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The atrial resting potential distribution within a fibrotic zone and its effects on the conduction on non-fibrotic zones: A simulation study

dc.contributor.authorUgarte, Juan
dc.contributor.authorTobón, Catalina
dc.contributor.authorMendes Lopes, Antonio
dc.contributor.authorMachado, J. A. Tenreiro
dc.date.accessioned2023-11-02T14:51:12Z
dc.date.available2023-11-02T14:51:12Z
dc.date.issued2021
dc.description.abstractAtrial fibrillation (AF) is a heart condition commonly diagnosed within the clinical praxis. During an AF episode, rapid and irregular heartbeats are present and they underly a complex electrical activity. It is known that the atrial structural alterations play a role in establishing the fibrillatory propagation patterns. However, the specific mechanisms are not fully understood. Fibrosis is a hallmark of AF and it represents structural abnormalities that disturbs the atrial electrical conduction. In this work, the behavior of the cardiomyocytes resting action potential in a fibrotic tissue, under distinct textures, is studied. A computational model of atrial electrophysiology is implemented. For the fibrosis model, spatial complex-order derivatives are used. Several values for the derivative order are tested in order to generate different degrees of structural complexity. The fibrosis model also includes cellular heterogeneity through the presence of fibroblasts coupled to cardiomyocytes. Diffuse, interstitial and compact fibrosis textures are implemented in a 2D domain and the amount of fibrosis is varied. The distribution of the resting potential is assessed using the Shannon entropy and the tissue is stimulated in order to evaluate the conduction velocity. The results indicate that, the distinct fibrosis structural conditions generate a wide range of resting potential distributions: from normal to heavy-tailed. The entropy values indicate the changes in the resting potential distribution when the structural complexity varies. Such analysis evinced that the amount of fibrosis generates specific entropy curves respect the derivative order. Moreover, the conduction velocity outside the fibrotic area is affected by the fibrotic configuration, which evinces the long-range effect of the fractional derivative operator and agrees with experimental observations. These results suggest that the proposed complex-order model can be useful for modeling fibrosis during atrial fibrillation and the entropy approach allows characterizing the wide range of fibrillatory scenarios under distinct fibrosis configurations.pt_PT
dc.description.versioninfo:eu-repo/semantics/publishedVersionpt_PT
dc.identifier.doi10.3390/Entropy2021-09838pt_PT
dc.identifier.urihttp://hdl.handle.net/10400.22/23822
dc.language.isoengpt_PT
dc.publisherMDPIpt_PT
dc.relation.publisherversionhttps://sciforum.net/paper/view/9838pt_PT
dc.rights.urihttp://creativecommons.org/licenses/by-nc-nd/4.0/pt_PT
dc.subjectAtrial fibrillationpt_PT
dc.subjectFibrosispt_PT
dc.subjectShannon entropypt_PT
dc.subjectResting membrane potentialpt_PT
dc.subjectComplex order derivativespt_PT
dc.titleThe atrial resting potential distribution within a fibrotic zone and its effects on the conduction on non-fibrotic zones: A simulation studypt_PT
dc.typeconference object
dspace.entity.typePublication
oaire.citation.conferencePlace5 - 7 May 2021: onlinept_PT
oaire.citation.startPage9838pt_PT
oaire.citation.titleEntropy 2021: The Scientific Tool of the 21st Century session Entropy in Multidisciplinary Applicationspt_PT
rcaap.rightsopenAccesspt_PT
rcaap.typeconferenceObjectpt_PT

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