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August 23, 2017Chaos An Interdisciplinary Journal of Nonlinear Science59 citations

Ephaptic coupling rescues conduction failure in weakly coupled cardiac tissue with voltage-gated gap junctions

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SWSeth H. Weinberg

Key Result

In a computational model, ephaptic coupling rescued conduction failure and increased conduction velocity in weakly coupled cardiac tissue, particularly at fast pacing rates.

Structured PICO

Does ephaptic coupling rescue conduction failure in weakly coupled cardiac tissue?

P
Population
Computational tissue model of weakly coupled cardiac tissue
I
Intervention
Ephaptic coupling (incorporation into computational model)
C
Comparator
Model without ephaptic coupling or neglecting gap junction voltage-gating
O
Outcome
Rescue of conduction failuresurrogate

Ephaptic coupling plays a crucial conduction-preserving role in weakly coupled cardiac tissue, particularly at rapid heart rates, suggesting it should not be neglected in computational models.

Abstract

Electrical conduction in cardiac tissue is usually considered to be primarily facilitated by gap junctions, providing a pathway between the intracellular spaces of neighboring cells. However, recent studies have highlighted the role of coupling via extracellular electric fields, also known as ephaptic coupling, particularly in the setting of reduced gap junction expression. Further, in the setting of reduced gap junctional coupling, voltage-dependent gating of gap junctions, an oft-neglected biophysical property in computational studies, produces a positive feedback that promotes conduction failure. We hypothesized that ephaptic coupling can break the positive feedback loop and rescue conduction failure in weakly coupled cardiac tissue. In a computational tissue model incorporating voltage-gated gap junctions and ephaptic coupling, we demonstrate that ephaptic coupling can rescue conduction failure in weakly coupled tissue. Further, ephaptic coupling increased conduction velocity in weakly coupled tissue, and importantly, reduced the minimum gap junctional coupling necessary for conduction, most prominently at fast pacing rates. Finally, we find that, although neglecting gap junction voltage-gating results in negligible differences in well coupled tissue, more significant differences occur in weakly coupled tissue, greatly underestimating the minimal gap junctional coupling that can maintain conduction. Our study suggests that ephaptic coupling plays a conduction-preserving role, particularly at rapid heart rates.

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Cite This Study

Seth H. Weinberg (2017) studied Cardiac conduction failure. Ephaptic coupling vs. Absence of ephaptic coupling was evaluated on Conduction failure and conduction velocity. In a computational model, ephaptic coupling rescued conduction failure and increased conduction velocity in weakly coupled cardiac tissue, particularly at fast pacing rates.

synapsesocial.com/papers/6a13061706ed52b5c2c0f117https://doi.org/10.1063/1.4999602
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