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Functional Invalidation of Putative Sudden Infant Death Syndrome-Associated Variants in the <i>KCNH2</i>-Encoded Kv11.1 Channel.


ABSTRACT:

Background

Heterologous functional validation studies of putative long-QT syndrome subtype 2-associated variants clarify their pathological potential and identify disease mechanism(s) for most variants studied. The purpose of this study is to clarify the pathological potential for rare nonsynonymous KCNH2 variants seemingly associated with sudden infant death syndrome.

Methods

Genetic testing of 292 sudden infant death syndrome cases identified 9 KCNH2 variants: E90K, R181Q, A190T, G294V, R791W, P967L, R1005W, R1047L, and Q1068R. Previous studies show R181Q-, P967L-, and R1047L-Kv11.1 channels function similar to wild-type Kv11.1 channels, whereas Q1068R-Kv11.1 channels accelerate inactivation gating. We studied the biochemical and biophysical properties for E90K-, G294V-, R791W-, and R1005W-Kv11.1 channels expressed in human embryonic kidney 293 cells; examined the electronic health records of patients who were genotype positive for the sudden infant death syndrome-linked KCNH2 variants; and simulated their functional impact using computational models of the human ventricular action potential.

Results

Western blot and voltage-clamping analyses of cells expressing E90K-, G294V-, R791W-, and R1005W-Kv11.1 channels demonstrated these variants express and generate peak Kv11.1 current levels similar to cells expressing wild-type-Kv11.1 channels, but R791W- and R1005W-Kv11.1 channels accelerated deactivation and activation gating, respectively. Electronic health records of patients with the sudden infant death syndrome-linked KCNH2 variants showed that the patients had median heart rate-corrected QT intervals <480 ms and none had been diagnosed with long-QT syndrome or experienced cardiac arrest. Simulating the impact of dysfunctional gating variants predicted that they have little impact on ventricular action potential duration.

Conclusions

We conclude that these rare Kv11.1 missense variants are not long-QT syndrome subtype 2-causative variants and therefore do not represent the pathogenic substrate for sudden infant death syndrome in the variant-positive infants.

SUBMITTER: Smith JL 

PROVIDER: S-EPMC11081002 | biostudies-literature | 2018 May

REPOSITORIES: biostudies-literature

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Publications

Functional Invalidation of Putative Sudden Infant Death Syndrome-Associated Variants in the &lt;i&gt;KCNH2&lt;/i&gt;-Encoded Kv11.1 Channel.

Smith Jennifer L JL   Tester David J DJ   Hall Allison R AR   Burgess Don E DE   Hsu Chun-Chun CC   Elayi Samy Claude SC   Anderson Corey L CL   January Craig T CT   Luo Jonathan Z JZ   Hartzel Dustin N DN   Mirshahi Uyenlinh L UL   Murray Michael F MF   Mirshahi Tooraj T   Ackerman Michael J MJ   Delisle Brian P BP  

Circulation. Arrhythmia and electrophysiology 20180501 5


<h4>Background</h4>Heterologous functional validation studies of putative long-QT syndrome subtype 2-associated variants clarify their pathological potential and identify disease mechanism(s) for most variants studied. The purpose of this study is to clarify the pathological potential for rare nonsynonymous <i>KCNH2</i> variants seemingly associated with sudden infant death syndrome.<h4>Methods</h4>Genetic testing of 292 sudden infant death syndrome cases identified 9 <i>KCNH2</i> variants: E90K  ...[more]