Arrhythmogenic Calmodulin Mutations Affect the Activation and Termination of Cardiac Ryanodine Receptor-mediated Ca2+

Mads T Søndergaard1, Xixi Tian2, Yingjie Liu2

  • 1From the Department of Chemistry and Bioscience, Aalborg University, 9220 Aalborg, Denmark, the Libin Cardiovascular Institute of Alberta, Department of Physiology and Pharmacology and Department of Biochemistry and Molecular Biology, University of Calgary, Calgary, Alberta T2N 1N4, Canada, and.

Insights

Mutations in calmodulin (CaM) disrupt cardiac calcium release channel (RyR2) regulation, causing arrhythmias. Different CaM mutations affect CaM’s calcium binding differently, leading to aberrant RyR2 function and heart rhythm disorders.

Area of Science:

  • Cardiovascular Physiology
  • Molecular Cardiology
  • Biochemistry

Background:

  • Calmodulin (CaM) is a critical intracellular calcium sensor regulating cardiac function.
  • CaM interacts with the cardiac calcium release channel/ryanodine receptor 2 (RyR2).
  • Mutations in CaM are linked to cardiac arrhythmias like catecholaminergic polymorphic ventricular tachycardia (CPVT) and long QT syndrome.

Purpose of the Study:

  • To investigate the impact of specific CaM mutations (N53I, D95V, D129G, N97S) on RyR2-mediated calcium release.
  • To elucidate the mechanistic basis of how these CaM mutations affect RyR2 regulation and contribute to arrhythmias.
  • To propose a model for CaM-RyR2 interaction based on mutation-specific effects.

Main Methods:

  • Studied the effect of CaM mutations on RyR2-mediated calcium release in a cellular context.
  • Assessed Ca(2+) binding affinities of CaM N- and C-terminal domains using a RyR2-derived peptide.
  • Compared Ca(2+) binding characteristics of wild-type CaM versus mutant CaM variants.

Main Results:

  • All investigated CaM mutations increased RyR2-mediated calcium release and susceptibility to store overload-induced Ca(2+) release (SOICR).
  • The N53I mutation impaired Ca(2+) binding to CaM's N-domain, while D95V, D129G, and N97S mutations primarily affected Ca(2+) binding to CaM's C-domain.
  • These distinct effects on Ca(2+) binding suggest different mechanisms by which CaM mutations disrupt RyR2 regulation.

Conclusions:

  • Aberrant RyR2 regulation by mutated CaM is a key mechanism underlying CPVT and potentially other arrhythmias.
  • CaM mutations can affect RyR2 function even in the absence of CPVT.
  • A model is proposed where CaM's C-domain is constitutively bound to RyR2, and the N-domain senses cytosolic Ca(2+) levels.

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