Key result
SCN9A mutations (I136V, I848T, V1316A) responsible for primary erythromelalgia caused a significant hyperpolarizing shift in voltage-dependent activation and were resistant to lidocaine blockade compared to wild-type channels.
p-value: p=<0.001
Mutations in SCN9A (including the novel V1316A) cause gain-of-function changes in Nav1.7 sodium channels that are exacerbated by high temperatures, explaining the heat-triggered pain in primary erythromelalgia.
May limit lidocaine efficacy in erythromelalgia; leaves open mutation-specific therapies pending clinical validation.
Primary erythromelalgia (PE) is an autosomal dominant neurological disorder characterized by severe burning pain and erythema in the extremities upon heat stimuli or exercise. Mutations in human SCN9A gene, encoding the α-subunit of the voltage-gated sodium channel, Na(v)1.7, were found to be responsible for PE. Three missense mutations of SCN9A gene have recently been identified in Taiwanese patients including a familial (I136V) and two sporadic mutations (I848T, V1316A). V1316A is a novel mutation and has not been characterized yet. Topologically, I136V is located in DI/S1 segment and both I848T and V1316A are located in S4-S5 linker region of DII and DIII domains, respectively. To characterize the elelctrophysiological manifestations, the channel conductance with whole-cell patch clamp was recorded on the over-expressed Chinese hamster overy cells. As compared with wild type, the mutant channels showed a significant hyperpolarizing shift in voltage dependent activation and a depolarizing shift in steady-state fast inactivation. The recovery time from channel inactivation is faster in the mutant than in the wild type channels. Since warmth can trigger and exacerbate symptoms, we then examine the influence of tempearture on the sodium channel conduction. At 35°C, I136V and V1316A mutant channels exhibit a further hyperpolarizing shift at activation as compared with wild type channel, even though wild type channel also produced a significant hyperpolarizing shift compared to that of 25°C. High temperature caused a significant depolarizing shift in steady-state fast inactivation in all three mutant channels. These findings may confer to the hyperexcitability of sensory neurons, especially at high temperature. In order to identifying an effective treatment, we tested the IC₅₀ values of selective sodium channel blockers, lidocaine and mexiletine. The IC₅₀ for mexiletine is lower for I848T mutant channel as compared to that of the wild type and other two mutants which is comparable to the clinical observations.
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Wu et al. (2013) studied Primary Erythromelalgia (n=2). SCN9A mutations (I136V, I848T, V1316A) vs. Wild-type Nav1.7 channel was evaluated on Voltage-dependent activation (V1/2) (p=<0.001). SCN9A mutations (I136V, I848T, V1316A) responsible for primary erythromelalgia caused a significant hyperpolarizing shift in voltage-dependent activation and were resistant to lidocaine blockade compared to wild-type channels.
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