Effects of KCNQ2 gene truncation on M-type Kv7 potassium currents

Jon Robbins1, Gayle M Passmore, Fe C Abogadie

  • 1Wolfson Centre for Age Related Disease, King's College London, London, United Kingdom.

Plos One
|August 27, 2013
PubMed

Insights

Disrupting KCNQ2 genes eliminates M-channels in mouse embryos, causing neural excitability disorders. Adult mice compensate, suggesting Kv7.2 subunit importance for M-channel function.

Area of Science:

  • Neuroscience
  • Molecular Biology
  • Genetics

Background:

  • The KCNQ2 gene encodes Kv7.2, a subunit of the M-channel, crucial for neuronal excitability.
  • Mutations in KCNQ2 cause human neural excitability disorders like Benign Familial Neonatal Seizures.
  • The function of M-channels when both KCNQ2 genes are disrupted remains uncharacterized.

Purpose of the Study:

  • To investigate M-channel function in the absence of functional KCNQ2 genes.
  • To determine the role of Kv7.2 subunits in M-channel activity.
  • To explore compensatory mechanisms in KCNQ2 gene disruption.

Main Methods:

  • Utilized KCNQ2-/- and KCNQ2+/- mouse models with truncated KCNQ2 genes.
  • Analyzed KCNQ2, KCNQ3, and KCNQ5 mRNA expression via quantitative PCR.
  • Measured M-currents in embryonic and adult sympathetic neurons.
  • Assessed tetraethylammonium block to infer subunit composition.

Main Results:

  • KCNQ2-/- embryonic neurons completely lacked M-current, even with retigabine.
  • KCNQ2+/- embryonic neurons exhibited a ~60% reduction in M-current.
  • Adult KCNQ2+/- neurons showed normal M-currents, indicating compensatory Kv7.2 expression.
  • Increased KCNQ3 and KCNQ5 mRNA in KCNQ2-deficient embryos was observed.

Conclusions:

  • Embryonic M-channels absolutely require Kv7.2 subunits for function.
  • Reduced M-channel activity in KCNQ2+/- embryos is primarily due to gene dosage.
  • Adult KCNQ2+/- mice exhibit compensatory Kv7.2 expression, restoring M-channel function.

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