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A novel missense mutation causing a G487R substitution in the S2-S3 loop of human ether-à-go-go-related gene channel
Koshi Kinoshita1, Yoshiaki Yamaguchi, Kohki Nishide
1Department of Legal Medicine Second, Graduate School of Medical and Pharmaceutical Sciences, University of Toyama, Toyama, Japan.
Insights
A novel human ether-à-go-go-related gene (hERG) mutation, G487R, does not affect cardiac channel function or cell surface expression. This suggests hERG(G487R) is unlikely to cause severe cardiac disorders.
Area of Science:
- Cardiovascular Physiology
- Molecular Biology
- Genetics
Background:
- Mutations in the human ether-à-go-go-related gene (hERG) can lead to severe cardiac arrhythmias.
- A novel missense mutation, G487R, was identified in the S2-S3 loop of the hERG channel subunit.
Purpose of the Study:
- To investigate the functional consequences of the novel hERG(G487R) mutation.
- To determine if hERG(G487R) causes abnormalities in hERG channel function.
Main Methods:
- Whole-cell voltage-clamp recordings were performed on HEK-293T cells expressing wild-type hERG (hERG(WT)) and/or hERG(G487R).
- hERG channel-mediated currents, gating kinetics, and cell-surface expression were analyzed using immunocytochemistry.
Main Results:
- The current density, voltage- and time-dependences of tail currents were similar between hERG(WT) and hERG(G487R) expressing cells.
- Deactivation, inactivation, and recovery from inactivation kinetics were not different between groups.
- Cell-surface expression levels, assessed by membrane-to-cytoplasm immunoreactivity ratios, were comparable.
Conclusions:
- The hERG(G487R) mutation results in functional channels with normal gating and expression efficiency.
- Neither heterozygous nor homozygous inheritance of hERG(G487R) is expected to cause severe cardiac disorders.
- hERG(G487R) may represent a rare variant or polymorphism in an unusual region of the hERG channel subunit.
Introduction:
Mutations of human ether-à-go-go-related gene (hERG), which encodes a cardiac K(+) channel responsible for the acceleration of the repolarizing phase of an action potential and the prevention of premature action potential regeneration, often cause severe arrhythmic disorders. We found a novel missense mutation of hERG that results in a G487R substitution in the S2-S3 loop of the channel subunit [hERG(G487R)] from a family and determined whether this mutant gene could induce an abnormality in channel function.
Methods And Results:
We made whole-cell voltage-clamp recordings from HEK-293T cells transfected with wild-type hERG [hERG(WT)], hERG(G487R), or both. We measured hERG channel-mediated current as the "tail" of a depolarization-elicited current. The current density of the tail current and its voltage- and time-dependences were not different among all the cell groups. The time-courses of deactivation, inactivation, and recovery from inactivation and their voltage-dependences were not different among all the cell groups. Furthermore, we performed immunocytochemical analysis using an anti-hERG subunit antibody. The ratio of the immunoreactivity of the plasma membrane to that of the cytoplasm was not different between cells transfected with hERG(WT), hERG(G487R), or both.
Conclusion:
hERG(G487R) can produce functional channels with normal gating kinetics and cell-surface expression efficiency with or without the aid of hERG(WT). Therefore, neither the heterozygous nor homozygous inheritance of hERG(G487R) is thought to cause severe cardiac disorders. hERG(G487R) would be a candidate for a rare variant or polymorphism of hERG with an amino acid substitution in the unusual region of the channel subunit.
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