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Updated: May 23, 2026

Pull-down of Calmodulin-binding Proteins
Published on: January 23, 2012
Ca2+/calmodulin-dependent protein kinase II (CaMKII) regulates cardiac sodium channel NaV1.5 gating by multiple
Nicole M Ashpole1, Anthony W Herren, Kenneth S Ginsburg
1Indiana University School of Medicine, Indianapolis, Indiana 46202, USA.
Abstract:
The cardiac Na(+) channel Na(V)1.5 current (I(Na)) is critical to cardiac excitability, and altered I(Na) gating has been implicated in genetic and acquired arrhythmias. Ca(2+)/calmodulin-dependent protein kinase II (CaMKII) is up-regulated in heart failure and has been shown to cause I(Na) gating changes that mimic those induced by a point mutation in humans that is associated with combined long QT and Brugada syndromes. We sought to identify the site(s) on Na(V)1.5 that mediate(s) the CaMKII-induced alterations in I(Na) gating. We analyzed both CaMKII binding and CaMKII-dependent phosphorylation of the intracellularly accessible regions of Na(V)1.5 using a series of GST fusion constructs, immobilized peptide arrays, and soluble peptides. A stable interaction between δ(C)-CaMKII and the intracellular loop between domains 1 and 2 of Na(V)1.5 was observed. This region was also phosphorylated by δ(C)-CaMKII, specifically at the Ser-516 and Thr-594 sites. Wild-type (WT) and phosphomutant hNa(V)1.5 were co-expressed with GFP-δ(C)-CaMKII in HEK293 cells, and I(Na) was recorded. As observed in myocytes, CaMKII shifted WT I(Na) availability to a more negative membrane potential and enhanced accumulation of I(Na) into an intermediate inactivated state, but these effects were abolished by mutating either of these sites to non-phosphorylatable Ala residues. Mutation of these sites to phosphomimetic Glu residues negatively shifted I(Na) availability without the need for CaMKII. CaMKII-dependent phosphorylation of Na(V)1.5 at multiple sites (including Thr-594 and Ser-516) appears to be required to evoke loss-of-function changes in gating that could contribute to acquired Brugada syndrome-like effects in heart failure.
Insights
Calcium/calmodulin-dependent protein kinase II (CaMKII) alters cardiac sodium channel (Na(V)1.5) function by phosphorylating specific sites. This phosphorylation contributes to arrhythmias seen in heart failure and Brugada syndrome.
Area of Science:
- Cardiovascular Physiology
- Molecular Cardiology
- Ion Channel Function
Background:
- Cardiac sodium channel Na(V)1.5 current (I(Na)) is crucial for heart excitability.
- Altered I(Na) gating is linked to cardiac arrhythmias.
- Ca(2+)/calmodulin-dependent protein kinase II (CaMKII) is upregulated in heart failure, inducing I(Na) gating changes.
Purpose of the Study:
- Identify the specific sites on Na(V)1.5 responsible for CaMKII-induced I(Na) gating alterations.
- Investigate the role of CaMKII phosphorylation in Na(V)1.5 function.
Main Methods:
- Utilized GST fusion constructs, peptide arrays, and soluble peptides to analyze CaMKII binding and phosphorylation.
- Co-expressed wild-type and phosphomutant hNa(V)1.5 with GFP-δ(C)-CaMKII in HEK293 cells.
- Recorded I(Na) using electrophysiology to assess channel function.
Main Results:
- Identified a direct interaction between δ(C)-CaMKII and the intracellular loop (domains 1-2) of Na(V)1.5.
- Phosphorylation of Na(V)1.5 by δ(C)-CaMKII occurred specifically at Ser-516 and Thr-594.
- CaMKII-induced shifts in I(Na) availability and inactivation were abolished by alanine mutations at Ser-516 and Thr-594.
- Phosphomimetic glutamate mutations at these sites mimicked CaMKII effects without CaMKII presence.
Conclusions:
- CaMKII-dependent phosphorylation of Na(V)1.5 at Ser-516 and Thr-594 is essential for altered I(Na) gating.
- These phosphorylation events contribute to loss-of-function changes in gating.
- This mechanism may underlie acquired Brugada syndrome-like effects in heart failure.
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