长QT综合征
心脏动作电位
复极
水貂
生物
内科学
QT间期
心房动作电位
遗传学
医学
电生理学
生态学
作者
Fouad Shalaby,Paul Lévesque,Wen-Pin Yang,Wayne A. Little,Mary Lee Conder,Tonya Jenkins-West,Michael A. Blanar
出处
期刊:Circulation
[Ovid Technologies (Wolters Kluwer)]
日期:1997-09-16
卷期号:96 (6): 1733-1736
被引量:134
标识
DOI:10.1161/01.cir.96.6.1733
摘要
Background Mutations that map to the KvLQT1 gene on human chromosome 11 account for more than 50% of inherited long QT syndrome (LQTS). It has been discovered recently that the KvLQT1 and minK proteins functionally interact to generate a current with biophysical properties similar to I Ks , the slowly activating delayed-rectifier cardiac potassium current. Since I Ks modulates the repolarization of cardiac action potentials it is reasonable to hypothesize that mutations in KvLQT1 reduce I Ks , resulting in the prolongation of cardiac action potential duration. Methods and Results We expressed LQTS-associated Kv LQT1 mutants in Xenopus oocytes either individually or in combination with wild-type KvLQT1 or in combination with both wild-type KvLQT1 and minK. Substitutions of alanine with proline in the S2-S3 cytoplasmic loop (A177P) or threonine with isoleucine in the highly conserved signature sequence of the pore (T311I) yield inactive channels when expressed individually, whereas substitution of leucine with phenylalanine in the S5 transmembrane domain (L272F) yields a functional channel with reduced macroscopic conductance. However, all these mutants inhibit wild-type KvLQT1 currents in a dominant-negative fashion. Conclusions In LQTS-affected individuals these mutations would be predicted to result in a diminution of the cardiac I Ks current, subsequent prolongation of cardiac repolarization, and an increased risk of arrhythmias.
科研通智能强力驱动
Strongly Powered by AbleSci AI