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February 19, 2011AJP Heart and Circulatory Physiology59 citationsOpen Access

Ionic mechanisms of electrophysiological properties and repolarization abnormalities in rabbit Purkinje fibers

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ACAlberto CorriasWGWayne R. GilesBRBlanca Rodríguez

Structured PICO

P
Population
Rabbit Purkinje cells (computational model based on voltage-clamp and action potential experimental recordings)
I
Intervention
Simulated pharmacological interventions (inward rectifier K(+) current block, rapid delayed rectifier K(+) current block, late Na(+) current increase, enhanced L-type Ca(2+) current)
C
Comparator
Baseline computational model
O
Outcome
Action potential (AP) morphology, duration, and early afterdepolarization (EAD) generationsurrogate

A novel biophysically detailed computational model of rabbit Purkinje electrophysiology demonstrates that enhanced L-type Ca2+ current dominates in early afterdepolarization genesis.

Abstract

Purkinje cells play an important role in drug-induced arrhythmogenesis and are widely used in preclinical drug safety assessments. Repolarization abnormalities such as action potential (AP) prolongation and early afterdeploarizations (EAD) are often observed in vitro upon pharmacological interventions. However, because drugs do not act on only one defined target, it is often difficult to fully explain the mechanisms of action and their potential arrhythmogenicity. Computational models, when appropriately detailed and validated, can be used to gain mechanistic insights into the mechanisms of action of certain drugs. Nevertheless, no model of Purkinje electrophysiology that is able to reproduce characteristic Purkinje responses to drug-induced changes in ionic current conductances such as AP prolongation and EAD generation currently exists. In this study, a novel biophysically detailed model of rabbit Purkinje electrophysiology was developed by integration of data from voltage-clamp and AP experimental recordings. Upon validation, we demonstrate that the model reproduces many key electrophysiological properties of rabbit Purkinje cells. These include: AP morphology and duration, both input resistance and rate dependence properties as well as response to hyperkalemia. Pharmacological interventions such as inward rectifier K(+) current and rapid delayed rectifier K(+) current block as well as late Na(+) current increase result in significant AP changes. However, enhanced L-type Ca(2+) current (i(CaL)) dominates in EAD genesis in Purkinje fibers. In addition, i(CaL) inactivation dynamics and intercellular coupling in tissue strongly modulate EAD formation. We conclude that EAD generation in Purkinje cells is mediated by an increase in i(CaL) and modulated by its inactivation kinetics.

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Cite This Study

Corrias et al. (2011) studied this question.

synapsesocial.com/papers/6a1be90cea84844e355f2ac9https://doi.org/10.1152/ajpheart.01170.2010
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