Key result
The A331T mutation in the muscle chloride channel ClC-1 introduces a novel slow gate that activates during membrane hyperpolarization, leading to a decreased open probability at the normal muscle resting potential.
The A331T mutation in the CLCN1 gene causes myotonia congenita by introducing a novel hyperpolarization-activated gate that reduces resting chloride conductance in skeletal muscle.
No immediate clinical implications for myotonia congenita; leaves open translation of this ClC-1 mechanism to human disease.
Mutations in the muscle chloride channel gene CLCN1 cause myotonia congenita, an inherited disorder of skeletal muscle excitability leading to a delayed relaxation after muscle contraction. Here, we examine the functional consequences of a novel disease-causing mutation that predicts the substitution of alanine by threonine at position 331 (A331T) by whole-cell patch-clamp recording of recombinant mutant channels. A331T hClC-1 channels exhibit a novel slow gate that activates during membrane hyperpolarization and closes at positive potentials. This novel gate acts in series with fast opening and closing transitions that are common to wild-type (WT) and mutant channels. Under conditions at which this novel gate is not activated, i.e., a holding potential of 0 mV, the typical depolarization-induced activation gating of WT hClC-1 was only slightly affected by the mutation. In contrast, A331T hClC-1 channels with an open slow gate display an altered voltage dependence of open probability. These novel gating features of mutant channels produce a decreased open probability at -85 mV, the normal muscle resting potential, leading to a reduced resting chloride conductance of affected muscle fibers. The A331T mutation causes an unprecedented alteration of ClC-1 gating and reveals novel processes defining transitions between open and closed states in ClC chloride channels.
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Warnstedt et al. (2002) studied Myotonia congenita. A331T mutation in hClC-1 vs. Wild-type (WT) hClC-1 channels was evaluated on Channel gating properties and open probability. The A331T mutation in the muscle chloride channel ClC-1 introduces a novel slow gate that activates during membrane hyperpolarization, leading to a decreased open probability at the normal muscle resting potential.
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