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Effect of electrochemical topology on detection sensitivity in MEA assay for drug-induced cardiotoxicity screening

Authors
Kim, ByunggikChoi, Jong SeobZhu, YiguangKim, JuhyunKim, Ye SeulParra, AndresLocke, Paul A.Kim, Jae HoHerron, ToddKim, Deok-Ho
Issue Date
Mar-2025
Publisher
Pergamon Press Ltd.
Keywords
Microelectrode array (MEA); NanoMEA platform; Cardiotoxicity screening; Electrochemical topology; Impedance spectroscopy; Human iPSC-derived cardiomyocytes
Citation
Biosensors and Bioelectronics, v.272, pp 117082
Journal Title
Biosensors and Bioelectronics
Volume
272
Start Page
117082
URI
http://scholarworks.bwise.kr/kbri/handle/2023.sw.kbri/1231
DOI
10.1016/j.bios.2024.117082
ISSN
0956-5663
1873-4235
Abstract
Cardiotoxicity remains a major challenge in drug development, accounting for 45% of medication withdrawals due to cardiac ischemia and arrhythmogenicity. To overcome the limitations of traditional multielectrode array (MEA)-based cardiotoxicity assays, we developed a Nafion-coated NanoMEA platform with decoupled reference electrodes, offering enhanced sensitivity for electrophysiological measurements. The 'Decoupled' configuration significantly reduced polarization resistance (Rp) from 12.77 MS2 to 3.41 MS2, improving charge transfer efficiency as demonstrated by electrochemical impedance spectroscopy and cyclic voltammetry. Additionally, the limit of detection significantly decreased from 0.175 MS2 (Coupled) to 0.040 MS2 (Decoupled), underscoring the system's enhanced sensitivity. Using human-induced pluripotent stem cell-derived cardiomyocytes (hiPSC-CMs), we evaluated the effects of three proarrhythmic drugs: Ranolazine, Domperidone, and Sotalol. Under the decoupled condition, the platform exhibited reductions in IC50 values for Domperidone (0.71 mu M-0.29 mu M), Sotalol (7.61 mu M-0.27 mu M), and Ranolazine (53.08 mu M-5.89 mu M), demonstrating significantly improved drug detection sensitivity. Longitudinal analysis revealed significant alterations in key electrophysiological parameters, including beating period (BP), field potential duration (FPD), spike slope, and amplitude, which were consistent with the known pharmacological actions of these drugs. Further validation through action potential (AP) waveform analysis showed enhanced repolarization dynamics, confirming the platform's predictive capabilities. Our findings highlight the critical role of electrochemical topology in optimizing MEA performance. The NanoMEA system, featuring decoupled Nafion-coated electrodes, represents a robust and sensitive platform for cardiotoxicity screening, setting a new standard for preclinical drug safety assessment and advancing bioelectronic device design for cardiac research.
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