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April 30, 2007Circulation465 citationsOpen Access

Clinical Aspects of Type-1 Long-QT Syndrome by Location, Coding Type, and Biophysical Function of Mutations Involving the KCNQ1 Gene

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AMArthur J. MossWSWataru ShimizuAWArthur A.M. Wilde

Structured PICO

Does the location and biophysical function of KCNQ1 mutations affect the risk of cardiac events in patients with Type-1 Long-QT Syndrome?

P
Population
600 patients with 77 different KCNQ1 mutations (Type-1 long-QT syndrome) in 101 proband-identified families derived from the US (n=425), Netherlands (n=93), and Japanese (n=82) LQTS Registries.
I
Intervention
KCNQ1 mutations located in the transmembrane portion of the ion channel protein and/or having dominant-negative (>50% reduction) biophysical function
C
Comparator
KCNQ1 mutations located in the C-terminus and/or having haploinsufficiency (≤50% reduction) biophysical function
O
Outcome
First occurrence of time-dependent cardiac events from birth through age 40 yearscomposite

In type-1 LQTS, mutations in the transmembrane portion of the KCNQ1 channel and those causing dominant-negative ion channel dysfunction independently increase the risk of clinical cardiac events.

Abstract

BACKGROUND: Type-1 long-QT syndrome (LQTS) is caused by loss-of-function mutations in the KCNQ1-encoded I(Ks) cardiac potassium channel. We evaluated the effect of location, coding type, and biophysical function of KCNQ1 mutations on the clinical phenotype of this disorder. METHODS AND RESULTS: We investigated the clinical course in 600 patients with 77 different KCNQ1 mutations in 101 proband-identified families derived from the US portion of the International LQTS Registry (n=425), the Netherlands' LQTS Registry (n=93), and the Japanese LQTS Registry (n=82). The Cox proportional hazards survivorship model was used to evaluate the independent contribution of clinical and genetic factors to the first occurrence of time-dependent cardiac events from birth through age 40 years. The clinical characteristics, distribution of mutations, and overall outcome event rates were similar in patients enrolled from the 3 geographic regions. Biophysical function of the mutations was categorized according to dominant-negative (> 50%) or haploinsufficiency (< or = 50%) reduction in cardiac repolarizing I(Ks) potassium channel current. Patients with transmembrane versus C-terminus mutations (hazard ratio, 2.06; P<0.001) and those with mutations having dominant-negative versus haploinsufficiency ion channel effects (hazard ratio, 2.26; P<0.001) were at increased risk for cardiac events, and these genetic risks were independent of traditional clinical risk factors. CONCLUSIONS: This genotype-phenotype study indicates that in type-1 LQTS, mutations located in the transmembrane portion of the ion channel protein and the degree of ion channel dysfunction caused by the mutations are important independent risk factors influencing the clinical course of this disorder.

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Cite This Study

Moss et al. (2007) studied this question.

synapsesocial.com/papers/69ffcc2bd1d8b50f8e9a10dbhttps://doi.org/10.1161/circulationaha.106.665406
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