The KCNJ2 E299V mutation results in an abnormally large outward IK1 (P < 0.001 versus wild type) due to a lack of inward rectification, leading to short QT syndrome and atrial fibrillation.
Case Report (n=1)
Does the KCNJ2 E299V mutation alter IK1 current and cause short QT syndrome 3 with atrial and ventricular proarrhythmia?
The KCNJ2 E299V mutation causes short QT syndrome type 3 by eliminating inward rectification, leading to a large outward IK1 current that promotes atrial fibrillation and ventricular proarrhythmia.
p-value: p=<0.001
We describe a mutation (E299V) in KCNJ2, the gene that encodes the strong inward rectifier K(+) channel protein (Kir2.1), in an 11-y-old boy. The unique short QT syndrome type-3 phenotype is associated with an extremely abbreviated QT interval (200 ms) on ECG and paroxysmal atrial fibrillation. Genetic screening identified an A896T substitution in a highly conserved region of KCNJ2 that resulted in a de novo mutation E299V. Whole-cell patch-clamp experiments showed that E299V presents an abnormally large outward IK1 at potentials above -55 mV (P < 0.001 versus wild type) due to a lack of inward rectification. Coexpression of wild-type and mutant channels to mimic the heterozygous condition still resulted in a large outward current. Coimmunoprecipitation and kinetic analysis showed that E299V and wild-type isoforms may heteromerize and that their interaction impairs function. The homomeric assembly of E299V mutant proteins actually results in gain of function. Computer simulations of ventricular excitation and propagation using both the homozygous and heterozygous conditions at three different levels of integration (single cell, 2D, and 3D) accurately reproduced the electrocardiographic phenotype of the proband, including an exceedingly short QT interval with merging of the QRS and the T wave, absence of ST segment, and peaked T waves. Numerical experiments predict that, in addition to the short QT interval, absence of inward rectification in the E299V mutation should result in atrial fibrillation. In addition, as predicted by simulations using a geometrically accurate three-dimensional ventricular model that included the His-Purkinje network, a slight reduction in ventricular excitability via 20% reduction of the sodium current should increase vulnerability to life-threatening ventricular tachyarrhythmia.
Deo et al. (Mon,) conducted a case report in Short QT syndrome type-3 (n=1). KCNJ2 E299V mutation vs. Wild type was evaluated on Outward IK1 at potentials above -55 mV (p=<0.001). The KCNJ2 E299V mutation results in an abnormally large outward IK1 (P < 0.001 versus wild type) due to a lack of inward rectification, leading to short QT syndrome and atrial fibrillation.