Atrial fibrillation is the most common arrhythmia, yet treatment strategies are sub-optimal due to incomplete understanding of the underlying mechanisms. Spatio-temporal sub-cellular calcium cycling may play a critical role in the development of alternans and spontaneous activity, which may underlie arrhythmia in the human atria. In this study, we construct a novel electrophysiological model of the human atrial myocyte which incorporates new data on atrial intracellular structure and explicitly accounts for variations in T-tubule organization. The model reproduces spatio-temporal calcium dynamics associated with normal cardiac excitation. In preliminary simulations, the model demonstrates that a loss of T-tubules can promote both alternans ...
<b>Rationale:</b> Understanding atrial fibrillation (AF) requires integrated understandi...
AbstractThis study investigated the mechanisms underlying the propagation of cytoplasmic calcium wav...
In cardiac cells, calcium is the mediator of excitation-contraction coupling. Dysfunctions in calciu...
Atrial fibrillation is the most common arrhythmia, yet treatment strategies are sub-optimal due to ...
The system of transverse and longitudinal sarcolemmal tubules (T-system) is observed to remodel in a...
In this thesis, we offer a detailed description of the Koivumäki model, a computational model for th...
In this study, we present an innovative mathematical modeling approach that allows detailed characte...
Clusters of ryanodine receptors within atrial myocytes are confined to spatially separated layers. I...
Mathematical models of cardiac electrophysiology are an important tool to investigate the underlyin...
Abstract Mathematical models of cardiac electrophysiology are an important tool to investigate the u...
Models of cardiac electrophysiology are widely used to supplement experimental results and to provid...
<div><p>Atrial fibrillation (AF) is the most common cardiac arrhythmia, but our knowledge of the arr...
The heart beating is produced by the synchronization of the cardiac cells' contraction. A dysregulat...
The complexity of the heart makes an intuitive understanding of the relative contribution of ion cha...
Mechano-electric regulations (MER) play an important role in the maintenance of cardiac performance....
<b>Rationale:</b> Understanding atrial fibrillation (AF) requires integrated understandi...
AbstractThis study investigated the mechanisms underlying the propagation of cytoplasmic calcium wav...
In cardiac cells, calcium is the mediator of excitation-contraction coupling. Dysfunctions in calciu...
Atrial fibrillation is the most common arrhythmia, yet treatment strategies are sub-optimal due to ...
The system of transverse and longitudinal sarcolemmal tubules (T-system) is observed to remodel in a...
In this thesis, we offer a detailed description of the Koivumäki model, a computational model for th...
In this study, we present an innovative mathematical modeling approach that allows detailed characte...
Clusters of ryanodine receptors within atrial myocytes are confined to spatially separated layers. I...
Mathematical models of cardiac electrophysiology are an important tool to investigate the underlyin...
Abstract Mathematical models of cardiac electrophysiology are an important tool to investigate the u...
Models of cardiac electrophysiology are widely used to supplement experimental results and to provid...
<div><p>Atrial fibrillation (AF) is the most common cardiac arrhythmia, but our knowledge of the arr...
The heart beating is produced by the synchronization of the cardiac cells' contraction. A dysregulat...
The complexity of the heart makes an intuitive understanding of the relative contribution of ion cha...
Mechano-electric regulations (MER) play an important role in the maintenance of cardiac performance....
<b>Rationale:</b> Understanding atrial fibrillation (AF) requires integrated understandi...
AbstractThis study investigated the mechanisms underlying the propagation of cytoplasmic calcium wav...
In cardiac cells, calcium is the mediator of excitation-contraction coupling. Dysfunctions in calciu...