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February 27, 20260 citations

Intercalated disk structure, tissue heterogeneity and ion channel distribution modulate conduction and local calcium influx.

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NMNicolae MoiseHSHeather L. StruckmanJSJames W. Smyth

Key Result

Cleft sodium depletion increases local intercalated disk calcium current, while sodium channel or gap junction clustering slows conduction and tissue heterogeneity leads to conduction block.

Key Points

  • This research examines how intercalated disk structure and ion channel distribution affect cardiac conduction and calcium influx.
  • Expanded model to include ionic dynamics in extracellular cleft
  • Analyzed the effects of ion channel clustering
  • Investigated tissue-level conduction implications due to ID structure changes
  • Ionic flux variations at the cleft significantly alter local ionic currents
  • Sodium depletion leads to compensatory calcium influx, enhancing calcium current
  • Channel clustering contributes to slowed conduction and conduction blocks in tissues

Structured PICO

P
Population
Computational model of cardiomyocyte intercalated disk and extracellular cleft
I
Intervention
Modifications to intercalated disk properties including ion channel clustering, gap junction clustering, and tissue heterogeneity
C
Comparator
Baseline/unmodified intercalated disk properties
O
Outcome
Cardiac conduction velocity and local calcium influxsurrogate

Computational modeling reveals that local ion channel clustering and intercalated disk structural heterogeneity regulate cardiac conduction and local calcium currents, suggesting a novel mechanism for cardiac re-entry.

Abstract

The intercalated disk (ID) is the specialized cellular structure that connects cardiomyocytes. Electrogenic proteins are known to be preferentially located at the ID, such as the voltage-gated sodium channel (NaV1.5), inward-rectifying potassium channel (Kir2.1), sodium-potassium ATPase (NKA) and the L-type calcium channel (CaV1.2). Experimental evidence shows that modifying ID properties alters conduction, and that perturbed ID structures are found in patients with cardiac arrhythmias. In our previous work, we have shown that chamber-specific ID structures and changes in intermembrane distance lead to changes in tissue-level conduction velocity. Here, we expand our model to include the dynamics of multiple ions within the extracellular cleft as well as representations of multiple ionic currents and gap junctions (GJs) within the ID. First, we observe that ionic fluxes at the cleft critically alter local ionic currents: Na+ depletion in the cleft leads to a compensatory influx of Ca2+, which in turn drives a significant increase in ID calcium current. Furthermore, we find that concentrated Na+ channel or GJ clusters lead to slowed conduction at the tissue level. Finally, tissue-scale heterogeneities in ID structure lead to conduction block or spatially heterogeneous conduction velocity, suggesting a newly identified mechanism for cardiac re-entry. Our results show that local ion channel clustering can regulate cardiac conduction. Moreover, the interplay between ion channel localization and ion concentration dynamics suggests a novel mechanism to enhance robustness of local calcium currents within the ID. KEY POINTS: Intercalated disk and extracellular cleft structure have been previously shown to modulate cardiac conduction and regulate local sodium currents. In this study, we find that cleft sodium depletion drives cleft calcium influx within the extracellular cleft space and increases local intercalated disk calcium current. Enhanced sodium channel or gap junction clustering tends to slow conduction. Tissue heterogeneity in intercalated disk disruption and channel clustering can lead to localized conduction block.

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Cite This Study

Moise et al. (2026) studied this question. Cleft sodium depletion increases local intercalated disk calcium current, while sodium channel or gap junction clustering slows conduction and tissue heterogeneity leads to conduction block.

synapsesocial.com/papers/69a1357fed1d949a99abf6e6https://doi.org/10.1113/jp290135
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Intercalated disk nanoscale structure regulates cardiac conduction2021 · 56 citations
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  4. 4Localization of Sodium Channels in Intercalated Disks Modulates Cardiac Conduction2002 · 282 citations
  5. 5Sodium channels and the intercalated disk – it is all about location, location, location2021