Skip to main navigation Skip to search Skip to main content

Long QT syndrome-associated calmodulin variants disrupt the activity of the slowly activating delayed rectifier potassium channel

  • Liam McCormick
  • , Kirsty Wadmore
  • , Amy Milburn
  • , Nitika Gupta
  • , Rachael Morris
  • , Marie Held
  • , Ohm Prakash
  • , Joseph Carr
  • , Richard Barrett-Jolley
  • , Caroline Dart
  • , Nordine Helassa*
  • *Corresponding author for this work

    Research output: Contribution to journalArticle (Academic Journal)peer-review

    10 Citations (Scopus)

    Abstract

    Calmodulin (CaM) is a highly conserved mediator of calcium (Ca2+)-dependent signalling and modulates various cardiac ion channels. Genotyping has revealed several CaM mutations associated with long QT syndrome (LQTS). LQTS patients display prolonged ventricular recovery times (QT interval), increasing their risk of incurring life-threatening arrhythmic events. Loss-of-function mutations to Kv7.1 (which drives the slow delayed rectifier potassium current, IKs, a key ventricular repolarising current) are the largest contributor to congenital LQTS (>50% of cases). CaM modulates Kv7.1 to produce a Ca2+-sensitive IKs, but little is known about the consequences of LQTS-associated CaM mutations on Kv7.1 function. Here, we present novel data characterising the biophysical and modulatory properties of three LQTS-associated CaM variants (D95V, N97I and D131H). We showed that mutations induced structural alterations in CaM and reduced affinity for Kv7.1, when compared with wild-type (WT). Using HEK293T cells expressing Kv7.1 channel subunits (KCNQ1/KCNE1) and patch-clamp electrophysiology, we demonstrated that LQTS-associated CaM variants reduced current density at systolic Ca2+ concentrations (1 μm), revealing a direct QT-prolonging modulatory effect. Our data highlight for the first time that LQTS-associated perturbations to CaM's structure impede complex formation with Kv7.1 and subsequently result in reduced IKs. This provides a novel mechanistic insight into how the perturbed structure–function relationship of CaM variants contributes to the LQTS phenotype.
    Original languageEnglish
    Pages (from-to)3739-3764
    Number of pages26
    JournalThe Journal of Physiology
    Volume601
    Issue number17
    Early online date10 Jul 2023
    DOIs
    Publication statusE-pub ahead of print - 10 Jul 2023

    Bibliographical note

    Funding Information:
    This work was supported by British Heart Foundation Intermediate Basic Science Research Fellowship (FS/17/56/32 925 and FS/EXT/22/35 014 to N. H.), British Heart Foundation Project Grant (PG/21/10 521 to N. H.), BBSRC grant (BB/V002767/1 to C. D.), British Heart Foundation Non‐clinical PhD studentships (FS/PhD/20/29 025 and FS/PhD/22/29 339 to N. H.), Wellcome Trust 4‐year PhD studentship programme (102 172/B/13/Z to N. G.) and University of Liverpool, Institute of Translational Medicine PhD studentship (to L. M.).

    Publisher Copyright:
    © 2023 The Authors. The Journal of Physiology published by John Wiley & Sons Ltd on behalf of The Physiological Society.

    Keywords

    • Arrhythmia
    • Potassium Channels
    • Long QT Syndrome
    • Ion Channels
    • Calmodulin
    • KCNQ1

    Fingerprint

    Dive into the research topics of 'Long QT syndrome-associated calmodulin variants disrupt the activity of the slowly activating delayed rectifier potassium channel'. Together they form a unique fingerprint.

    Cite this