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Mechanisms of spontaneous Ca2+ release-mediated arrhythmia in a novel 3D human atrial myocyte model: I. Transverse-axial tubule variation.
Zhang, Xianwei; Ni, Haibo; Morotti, Stefano; Smith, Charlotte E R; Sato, Daisuke; Louch, William E; Edwards, Andrew G; Grandi, Eleonora.
Afiliación
  • Zhang X; Department of Pharmacology, University of California Davis, Davis, CA, USA.
  • Ni H; Department of Pharmacology, University of California Davis, Davis, CA, USA.
  • Morotti S; Department of Pharmacology, University of California Davis, Davis, CA, USA.
  • Smith CER; Department of Pharmacology, University of California Davis, Davis, CA, USA.
  • Sato D; Department of Pharmacology, University of California Davis, Davis, CA, USA.
  • Louch WE; Institute for Experimental Medical Research, Oslo University Hospital and University of Oslo, Oslo, Norway.
  • Edwards AG; K.G. Jebsen Centre for Cardiac Research, University of Oslo, Oslo, Norway.
  • Grandi E; Department of Pharmacology, University of California Davis, Davis, CA, USA.
J Physiol ; 601(13): 2655-2683, 2023 Jul.
Article en En | MEDLINE | ID: mdl-36094888
ABSTRACT
Intracellular calcium (Ca2+ ) cycling is tightly regulated in the healthy heart ensuring effective contraction. This is achieved by transverse (t)-tubule membrane invaginations that facilitate close coupling of key Ca2+ -handling proteins such as the L-type Ca2+ channel and Na+ -Ca2+ exchanger (NCX) on the cell surface with ryanodine receptors (RyRs) on the intracellular Ca2+ store. Although less abundant and regular than in the ventricle, t-tubules also exist in atrial myocytes as a network of transverse invaginations with axial extensions known as the transverse-axial tubule system (TATS). In heart failure and atrial fibrillation, there is TATS remodelling that is associated with aberrant Ca2+ -handling and Ca2+ -induced arrhythmic activity; however, the mechanism underlying this is not fully understood. To address this, we developed a novel 3D human atrial myocyte model that couples electrophysiology and Ca2+ -handling with variable TATS organization and density. We extensively parameterized and validated our model against experimental data to build a robust tool examining TATS regulation of subcellular Ca2+ release. We found that varying TATS density and thus the localization of key Ca2+ -handling proteins has profound effects on Ca2+ handling. Following TATS loss, there is reduced NCX that results in increased cleft Ca2+ concentration through decreased Ca2+ extrusion. This elevated Ca2+ increases RyR open probability causing spontaneous Ca2+ releases and the promotion of arrhythmogenic waves (especially in the cell interior) leading to voltage instabilities through delayed afterdepolarizations. In summary, the present study demonstrates a mechanistic link between TATS remodelling and Ca2+ -driven proarrhythmic behaviour that probably reflects the arrhythmogenic state observed in disease. KEY POINTS Transverse-axial tubule systems (TATS) modulate Ca2+ handling and excitation-contraction coupling in atrial myocytes, with TATS remodelling in heart failure and atrial fibrillation being associated with altered Ca2+ cycling and subsequent arrhythmogenesis. To investigate the poorly understood mechanisms linking TATS variation and spontaneous Ca2+ release, we built, parameterized and validated a 3D human atrial myocyte model coupling electrophysiology and spatially-detailed subcellular Ca2+ handling governed by the TATS. Simulated TATS loss causes diastolic Ca2+ and voltage instabilities through reduced Na+ -Ca2+ exchanger-mediated Ca2+ removal, cleft Ca2+ accumulation and increased ryanodine receptor open probability, resulting in spontaneous Ca2+ release and promotion of arrhythmogenic waves and delayed afterdepolarizations. At fast electrical rates typical of atrial tachycardia/fibrillation, spontaneous Ca2+ releases are larger and more frequent in the cell interior than at the periphery. Our work provides mechanistic insight into how atrial TATS remodelling can lead to Ca2+ -driven instabilities that may ultimately contribute to the arrhythmogenic state in disease.
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Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Asunto principal: Fibrilación Atrial / Insuficiencia Cardíaca Tipo de estudio: Prognostic_studies Límite: Humans Idioma: En Revista: J Physiol Año: 2023 Tipo del documento: Article País de afiliación: Estados Unidos

Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Asunto principal: Fibrilación Atrial / Insuficiencia Cardíaca Tipo de estudio: Prognostic_studies Límite: Humans Idioma: En Revista: J Physiol Año: 2023 Tipo del documento: Article País de afiliación: Estados Unidos
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