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December 7, 2013Annals of Neurology274 citations

Dominant‐negative effects of KCNQ2 mutations are associated with epileptic encephalopathy

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GOGökce OrhanMBMerle BockDSDorien Schepers

Structured PICO

Does retigabine reverse the dominant-negative effects of KCNQ2 mutations in Xenopus laevis oocytes?

P
Population
Xenopus laevis oocytes injected with cRNA containing 7 de novo missense KCNQ2 mutations associated with severe epileptic encephalopathy
I
Intervention
Retigabine (KV 7 channel opener)
O
Outcome
Potassium currents and surface expressionsurrogate

KCNQ2 mutations causing severe epileptic encephalopathy exhibit dominant-negative effects that can be partially reversed by the KV 7 channel opener retigabine, suggesting a potential personalized therapy.

Abstract

OBJECTIVE: Mutations in KCNQ2 and KCNQ3, encoding the voltage-gated potassium channels KV 7.2 and KV 7.3, are known to cause benign familial neonatal seizures mainly by haploinsufficiency. Here, we set out to determine the disease mechanism of 7 de novo missense KCNQ2 mutations that were recently described in patients with a severe epileptic encephalopathy including pharmacoresistant seizures and pronounced intellectual disability. METHODS: Mutations were inserted into the KCNQ2 cDNA. Potassium currents were recorded using 2-microelectrode voltage clamping, and surface expression was analyzed by a biotinylation assay in cRNA-injected Xenopus laevis oocytes. RESULTS: We observed a clear loss of function for all mutations. Strikingly, 5 of 7 mutations exhibited a drastic dominant-negative effect on wild-type KV 7.2 or KV 7.3 subunits, either by globally reducing current amplitudes (3 pore mutations) or by a depolarizing shift of the activation curve (2 voltage sensor mutations) decreasing potassium currents at the subthreshold level at which these channels are known to critically influence neuronal firing. One mutation significantly reduced surface expression. Application of retigabine, a recently marketed KV 7 channel opener, partially reversed these effects for the majority of analyzed mutations. INTERPRETATION: The development of severe epilepsy and cognitive decline in children carrying 5 of the 7 studied KCNQ2 mutations can be related to a dominant-negative reduction of the resulting potassium current at subthreshold membrane potentials. Other factors such as genetic modifiers have to be postulated for the remaining 2 mutations. Retigabine or similar drugs may be used as a personalized therapy for this severe disease.

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Cite This Study

Orhan et al. (2013) studied this question.

synapsesocial.com/papers/6a21b4ea84d1906bac5fe227https://doi.org/10.1002/ana.24080
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Neutralization of a negative charge in the S1–S2 region of the KV7.2 (KCNQ2) channel affects voltage‐dependent activation in neonatal epilepsy2007 · 28 citations
  2. 2Genotype–phenotype correlations in neonatal epilepsies caused by mutations in the voltage sensor of K v 7.2 potassium channel subunits2013 · 189 citations
  3. 3KCNQ2 and KCNQ3 mutations contribute to different idiopathic epilepsy syndromes2008 · 98 citations
  4. 4Benign Familial Neonatal Convulsions Caused by Altered Gating of KCNQ2/KCNQ3 Potassium Channels2002 · 140 citations
  5. 5Myokymia and neonatal epilepsy caused by a mutation in the voltage sensor of the KCNQ2 K + channel2001 · 253 citations