Computational cardiac modeling reveals mechanisms of ventricular arrhythmogenesis in long QT syndrome type 8: CACNA1C R858H mutation linked to ventricular fibrillation

23Citations
Citations of this article
23Readers
Mendeley users who have this article in their library.

Abstract

Functional analysis of the L-type calcium channel has shown that the CACNA1C R858H mutation associated with severe QT interval prolongation may lead to ventricular fibrillation (VF). This study investigated multiple potential mechanisms by which the CACNA1C R858H mutation facilitates and perpetuates VF. The Ten Tusscher-Panfilov (TP06) human ventricular cell models incorporating the experimental data on the kinetic properties of L-type calcium channels were integrated into one-dimensional (1D) fiber, 2D sheet, and 3D ventricular models to investigate the pro-arrhythmic effects of CACNA1C mutations by quantifying changes in intracellular calcium handling, action potential profiles, action potential duration restitution (APDR) curves, dispersion of repolarization (DOR), QT interval and spiral wave dynamics. R858H "mutant" L-type calcium current (ICaL) augmented sarcoplasmic reticulum calcium content, leading to the development of afterdepolarizations at the single cell level and focal activities at the tissue level. It also produced inhomogeneous APD prolongation, causing QT prolongation and repolarization dispersion amplification, rendering R858H "mutant" tissue more vulnerable to the induction of reentry compared with other conditions. In conclusion, altered ICaL due to the CACNA1C R858H mutation increases arrhythmia risk due to afterdepolarizations and increased tissue vulnerability to unidirectional conduction block. However, the observed reentry is not due to afterdepolarizations (not present in our model), but rather to a novel blocking mechanism.

References Powered by Scopus

Ca<inf>V</inf>1.2 calcium channel dysfunction causes a multisystem disorder including arrhythmia and autism

1313Citations
N/AReaders
Get full text

A model for human ventricular tissue

1152Citations
N/AReaders
Get full text

Simulation of the undiseased human cardiac ventricular action potential: Model formulation and experimental validation

968Citations
N/AReaders
Get full text

Cited by Powered by Scopus

CARDIAC TRANSMEMBRANE ION CHANNELS AND ACTION POTENTIALS: CELLULAR PHYSIOLOGY AND ARRHYTHMOGENIC BEHAVIOR

129Citations
N/AReaders
Get full text

Calcium in Brugada syndrome: Questions for future research

27Citations
N/AReaders
Get full text

Ionic and cellular mechanisms underlying TBX5/PITX2 insufficiency-induced atrial fibrillation: Insights from mathematical models of human atrial cells

24Citations
N/AReaders
Get full text

Register to see more suggestions

Mendeley helps you to discover research relevant for your work.

Already have an account?

Cite

CITATION STYLE

APA

Bai, J., Wang, K., Liu, Y., Li, Y., Liang, C., Luo, G., … Zhang, H. (2017). Computational cardiac modeling reveals mechanisms of ventricular arrhythmogenesis in long QT syndrome type 8: CACNA1C R858H mutation linked to ventricular fibrillation. Frontiers in Physiology, 8(OCT). https://doi.org/10.3389/fphys.2017.00771

Readers' Seniority

Tooltip

PhD / Post grad / Masters / Doc 9

60%

Researcher 4

27%

Professor / Associate Prof. 2

13%

Readers' Discipline

Tooltip

Computer Science 3

27%

Engineering 3

27%

Biochemistry, Genetics and Molecular Bi... 3

27%

Neuroscience 2

18%

Save time finding and organizing research with Mendeley

Sign up for free