Mutation-Specific Differences in Kv7.1 (KCNQ1) and Kv11.1 (KCNH2) Channel Dysfunction and Long QT Syndrome Phenotypes

被引:10
|
作者
Kekenes-Huskey, Peter M. [1 ]
Burgess, Don E. [2 ]
Sun, Bin [3 ]
Bartos, Daniel C. [4 ]
Rozmus, Ezekiel R. [2 ]
Anderson, Corey L. [5 ]
January, Craig T. [5 ]
Eckhardt, Lee L. [5 ]
Delisle, Brian P. [2 ]
机构
[1] Loyola Univ Chicago, Stritch Sch Med, Dept Cell & Mol Physiol, Maywood, IL 60153 USA
[2] Univ Kentucky, Dept Physiol, Coll Med, Lexington, KY 40536 USA
[3] Harbin Med Univ, Dept Pharmacol, Harbin 150081, Peoples R China
[4] Agios Pharmaceut, Cambridge, MA 02139 USA
[5] Univ Wisconsin Madison, Div Cardiovasc Med, Dept Med, Cellular & Mol Arrythmias Program, Madison, WI 53705 USA
关键词
long QT syndrome; KCNQ1; KCNH2; K+ channel; heart; arrhythmia; electrocardiogram; molecular dynamics; POTASSIUM CHANNELS; HERG CHANNEL; ATRIAL-FIBRILLATION; CARDIAC-ARRHYTHMIA; MISSENSE MUTATION; MOLECULAR-BASIS; DEPENDENT REGULATION; NONSENSE MUTATIONS; INWARD RECTIFIER; CLINICAL-ASPECTS;
D O I
10.3390/ijms23137389
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The electrocardiogram (ECG) empowered clinician scientists to measure the electrical activity of the heart noninvasively to identify arrhythmias and heart disease. Shortly after the standardization of the 12-lead ECG for the diagnosis of heart disease, several families with autosomal recessive (Jervell and Lange-Nielsen Syndrome) and dominant (Romano-Ward Syndrome) forms of long QT syndrome (LQTS) were identified. An abnormally long heart rate-corrected QT-interval was established as a biomarker for the risk of sudden cardiac death. Since then, the International LQTS Registry was established; a phenotypic scoring system to identify LQTS patients was developed; the major genes that associate with typical forms of LQTS were identified; and guidelines for the successful management of patients advanced. In this review, we discuss the molecular and cellular mechanisms for LQTS associated with missense variants in KCNQ1 (LQT1) and KCNH2 (LQT2). We move beyond the "benign" to a "pathogenic" binary classification scheme for different KCNQ1 and KCNH2 missense variants and discuss gene- and mutation-specific differences in K+ channel dysfunction, which can predispose people to distinct clinical phenotypes (e.g., concealed, pleiotropic, severe, etc.). We conclude by discussing the emerging computational structural modeling strategies that will distinguish between dysfunctional subtypes of KCNQ1 and KCNH2 variants, with the goal of realizing a layered precision medicine approach focused on individuals.
引用
收藏
页数:20
相关论文
共 38 条
  • [31] The Novel Long QT Syndrome Type 2-associated F129I Mutation in the KCNH2 Gene Significantly Affects IKr Through the hERG1 Homomeric and Heteromeric Potassium Channels
    Feng, Li
    Ma, Kejuan
    Li, Xin
    Liu, Nian
    Long, Deyong
    Ma, Changsheng
    CARDIOLOGY DISCOVERY, 2024, 4 (02): : 174 - 182
  • [32] Rescue of loss-of-function long QT syndrome-associated mutations in KV7.1/KCNE1 by the endocannabinoid N-arachidonoyl-L-serine (ARA-S)
    Hiniesto-Inigo, Irene
    Sridhar, Akshay
    Louradour, Julien
    Cruz, Alicia
    Lundholm, Siri
    Jauregi-Miguel, Amaia
    Giannetti, Federica
    Sala, Luca
    Odening, Katja E.
    Larsson, H. Peter
    Ottosson, Nina E.
    Liin, Sara I.
    BRITISH JOURNAL OF PHARMACOLOGY, 2025,
  • [33] Long QT Syndrome KCNH2 Variant Induces hERG1a/1b Subunit Imbalance in Patient-Specific Induced Pluripotent Stem Cell-Derived Cardiomyocytes
    Feng, Li
    Zhang, Jianhua
    Lee, ChangHwan
    Kim, Gina
    Liu, Fang
    Petersen, Andrew J.
    Lim, Evi
    Anderson, Corey L.
    Orland, Kate M.
    Robertson, Gail A.
    Eckhardt, Lee L.
    January, Craig T.
    Kamp, Timothy J.
    CIRCULATION-ARRHYTHMIA AND ELECTROPHYSIOLOGY, 2021, 14 (04) : 424 - 439
  • [34] Identification of (R)-N-(4-(4-methoxyphenyl)thiazol-2-yl)-1-tosylpiperidine-2-carboxamide, ML277, as a novel, potent and selective Kv7.1 (KCNQ1) potassium channel activator
    Mattmann, Margrith E.
    Yu, Haibo
    Lin, Zhihong
    Xu, Kaiping
    Huang, Xiaofang
    Long, Shunyou
    Wu, Meng
    McManus, Owen B.
    Engers, Darren W.
    Le, Uyen M.
    Li, Min
    Lindsley, Craig W.
    Hopkins, Corey R.
    BIOORGANIC & MEDICINAL CHEMISTRY LETTERS, 2012, 22 (18) : 5936 - 5941
  • [35] Trafficking-deficient long QT syndrome mutation KCNQ1-T587M confers severe clinical phenotype by impairment of KCNH2 membrane localization: Evidence for clinically significant IKr-IKs α-subunit interaction
    Biliczki, Peter
    Girmatsion, Zenawit
    Brandes, Ralf P.
    Harenkamp, Sabine
    Pitard, Bruno
    Charpentier, Flavien
    Hebert, Terence E.
    Hohnloser, Stefan H.
    Baro, Isabelle
    Nattel, Stanley
    Ehrlich, Joachim R.
    HEART RHYTHM, 2009, 6 (12) : 1792 - 1801
  • [36] Follow-up of Genetically Confirmed Adult Long QT Syndrome Type 1 and 2 Patients: Clinical Course and Tools for Mutation-specific Risk Stratification
    Koponen, Mikael
    Marjamaa, Annukka
    Viitasalo, Matti
    Toivonen, Lauri
    Swan, Heikki
    CIRCULATION, 2016, 134
  • [37] Follow-up of Genetically Confirmed Adult Long QT Syndrome Type 1 and 2 Patients: Clinical Course and Tools for Mutation-specific Risk Stratification
    Koponen, Mikael
    Marjamaa, Annukka
    Viitasalo, Matti
    Toivonen, Lauri
    Swan, Heikki
    CIRCULATION, 2016, 134
  • [38] Ion Channel Mechanisms Related to Sudden Cardiac Death in Phenotype-Negative Long-QT Syndrome Genotype-Phenotype Correlations of the KCNQ1(S349W) Mutation
    Horr, Samuel
    Goldenberg, Ilan
    Moss, Arthur J.
    O-Uchi, Jin
    Barsheshet, Alon
    Connelly, Heather
    Gray, Daniel A.
    Zareba, Wojciech
    Lopes, Coeli M. B.
    JOURNAL OF CARDIOVASCULAR ELECTROPHYSIOLOGY, 2011, 22 (02) : 193 - 200