KCNQ1 p.D446E Variant as a Risk Allele for Arrhythmogenic Phenotypes: Electrophysiological Characterization Reveals a Complex Phenotype Affecting the Slow Delayed Rectifier Potassium Current (IKs) Voltage Dependence by Causing a Hyperpolarizing Shift and a Lack of Response to Protein Kinase A Activation

KCNQ1 p.D446E 变异是心律失常表型的风险等位基因:电生理学表征揭示了一种复杂的表型,通过引起超极化转变和缺乏对蛋白激酶 A 激活的反应来影响慢延迟整流钾电流 (IKs) 电压依赖性

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作者:Antonia González-Garrido, Omar López-Ramírez, Abel Cerda-Mireles, Thania Navarrete-Miranda, Aranza Iztanami Flores-Arenas, Arturo Rojo-Domínguez, Leticia Arregui, Pedro Iturralde, Erika Antúnez-Argüelles, Mayra Domínguez-Pérez, Leonor Jacobo-Albavera, Alessandra Carnevale, Teresa Villarreal-Molina

Abstract

Genetic testing is crucial in inherited arrhythmogenic channelopathies; however, the clinical interpretation of genetic variants remains challenging. Incomplete penetrance, oligogenic, polygenic or multifactorial forms of channelopathies further complicate variant interpretation. We identified the KCNQ1/p.D446E variant in 2/63 patients with long QT syndrome, 30-fold more frequent than in public databases. We thus characterized the biophysical phenotypes of wildtype and mutant IKs co-expressing these alleles with the β-subunit minK in HEK293 cells. KCNQ1 p.446E homozygosity significantly shifted IKs voltage dependence to hyperpolarizing potentials in basal conditions (gain of function) but failed to shift voltage dependence to hyperpolarizing potentials (loss of function) in the presence of 8Br-cAMP, a protein kinase A activator. Basal IKs activation kinetics did not differ among genotypes, but in response to 8Br-cAMP, IKs 446 E/E (homozygous) activation kinetics were slower at the most positive potentials. Protein modeling predicted a slower transition of the 446E Kv7.1 tetrameric channel to the stabilized open state. In conclusion, biophysical and modelling evidence shows that the KCNQ1 p.D446E variant has complex functional consequences including both gain and loss of function, suggesting a contribution to the pathogenesis of arrhythmogenic phenotypes as a functional risk allele.

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