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Life-threatening arrhythmogenic CaM mutations disrupt CaM binding to a distinct RyR2 CaM-binding pocket
Angelos Thanassoulas1, Vyronia Vassilakopoulou2, Brian L Calver3
1College of Medicine, QU Health, Qatar University, Doha, Qatar.
Abstract:
Calmodulin (CaM) modulates the activity of several proteins that play a key role in excitation-contraction coupling (ECC). In cardiac muscle, the major binding partner of CaM is the type-2 ryanodine receptor (RyR2) and altered CaM binding contributes to defects in sarcoplasmic reticulum (SR) calcium (Ca2+) release. Many genetic studies have reported a series of CaM missense mutations in patients with a history of severe arrhythmogenic cardiac disorders. In the present study, we generated four missense CaM mutants (CaMN98I, CaMD132E, CaMD134H and CaMQ136P) and we used a CaM-RyR2 co-immunoprecipitation and a [3H]ryanodine binding assay to directly compare the relative RyR2-binding of wild type and mutant CaM proteins and to investigate the functional effects of these CaM mutations on RyR2 activity. Furthermore, isothermal titration calorimetry (ITC) experiments were performed to investigate and compare the interactions of the wild-type and mutant CaM proteins with various synthetic peptides located in the well-established RyR2 CaM-binding region (3584-3602aa), as well as another CaM-binding region (4255-4271aa) of human RyR2. Our data revealed that all four CaM mutants displayed dramatically reduced RyR2 interaction and defective modulation of [3H]ryanodine binding to RyR2, regardless of LQTS or CPVT association. Moreover, our isothermal titration calorimetry ITC data suggest that RyR2 3584-3602aa and 4255-4271aa regions interact with significant affinity with wild-type CaM, in the presence and absence of Ca2+, two regions that might contribute to a putative intra-subunit CaM-binding pocket. In contrast, screening the interaction of the four arrhythmogenic CaM mutants with two synthetic peptides that correspond to these RyR2 regions, revealed disparate binding properties and signifying differential mechanisms that contribute to reduced RyR2 association.
Insights
Four calmodulin (CaM) mutations linked to cardiac disorders significantly weaken CaM binding to the ryanodine receptor 2 (RyR2). This impaired interaction disrupts calcium release, contributing to arrhythmogenic conditions.
Area of Science:
- Cardiovascular Biology
- Molecular Cardiology
- Protein-Protein Interactions
Background:
- Calmodulin (CaM) is crucial for cardiac excitation-contraction coupling (ECC), primarily by interacting with the type-2 ryanodine receptor (RyR2).
- Dysfunctional CaM-RyR2 interactions are implicated in arrhythmogenic cardiac disorders due to altered sarcoplasmic reticulum calcium release.
- Previous genetic studies identified CaM missense mutations in patients with severe cardiac arrhythmias.
Purpose of the Study:
- To investigate the impact of four specific missense CaM mutations (CaMN98I, CaMD132E, CaMD134H, CaMQ136P) on RyR2 binding and function.
- To elucidate the biophysical mechanisms underlying the reduced RyR2 interaction caused by these arrhythmogenic CaM variants.
Main Methods:
- Co-immunoprecipitation assays to assess CaM-RyR2 binding affinity.
- [3H]ryanodine binding assays to evaluate RyR2 channel activity modulation.
- Isothermal titration calorimetry (ITC) to quantify binding interactions between wild-type/mutant CaM and RyR2 peptides.
Main Results:
- All four CaM mutants exhibited significantly reduced binding to RyR2 compared to wild-type CaM.
- Mutant CaM proteins failed to effectively modulate [3H]ryanodine binding to RyR2, indicating functional impairment.
- ITC data revealed distinct binding affinities of mutant CaM peptides to RyR2 regions, suggesting varied disruption mechanisms.
Conclusions:
- The studied CaM missense mutations impair CaM's ability to bind RyR2, irrespective of specific arrhythmia association (LQTS or CPVT).
- These mutations disrupt CaM's regulatory role in RyR2 function, contributing to arrhythmogenic cardiac disorders.
- The findings highlight differential mechanisms of RyR2 interaction disruption by CaM variants, offering insights into cardiac arrhythmia pathogenesis.
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