AbstractBenign familial neonatal convulsions, an autosomal dominant epilepsy of newborns, are linked to mutations affecting two six-transmembrane potassium channels, KCNQ2 and KCNQ3. We isolated four splice variants of KCNQ2 in human brain. Two forms generate, after transient expression in COS cells, a potassium-selective current similar to the KCNQ1 current. L-735,821, a benzodiazepine molecule which inhibits the KCNQ1 channel activity (EC50=0.08 μM), also blocks KCNQ2 currents (EC50=1.5 μM). Using in situ hybridization, KCNQ2 and KCNQ3 have been localized within the central nervous system, in which they are expressed in the same areas, mainly in the hippocampus, the neocortex and the cerebellar cortex. During brain development, KCNQ3 is e...
KCNQ2 channels are potassium channels that serve to control neuronal excitability. Loss of function ...
KCNQ2 and KCNQ3 K+ channel subunits underlie the muscarinic-regulated K+ current (I(KM)), a widespre...
© 2017 the authors. KCNQ2 potassium channels are critical for normal brain function, as both loss-of...
AbstractBenign familial neonatal convulsions, an autosomal dominant epilepsy of newborns, are linked...
KCNQ2 and KCNQ3, both of which are mutated in a type of human neonatal epilepsy, form heteromeric po...
Benign familial neonatal convulsions (BFNC) is an autosomal dominant epilepsy of infancy, with loci ...
KCNQ2 and KCNQ3 K+ channel subunits underlie the muscarinic-regulated K+ current (I(KM)), a widespre...
Mutations in KCNQ2 and KCNQ3 voltage-gated potassium channels lead to neonatal epilepsy as a consequ...
Idiopathic generalized epilepsies account for about 40% of epilepsy up to age 40 and commonly have a...
Mutations in either KCNQ2 or KCNQ3 underlie benign familial neonatal convulsions (BFNC), an inherite...
The KCNQ2 gene product, Kv7.2, is a subunit of the M-channel, a low-threshold voltage-gated K+ chann...
The KCNQ2 gene product, Kv7.2, is a subunit of the M-channel, a low-threshold voltage-gated K+ chann...
The KCNQ2 gene product, Kv7.2, is a subunit of the M-channel, a low-threshold voltage-gated K(+) cha...
Humans have over 70 potassium channel genes, but only some of these have been linked to disease. In ...
Benign familial neonatal convulsions (BFNC) is a rare autosomal dominant generalized epilepsy of the...
KCNQ2 channels are potassium channels that serve to control neuronal excitability. Loss of function ...
KCNQ2 and KCNQ3 K+ channel subunits underlie the muscarinic-regulated K+ current (I(KM)), a widespre...
© 2017 the authors. KCNQ2 potassium channels are critical for normal brain function, as both loss-of...
AbstractBenign familial neonatal convulsions, an autosomal dominant epilepsy of newborns, are linked...
KCNQ2 and KCNQ3, both of which are mutated in a type of human neonatal epilepsy, form heteromeric po...
Benign familial neonatal convulsions (BFNC) is an autosomal dominant epilepsy of infancy, with loci ...
KCNQ2 and KCNQ3 K+ channel subunits underlie the muscarinic-regulated K+ current (I(KM)), a widespre...
Mutations in KCNQ2 and KCNQ3 voltage-gated potassium channels lead to neonatal epilepsy as a consequ...
Idiopathic generalized epilepsies account for about 40% of epilepsy up to age 40 and commonly have a...
Mutations in either KCNQ2 or KCNQ3 underlie benign familial neonatal convulsions (BFNC), an inherite...
The KCNQ2 gene product, Kv7.2, is a subunit of the M-channel, a low-threshold voltage-gated K+ chann...
The KCNQ2 gene product, Kv7.2, is a subunit of the M-channel, a low-threshold voltage-gated K+ chann...
The KCNQ2 gene product, Kv7.2, is a subunit of the M-channel, a low-threshold voltage-gated K(+) cha...
Humans have over 70 potassium channel genes, but only some of these have been linked to disease. In ...
Benign familial neonatal convulsions (BFNC) is a rare autosomal dominant generalized epilepsy of the...
KCNQ2 channels are potassium channels that serve to control neuronal excitability. Loss of function ...
KCNQ2 and KCNQ3 K+ channel subunits underlie the muscarinic-regulated K+ current (I(KM)), a widespre...
© 2017 the authors. KCNQ2 potassium channels are critical for normal brain function, as both loss-of...