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Maisonneuve, R.

Publications and source records attributed to Maisonneuve, R..

2 recordsLinked to original sources

Concealed Conduction Vulnerability in Scn1b Haploinsufficiency Emerges with Osmotic Stress

RationaleSCN1B encodes the {beta}-subunits of the main cardiac voltage-gated sodium channel, NaV1.5. Variants are linked to cardiac conduction disease, often with concealed phenotypes. Whether {beta}1-subunits regulate conduction through nanoscale intercalated disc (ID) structures, e.g. perinexi, and ephaptic coupling remains unresolved. ObjectiveTest whether Scn1b haploinsufficiency induces latent conduction abnormalities that are unmasked by perturbations in extracellular nanodomains. Methods and ResultsAdult Scn1b+/- mice and wild-type (WT) littermates underwent multiscale phenotyping (qRT-PCR, Western blot, patch clamp, transmission electron microscopy (TEM), ex vivo optical mapping, in vivo ECG). Scn1b+/- hearts showed [~]50% reductions in Scn1b mRNA and {beta}1 protein without changes in canonical conduction proteins. Peak sodium current, baseline conduction velocity ex vivo, and baseline QRS duration in vivo were unchanged. However, TEM revealed increased baseline perinexal width in Scn1b+/- hearts. Osmotic expansion of the perinexus with mannitol slowed conduction to a greater extent in Scn1b+/- hearts and prolonged QRS duration in vivo. In contrast, perinexal narrowing with dextran 2MDa selectively increased conduction velocity in Scn1b+/- hearts. ConclusionsScn1b haploinsufficiency preserves baseline excitability and conduction but structurally remodels the ID at the nanoscale, increasing sensitivity to extracellular nanodomain perturbations. These data support a structural role for {beta}1-subunits in ephaptic coupling, and that conduction is maintained over a range of perinexal widths with pathological conduction slowing occurring beyond a critical width. Importantly, osmotic stress unmasks a concealed conduction phenotype, identifying extracellular nanodomain stability as a potential therapeutic target to mitigate arrhythmia risk in SCN1B-associated disease.

biophysics↗

Hypernatremia Enhances Transient Outward Potassium and Late Sodium Currents in a Mouse Model of Long QT Syndrome Type 3

Cardiac voltage-gated sodium channel gain-of-function (NavGOF) is characterized by action potential duration (APD) prolongation. Hypernatremia and perinexal widening synergistically prolong cardiac APD in guinea pig. However, guinea pig lack the transient outward potassium current (Ito), which could be increased by hypernatremia and thereby shorten APD. ObjectiveDetermine whether hypernatremia and perinexal expansion synergistically prolong APD in an animal model functionally expressing Ito. MethodsWhole-cell Ito was measured in isolated genetically-modified NavGOF ({Delta}KPQ) mouse ventricular myocytes. Ventricular APD at 30 (APD30) and 90 (APD90) percent repolarization were measured from optically mapped, Langendorff-perfused wild-type (WT) and {Delta}KPQ mouse hearts at different perfusate sodium concentrations (145 or 160mM), without and with the perinexal adhesion antagonist {beta}adp1. ResultsIn isolated myocytes, hypernatremia (160mM sodium) increased Ito. In whole-heart, hypernatremia significantly decreased both APD30 and APD90 in WT but only APD30 in {Delta}KPQ preparations. Perinexal disruption with {beta}adp1 did not change APD30 or APD90 in WT hearts, however it decreased APD30 and increased APD90 in {Delta}KPQ hearts. Combination of hypernatremia and {beta}adp1 did not synergistically change APD in {Delta}KPQ hearts. Computational models predict that Ito activation can prevent synergistic APD prolongation in mouse during hypernatremia and perinexal expansion that was observed previously in a guinea pig NavGOF model lacking Ito. ConclusionsHypernatremia during NavGOF prevents early ventricular repolarization due to Ito activation (mouse) and prolongs repolarization in the absence of Ito (guinea pig). Future studies in animal models electrophysiologically similar to humans are needed to determine if hypernatremia and perinexal expansion are proarrhythmic during NavGOF.

physiology↗