
Mutations in the calcium-binding protein calsequestrin cause a highly lethal familial arrhythmia, catecholaminergic polymorphic ventricular tachycardia (CPVT). In vivo, calsequestrin multimerizes into filaments, but a compelling atomic-resolution structure of a calsequestrin filament is lacking. We report a crystal structure of a cardiac calsequestrin filament with supporting mutation analysis provided by anin vitrofomentation assay. We also report and characterize a novel disease-associated calsequestrin mutation, S173I, which localizes to the filament-forming interface. In addition, we show that a previously reported dominant disease mutation, K180R, maps to the same multimerization surface. Both mutations disrupt filamentation, suggesting that dominant disease arises from defects in multimer formation. A ytterbium-derivatized structure pinpoints multiple credible calcium sites at filament-forming interfaces, explaining the atomic basis of calsequestrin filamentation in the presence of calcium. This work advances our understanding of calsequestrin biochemistry and provides a unifying structure-function molecular mechanism by which dominant-acting calsequestrin mutations provoke lethal arrhythmias.
Male, Models, Molecular, Biomedical and clinical sciences, Protein Conformation, Gene Expression, Cardiovascular, Crystallography, X-Ray, Medical and Health Sciences, Models, Tachycardia, 2.1 Biological and endogenous factors, Cloning, Molecular, Genes, Dominant, Pediatric, Crystallography, Congenital Heart Disease, Biological Sciences, Middle Aged, Recombinant Proteins, Pedigree, Biological sciences, Heart Disease, Female, Protein Binding, Adult, Genetic Vectors, Biophysics, 610, Article, Mitochondrial Proteins, Rare Diseases, Genetics, Escherichia coli, Calsequestrin, Humans, Dominant, Protein Interaction Domains and Motifs, Binding Sites, Biomedical and Clinical Sciences, Myocardium, alpha-Helical, Calcium-Binding Proteins, Ventricular, Molecular, Kinetics, Genes, Chemical sciences, Chemical Sciences, Mutation, X-Ray, beta-Strand, Calcium, Biochemistry and Cell Biology, Protein Multimerization, Cloning, Developmental Biology
Male, Models, Molecular, Biomedical and clinical sciences, Protein Conformation, Gene Expression, Cardiovascular, Crystallography, X-Ray, Medical and Health Sciences, Models, Tachycardia, 2.1 Biological and endogenous factors, Cloning, Molecular, Genes, Dominant, Pediatric, Crystallography, Congenital Heart Disease, Biological Sciences, Middle Aged, Recombinant Proteins, Pedigree, Biological sciences, Heart Disease, Female, Protein Binding, Adult, Genetic Vectors, Biophysics, 610, Article, Mitochondrial Proteins, Rare Diseases, Genetics, Escherichia coli, Calsequestrin, Humans, Dominant, Protein Interaction Domains and Motifs, Binding Sites, Biomedical and Clinical Sciences, Myocardium, alpha-Helical, Calcium-Binding Proteins, Ventricular, Molecular, Kinetics, Genes, Chemical sciences, Chemical Sciences, Mutation, X-Ray, beta-Strand, Calcium, Biochemistry and Cell Biology, Protein Multimerization, Cloning, Developmental Biology
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