An organic artificial cardiomyocyte
Abstract
Abstract Advances in understanding biological excitability have driven both mathematical modeling and hardware emulation of action potential generation and propagation. While neuromorphic devices based on inorganic or organic systems have advanced rapidly, cardiomorphic hardware remains largely unexplored due to the complexity of reproducing multiple ionic dynamics and the temporal mismatch between the slow cardiac activity and the fast operation of solid-state electronics. Here, we present an organic electrochemical cardiomyocyte (OECM) in which ion-mediated channel currents exhibit time constants aligned with those of ventricular ionic processes. By reproducing a fast sodium current alongside slow, interdependent calcium and potassium currents, the OECM generates ventricular-like action potentials with biorealistic phases, displays refractoriness and responsiveness to electrical or chemical modulation, and synchronizes with bioelectric signals from living cardiomyocytes. These results shift the paradigm of cardiac modeling from purely computational simulations toward biorealistic hardware emulation.
Article Details
Authors (18)
Dace Gao
Junpeng Ji
Simone De Prà
Miao Xiong
Wenlong Jin
Ugo Bruno
Han-Yan Wu
Aleksandr Khudiakov
Andreas W. Erhardt
Chi-Yuan Yang
Peter J. Schwartz
Luca Sala
Iain McCulloch
Chemistry Research Laboratory, University of Oxford, 12 Mansfield Road, Oxford OX1 3TA, U.K.
Adrica Kyndiah
Mario Caironi
Istituto Italiano di Tecnologia , , Via Rubattino 81 , ,
Magnus Berggren
Deyu Tu
Simone Fabiano
Laboratory of Organic Electronics, Department of Science and Technology, Linköping University