ArticleHuman molecular genetics2023
Human calmodulin mutations cause arrhythmia and affect neuronal function in C. elegans.
Article in Human molecular genetics, 2023. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 8 papers.
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Who cites it
8 citing papers in PubMed, 16 citations in OpenAlex.
- Phenotypic expansion of CALM1/2-associated disorders to include neurologic phenotypes without arrhythmia.Human molecular genetics · 2026Article
- Dissecting the Dual Drug Candidates Against Glioblastoma and Oligodendroglioma Through Integrated Transcriptome Analysis and Virtual Screening.Cell biochemistry and biophysics · 2025Article
- Functional consequences of calmodulin variants identified among schizophrenia patients and controls.Translational psychiatry · 2025Article
- Calmodulin D133H Disrupts CaCells · 2025Article
- Catecholaminergic polymorphic ventricular tachycardia: A narrative review of recent advances in genetics, mechanisms, diagnosis, and treatment.Asian heart journal · 2025Review
- Identifying Key Binding Interactions Between the Cardiac L-Type Calcium Channel and Calmodulin Using Molecular Dynamics Simulations.The journal of physical chemistry. B · 2024Article
- 10th European Calcium Society symposium: The Ca2+-signaling toolkit in cell function, health and disease.Biology open · 2024Review
- Clinical presentation of calmodulin mutations: the International Calmodulinopathy Registry.European heart journal · 2023Observational
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Authors and funding
10 authors at 1 institution in 1 country.
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Abstract
In humans, mutations in calmodulin cause cardiac arrhythmia. These mutations disrupt the ability of calmodulin to sense calcium concentrations and correctly regulate two central calcium channels, together obstructing heart rhythm. This correlation is well established, but also surprising since calmodulin is expressed in all tissues and interacts with hundreds of proteins. Until now, most studies have focused on cardiac cell function and regulation of specific cardiac targets, and thus, potential other effects of these mutations have largely been unexplored. Here, we introduce the nematode Caenorhabditis elegans as an in vivo model to study effects of three human calmodulin mutations with different impairment on calcium binding. We find that arrhythmic effects of the calmodulin mutations N54I and D96V can be recapitulated in disruption of two rhythmic behaviors, pharynx pumping and defecation motor program. Interestingly, we also find that these mutations affect neuronal function, but in different ways. Whereas D96V sensitizes signaling at the neuromuscular junction, N54I has a protective effect. The mutation N98S did not affect rhythmic behavior, but impaired chemosensing. Therefore, pathogenic calmodulin mutations act through different mechanisms in rhythmic behavior and neuronal function in C. elegans, emphasizing the strength of using live multicellular models. Finally, our results support the hypothesis that human calmodulin mutations could also contribute to neurological diseases.
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