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Published on: May 5, 2018
Sodium channel slow inactivation as a therapeutic target for myotonia congenita
Kevin R Novak1, Jennifer Norman, Jacob R Mitchell
1Department of Neuroscience, Cell Biology, and Physiology, Wright State University, Dayton, OH.
Objective:
Patients with myotonia congenita have muscle hyperexcitability due to loss-of-function mutations in the chloride channel in skeletal muscle, which causes spontaneous firing of muscle action potentials (myotonia), producing muscle stiffness. In patients, muscle stiffness lessens with exercise, a change known as the warmup phenomenon. Our goal was to identify the mechanism underlying warmup and to use this information to guide development of novel therapy.
Methods:
To determine the mechanism underlying warmup, we used a recently discovered drug to eliminate muscle contraction, thus allowing prolonged intracellular recording from individual muscle fibers during induction of warmup in a mouse model of myotonia congenita.
Results:
Changes in action potentials suggested slow inactivation of sodium channels as an important contributor to warmup. These data suggested that enhancing slow inactivation of sodium channels might offer effective therapy for myotonia. Lacosamide and ranolazine enhance slow inactivation of sodium channels and are approved by the US Food and Drug Administration for other uses in patients. We compared the efficacy of both drugs to mexiletine, a sodium channel blocker currently used to treat myotonia. In vitro studies suggested that both lacosamide and ranolazine were superior to mexiletine. However, in vivo studies in a mouse model of myotonia congenita suggested that side effects could limit the efficacy of lacosamide. Ranolazine produced fewer side effects and was as effective as mexiletine at a dose that produced none of mexiletine's hypoexcitability side effects.
Interpretation:
We conclude that ranolazine has excellent therapeutic potential for treatment of patients with myotonia congenita.
Insights
The warmup phenomenon in myotonia congenita involves sodium channel slow inactivation. Ranolazine effectively treats myotonia symptoms with fewer side effects than other options.
Area of Science:
- Neurology
- Muscle Physiology
- Pharmacology
Background:
- Myotonia congenita causes muscle stiffness due to chloride channel dysfunction.
- The warmup phenomenon, where stiffness lessens with exercise, is characteristic of this condition.
Purpose of the Study:
- To elucidate the mechanism behind the warmup phenomenon in myotonia congenita.
- To identify potential therapeutic targets for myotonia congenita based on warmup mechanisms.
Main Methods:
- Intracellular recordings from muscle fibers in a mouse model of myotonia congenita.
- Investigated the role of sodium channel slow inactivation in the warmup phenomenon.
- Evaluated the efficacy of lacosamide and ranolazine against mexiletine in vitro and in vivo.
Main Results:
- Slow inactivation of sodium channels was identified as a key contributor to the warmup phenomenon.
- Both lacosamide and ranolazine showed superior efficacy to mexiletine in vitro.
- In vivo, ranolazine demonstrated efficacy comparable to mexiletine with fewer side effects, while lacosamide's efficacy was limited by side effects.
Conclusions:
- Enhancing sodium channel slow inactivation is a promising therapeutic strategy for myotonia congenita.
- Ranolazine exhibits significant therapeutic potential for treating myotonia congenita, offering a favorable side effect profile.
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