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Published on: November 20, 2010
Characterization of ClC-1 chloride channels in zebrafish: a new model to study myotonia
Héctor Gaitán-Peñas1,2, Carla Pérez-Rius1, Ashraf Muhaisen1
1Physiology Unit, Department of Physiological Sciences, School of Medicine and Health Sciences, Institute of Neurosciences, University of Barcelona-IDIBELL, Barcelona, Spain.
Abstract:
The function of the chloride channel ClC-1 is crucial for the control of muscle excitability. Thus, reduction of ClC-1 functions by CLCN1 mutations leads to myotonia congenita. Many different animal models have contributed to understanding the myotonia pathophysiology. However, these models do not allow in vivo screening of potentially therapeutic drugs, as the zebrafish model does. In this work, we identified and characterized the two zebrafish orthologues (clc-1a and clc-1b) of the ClC-1 channel. Both channels are mostly expressed in the skeletal muscle as revealed by RT-PCR, western blot, and electrophysiological recordings of myotubes, and clc-1a is predominantly expressed in adult stages. Characterization in Xenopus oocytes shows that the zebrafish channels display similar anion selectivity and voltage dependence to their human counterparts. However, they show reduced sensitivity to the inhibitor 9-anthracenecarboxylic acid (9-AC), and acidic pH inverts the voltage dependence of activation. Reduction of clc-1a/b expression hampers spontaneous and mechanically stimulated movement, which could be reverted by expression of human ClC-1 but not by some ClC-1 containing myotonia mutations. Treatment of clc-1-depleted zebrafish with mexiletine, a typical drug used in human myotonia, improves the motor behaviour. Our work extends the repertoire of ClC channels to evolutionary structure-function studies and proposes the zebrafish clcn1 crispant model as a simple tool to find novel therapies for myotonia. KEY POINTS: We have identified two orthologues of ClC-1 in zebrafish (clc-1a and clc-1b) which are mostly expressed in skeletal muscle at different developmental stages. Functional characterization of the activity of these channels reveals many similitudes with their mammalian counterparts, although they are less sensitive to 9-AC and acidic pH inverts their voltage dependence of gating. Reduction of clc-1a/b expression hampers spontaneous and mechanically stimulated movement which could be reverted by expression of human ClC-1. Myotonia-like symptoms caused by clc-1a/b depletion can be reverted by mexiletine, suggesting that this model could be used to find novel therapies for myotonia.
Insights
Researchers identified two zebrafish chloride channel ClC-1 orthologues, clc-1a and clc-1b, crucial for muscle excitability. This zebrafish model offers a new tool for discovering myotonia congenita therapies.
Area of Science:
- Molecular Biology
- Neuroscience
- Genetics
Background:
- Chloride channel ClC-1 (encoded by CLCN1) is vital for skeletal muscle excitability.
- Mutations in CLCN1 cause myotonia congenita, a muscle disorder.
- Existing animal models are limited for in vivo drug screening.
Purpose of the Study:
- Identify and characterize zebrafish orthologues of ClC-1.
- Evaluate the zebrafish clcn1 model for myotonia drug discovery.
Main Methods:
- RT-PCR and Western blot for expression analysis.
- Electrophysiological recordings in Xenopus oocytes and zebrafish myotubes.
- Zebrafish clcn1 knockdown and rescue experiments.
- Pharmacological treatment with mexiletine.
Main Results:
- Two zebrafish ClC-1 orthologues, clc-1a and clc-1b, were identified and primarily expressed in skeletal muscle.
- Zebrafish ClC-1 channels exhibit functional similarities to human ClC-1 but differ in sensitivity to 9-AC and pH.
- Clc-1a/b depletion impairs muscle movement, which is reversible by human ClC-1 expression.
- Mexiletine treatment ameliorates myotonia-like symptoms in clc-1-depleted zebrafish.
Conclusions:
- Zebrafish clc-1a and clc-1b are functional orthologues of human ClC-1.
- The zebrafish clcn1 crispant model is a viable tool for in vivo screening of myotonia therapeutics.
- This model facilitates evolutionary studies of ClC channel function.
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