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      Dynamical mechanism for generation of arrhythmogenic early afterdepolarizations in cardiac myocytes: Insights from in silico electrophysiological models.

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          Abstract

          We analyze the dynamical mechanisms underlying the formation of arrhythmogenic early afterdepolarizations (EADs) in two mathematical models of cardiac cellular electrophysiology: the Sato et al. biophysically detailed model of a rabbit ventricular myocyte of dimension 27 and a reduced version of the Luo-Rudy mammalian myocyte model of dimension 3. Based on a comparison of the two models, with detailed bifurcation analysis using spike-counting techniques and continuation methods in the simple model and numerical explorations in the complex model, we locate the point where the first EAD originates in an unstable branch of periodic orbits. These results serve as a basis to propose a conjectured scheme involving a hysteresis mechanism with the creation of alternans and EADs in the unstable branch. This theoretical scheme fits well with electrophysiological experimental data on EAD generation and hysteresis phenomena. Our findings open the door to the development of novel methods for pro-arrhythmia risk prediction related to EAD generation without actual induction of EADs.

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          Author and article information

          Journal
          Phys Rev E
          Physical review. E
          American Physical Society (APS)
          2470-0053
          2470-0045
          Aug 2022
          : 106
          : 2-1
          Affiliations
          [1 ] Department of Applied Mathematics and IUMA, Computational Dynamics group, University of Zaragoza, E-50009 Zaragoza, Spain.
          [2 ] I3A, University of Zaragoza, IIS Aragón and CIBER-BBN, E-50018 Zaragoza, Spain.
          Article
          10.1103/PhysRevE.106.024402
          36109976
          9711fc3d-96aa-4415-b9b0-a3f21314db24
          History

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