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Novel CLCN1 mutations with unique clinical and electrophysiological consequences
Fen-Fen Wu1, Aisling Ryan, Joseph Devaney
1Department of Human Genetics, University of Pittsburgh, PA, USA.
Abstract:
Myotonia is a condition characterized by impaired relaxation of muscle following sudden forceful contraction. We systematically screened all 23 exons of the CLCN1 gene in 88 unrelated patients with myotonia and identified mutations in 14 patients. Six novel mutations were discovered: five were missense (S132C, L283F, T310M, F428S and T550M) found in heterozygous patients, and one was a nonsense mutation (E193X) in a homozygous patient. While five patients had a clinical diagnosis of myotonia congenita, the patient with the F428S mutation exhibited symptoms characteristic of paramyotonia congenita--a condition usually thought to be caused by mutations in the sodium channel gene SCN4A. Nevertheless, no mutations in SCN4A were identified in this patient. The functional consequences of the novel CLCN1 sequence variants were explored by recording chloride currents from human embryonic kidney cells transiently expressing homo- or heterodimeric mutant channels. The five tested mutations caused distinct functional alterations of the homodimeric human muscle chloride ion channel hClC-1. S132C and T550M conferred novel hyperpolarization-induced gating steps, L283F and T310M caused a shift of the activation curve to more positive potentials and F428S reduced the expression level of hClC-1 channels. All showed a dominant-negative effect. For S132C, L283F, T310M and T550M, heterodimeric channels consisting of one wild-type (WT) and one mutant subunit exhibited a shifted activation curve at low intracellular [Cl(-)]. WT-F428S channels displayed properties similar to WT hClC-1, but expressed at significantly lower levels. The novel mutations exhibit a broad variety of functional defects that, by distinct mechanisms, cause a significant reduction of the resting chloride conductance in muscle of heterozygous patients. Our results provide novel insights into functional alterations and clinical symptoms caused by mutations in CLCN1.
Insights
Researchers identified six new mutations in the CLCN1 gene causing myotonia, a muscle relaxation disorder. These novel mutations in the human muscle chloride channel (hClC-1) lead to various functional defects, impacting muscle function.
Area of Science:
- Genetics
- Molecular Biology
- Neuroscience
Background:
- Myotonia is a neuromuscular disorder characterized by delayed muscle relaxation after contraction.
- Mutations in the CLCN1 gene, encoding the muscle chloride channel hClC-1, are a known cause of myotonia congenita.
- The genetic basis and functional consequences of CLCN1 mutations are not fully elucidated.
Purpose of the Study:
- To identify novel mutations in the CLCN1 gene in patients with myotonia.
- To functionally characterize the identified CLCN1 variants and understand their impact on hClC-1 channel function.
- To explore the genotype-phenotype correlations in patients with CLCN1 mutations.
Main Methods:
- Systematic screening of all 23 exons of the CLCN1 gene in 88 unrelated patients.
- Identification and sequencing of CLCN1 mutations.
- Functional analysis of mutant hClC-1 channels expressed in human embryonic kidney cells.
- Electrophysiological recordings of chloride currents.
Main Results:
- Six novel CLCN1 mutations were identified in 14 patients: five missense (S132C, L283F, T310M, F428S, T550M) and one nonsense (E193X).
- The identified mutations caused distinct functional alterations in hClC-1 channels, including altered gating, reduced expression, and dominant-negative effects.
- One patient with the F428S mutation presented with paramyotonia congenita symptoms, expanding the clinical spectrum of CLCN1-related disorders.
Conclusions:
- Novel CLCN1 mutations contribute to myotonia through diverse mechanisms affecting chloride channel function.
- These findings expand the understanding of CLCN1-related myotonias and their associated clinical variability.
- The study highlights the importance of CLCN1 in maintaining normal muscle excitability and function.