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

机译:反向耦合抵抗弱耦合心脏组织的传导失败,具有电压门间隙结

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摘要

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 oftneglected 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. Published by AIP Publishing.
机译:心脏组织中的电导通常被认为是通过间隙连接的主要促进,在相邻细胞的细胞内空间之间提供通路。然而,最近的研究突出了通过细胞外电场偶联的作用,也称为悔错的偶联,特别是在变化的间隙结表达的设置中。此外,在设置降低的间隙结耦合,间隙结的电压依赖性栅极,计算研究中的奥特内特的生物物质,产生促进导电失败的正反馈。我们假设触觉耦合可以破坏阳性反馈回路并在弱耦合的心脏组织中抢救导通失败。在包含电压门控间隙结的计算组织模型中,我们证明了触觉耦合可以挽救在弱耦合的组织中的传导失败。此外,切换耦合增加弱耦合组织中的传导速度,并且重要的是,最突出的起搏速率最大地减小了传导所需的最小间隙结耦合。最后,我们发现,尽管忽略间隙结电压门导致良好耦合组织的差异可忽略不计,但在弱耦合组织中发生更大的差异,大大低估了可以保持传导的最小间隙连接耦合。我们的研究表明,Ephaptic耦合起到导致保存的作用,特别是在快速的心率下。通过AIP发布发布。

著录项

  • 来源
    《Chaos》 |2017年第9期|共12页
  • 作者

    Weinberg S. H.;

  • 作者单位

    Virginia Commonwealth Univ 401 West Main St Richmond VA 23284 USA;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 自然科学总论;
  • 关键词

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