Key result
NaV1.5 and N-cadherin cluster together at the cardiac intercalated disc to form functional adhesion/excitability nodes, and loss of NaV1.5 expression reduces intercellular adhesion strength.
p-value: p=<0.01
Demonstrates the existence of adhesion/excitability nodes at the cardiac intercalated disc, providing a potential structural mechanism for cardiomyopathies associated with sodium channel mutations.
May link NaV1.5 loss to weakened coupling in channelopathies; leaves open whether adhesion nodes are viable therapeutic targets.
Intercellular adhesion and electrical excitability are considered separate cellular properties. Studies of myelinated fibres, however, show that voltage-gated sodium channels (VGSCs) aggregate with cell adhesion molecules at discrete subcellular locations, such as the nodes of Ranvier. Demonstration of similar macromolecular organization in cardiac muscle is missing. Here we combine nanoscale-imaging (single-molecule localization microscopy; electron microscopy; and 'angle view' scanning patch clamp) with mathematical simulations to demonstrate distinct hubs at the cardiac intercalated disc, populated by clusters of the adhesion molecule N-cadherin and the VGSC NaV1.5. We show that the N-cadherin-NaV1.5 association is not random, that NaV1.5 molecules in these clusters are major contributors to cardiac sodium current, and that loss of NaV1.5 expression reduces intercellular adhesion strength. We speculate that adhesion/excitability nodes are key sites for crosstalk of the contractile and electrical molecular apparatus and may represent the structural substrate of cardiomyopathies in patients with mutations in molecules of the VGSC complex.
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Leo‐Macías et al. (2016) studied this question. NaV1.5 knockdown vs. Control cells was evaluated on Intercellular adhesion strength (fragmentation after dispase treatment) (p=<0.01). NaV1.5 and N-cadherin cluster together at the cardiac intercalated disc to form functional adhesion/excitability nodes, and loss of NaV1.5 expression reduces intercellular adhesion strength.
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