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An LQT mutant minK alters KvLQT1 trafficking
Andrew Krumerman1, Xiaohong Gao, Jin-Song Bian
1Department of Medicine, Albert Einstein College of Medicine, Bronx, NY 10461, USA.
Abstract:
Cardiac I(Ks), the slowly activated delayed-rectifier K(+) current, is produced by the protein complex composed of alpha- and beta-subunits: KvLQT1 and minK. Mutations of genes encoding KvLQT1 and minK are responsible for the hereditary long QT syndrome (loci LQT1 and LQT5, respectively). MinK-L51H fails to traffic to the cell surface, thereby failing to produce effective I(Ks). We examined the effects that minK-L51H and an endoplasmic reticulum (ER)-targeted minK (minK-ER) exerted over the electrophysiology and biosynthesis of coexpressed KvLQT1. Both minK-L51H and minK-ER were sequestered primarily in the ER as confirmed by lack of plasma membrane expression. Glycosylation and immunofluorescence patterns of minK-L51H were qualitatively different for minK-ER, suggesting differences in trafficking. Cotransfection with the minK mutants resulted in reduced surface expression of KvLQT1 as assayed by whole cell voltage clamp and immunofluorescence. MinK-L51H reduced current amplitude by 91% compared with wild-type (WT) minK/KvLQT1, and the residual current was identical to KvLQT1 without minK. The phenotype of minK-L51H on I(Ks) was not dominant because coexpressed WT minK rescued the current and surface expression. Collectively, our data suggest that ER quality control prevents minK-L51H/KvLQT1 complexes from trafficking to the plasma membrane, resulting in decreased I(Ks). This is the first demonstration that a minK LQT mutation is capable of conferring trafficking defects onto its associated alpha-subunit.
Insights
A mutation in the minK gene (minK-L51H) prevents the formation of cardiac I(Ks) channels by causing protein misfolding and retention in the endoplasmic reticulum, leading to long QT syndrome.
Area of Science:
- Cardiovascular physiology
- Molecular biology
- Genetics
Background:
- Cardiac I(Ks) current, essential for heart rhythm, is formed by KvLQT1 and minK subunits.
- Mutations in KvLQT1 and minK genes cause hereditary long QT syndrome.
- The minK-L51H mutation impairs minK trafficking to the cell surface.
Purpose of the Study:
- To investigate the effects of the minK-L51H mutation on KvLQT1 electrophysiology and biosynthesis.
- To understand the role of endoplasmic reticulum (ER) retention in the minK-L51H phenotype.
Main Methods:
- Coexpression of mutant minK (minK-L51H, minK-ER) with KvLQT1 in cells.
- Assessing protein localization using immunofluorescence and cell surface expression.
- Measuring I(Ks) current amplitude using whole-cell voltage clamp.
- Analyzing protein glycosylation patterns.
Main Results:
- Both minK-L51H and ER-targeted minK were retained in the ER, reducing KvLQT1 surface expression.
- minK-L51H reduced I(Ks) current amplitude by 91% compared to wild-type.
- The trafficking defect of minK-L51H was not dominant, as wild-type minK could rescue the current.
- ER quality control mechanisms prevented the trafficking of minK-L51H/KvLQT1 complexes.
Conclusions:
- The minK-L51H mutation causes a trafficking defect, leading to decreased I(Ks) current and contributing to long QT syndrome.
- This study demonstrates that a minK mutation can induce trafficking defects in its associated KvLQT1 alpha-subunit.
- ER quality control plays a critical role in preventing the surface expression of misfolded minK/KvLQT1 complexes.