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Updated: Mar 1, 2026

Brain Slice Biotinylation: An Ex Vivo Approach to Measure Region-specific Plasma Membrane Protein Trafficking in Adult Neurons
Published on: April 3, 2014
Molecular and functional characterization of DENND3 as a novel regulator of ion channel trafficking
Shan Gao1, Dan Ye1, Raquel Neves1
1Windland Smith Rice Sudden Death Genomics Laboratory, Department of Molecular Pharmacology & Experimental Therapeutics, Mayo Clinic, Rochester, Minnesota.
Background:
Genome sequencing of a pedigree with familial ventricular fibrillation identified an ultrarare missense variant, p.R534S, in the DENND3 gene. DENND3 is a guanine nucleotide exchange factor for Rab guanosine triphosphatases (GTPases), which regulate intracellular membrane trafficking, including cardiac ion channels.
Objective:
The purpose of this study was to assess the impact of DENND3 as a potential genetic modifier contributing to lethal arrhythmia syndromes including familial ventricular fibrillation.
Methods:
The variant's impact was assessed using induced pluripotent stem cell-derived cardiomyocytes (iPSC-CMs) and TSA201 cells. Super-resolution Airyscan imaging (LSM980 Zeiss, Jena, Germany) and the GTPase-Glo assay (Promega, Madison, WI) were used to investigate the distribution and activity of Rab proteins. Electrophysiological analyses measured ion channel currents and cellular arrhythmogenicity.
Results:
The DENND3-p.R534S variant increased the membrane localization of KCNQ1-, KCNH2-, SCN5A-, and CACNA1C-encoded ion channels in both TSA201 cells and iPSC-CMs. Electrophysiological studies revealed an increase in KCNH2-encoded rapid delayed rectifying K+ channel and CACNA1C-encoded L-type calcium channel. iPSC-CMs expressing DENND3-p.R534S exhibited erratic electrical activity, including irregular beating patterns, early afterdepolarizations, and delayed afterdepolarizations. Rab5 showed ectopic distribution in cells expressing DENND3-p.R534S, while other Rab proteins did not display such changes. The GTPase activity of Rab5 increased, while Rab12 activity decreased in the presence of the variant.
Conclusion:
Our findings unveiled a mechanism whereby the DENND3-p.R534S variant disrupts Rab-mediated trafficking pathways critical for ion channel distribution and cellular function. This study reveals for the first time a potential association of DENND3 and Rab GTPases in cardiac physiology and arrhythmogenic risk.
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