G., et al. (2025). Non-invasive action potential recordings using printed electrolyte-gated polymer field-effect transistors. NATURE COMMUNICATIONS, 16(1) [10.1038/s41467-025-63484-1].
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/10281/620123
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