Gap junction dynamics induces localized conductance bistability in cardiac tissue

Connexins are specialized ionic channels that control the action potential propagation between cardiac myocytes. In this paper, we study the connexin dynamics in a one-dimensional model of cardiac tissue. We show that the connexin dynamics may lead to a spatial organization of the gap junction condu...

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Bibliographic Details
Authors: Hawks, Claudia, Elorza Barbajero, Jorge, Witt, Annette, Laroze, David, Rodríguez Cantalapiedra, Inma|||0000-0002-0070-8979, Peñaranda Ayllón, Angelina|||0000-0002-0162-2851, Echebarría Domínguez, Blas|||0000-0003-0503-1781, Bragard, Jean
Format: article
Publication Date:2019
Country:España
Institution:Universitat Politècnica de Catalunya (UPC)
Repository:UPCommons. Portal del coneixement obert de la UPC
Language:English
OAI Identifier:oai:upcommons.upc.edu:2117/185105
Online Access:https://hdl.handle.net/2117/185105
https://dx.doi.org/10.1142/S0218127419300210
Access Level:Open access
Keyword:Connexin 43
Bistability
Cardiac dynamics
Gap junction dynamics
Connexins Cx43-43
Chaotic dispersion
Connexines
Àrees temàtiques de la UPC::Física
Description
Summary:Connexins are specialized ionic channels that control the action potential propagation between cardiac myocytes. In this paper, we study the connexin dynamics in a one-dimensional model of cardiac tissue. We show that the connexin dynamics may lead to a spatial organization of the gap junction conductance. In the numerical simulations presented in this paper we have found two different regimes for the spatial organization of the conductances: (a) a spatially uniform conductance; (b) a spatially complex pattern of local values of high and low conductances. In addition, we have observed that, locally, the two final states are limit cycles with a period equal to the period associated with the external excitation of the tissue strand. The conductance dispersion usually takes place on a very large time scale, i.e. thousands of heart beats, and on a very short spatial scale. Due to its simplicity, the one-dimensional setting allows a detailed study of the emerging structure and in particular very long simulations. We have studied the transition between the two aforementioned states as a function of the gap junction conductance characteristics. Furthermore, we have studied the effect of initially added noises on the outcome of the system. Finally, using spatial autocorrelation functions we have characterized the spatial dispersion in conductance values.