Hundreds of mutations in the SCN1A sodium channel gene confer a wide spectrum of epileptic disorders, requiring efficient model systems to study cellular mechanisms and identify potential therapeutic targets. We recently demonstrated that Drosophila knock-in flies carrying the K1270T SCN1A mutation known to cause a form of genetic epilepsy with febrile seizures plus (GEFS+) exhibit a heat-induced increase in sodium current activity and seizure phenotype. To determine whether different SCN1A mutations cause distinct phenotypes in Drosophila as they do in humans, this study focuses on a knock-in line carrying a mutation that causes a more severe seizure disorder termed Dravet syndrome (DS). Introduction of the DS SCN1A mutation (S1231R) into ...
Over 1250 mutations in SCN1A, the Nav1.1 voltage-gated sodium channel gene, are associated with a va...
Dravet syndrome is a severe, childhood-onset epilepsy largely due to heterozygous loss-of-function m...
BACKGROUND: We investigated how two distinct mutations in SCN1A differentially affect electrophysiol...
Mutations in the voltage-gated sodium channel gene SCN1A are associated with human epilepsy disorder...
Mutations in the voltage-gated sodium channel gene SCN1A are associated with human epilepsy disorder...
Over 40 missense mutations in the human SCN1A sodium channel gene are linked to an epilepsy syndrome...
Dravet syndrome is a severe rare epileptic disease caused by mutations in the SCN1A gene coding for ...
While thousands of epilepsy-causing mutations have been identified throughout the SCN1A gene encodin...
Mutations in the gene encoding the α1 subunit of the voltage gated sodium channel (SCN1A) are associ...
Dravet syndrome is the prototype of SCN1A-mutation associated epilepsies. It is characterised by pro...
Mutations in the gene encoding the α1 subunit of the voltage gated sodium channel (SCN1A) are associ...
This paper reviews Drosophila voltage-gated Na(+) channel mutations encoded by the para (paralytic) ...
Dravet Syndrome (DS) is an encephalopathy with epilepsy associated with multiple neuropsychiatric co...
Dravet Syndrome (DS) is an encephalopathy with epilepsy associated with multiple neuropsychiatric co...
Over 1250 mutations in SCN1A, the Nav1.1 voltage-gated sodium channel gene, are associated with a va...
Over 1250 mutations in SCN1A, the Nav1.1 voltage-gated sodium channel gene, are associated with a va...
Dravet syndrome is a severe, childhood-onset epilepsy largely due to heterozygous loss-of-function m...
BACKGROUND: We investigated how two distinct mutations in SCN1A differentially affect electrophysiol...
Mutations in the voltage-gated sodium channel gene SCN1A are associated with human epilepsy disorder...
Mutations in the voltage-gated sodium channel gene SCN1A are associated with human epilepsy disorder...
Over 40 missense mutations in the human SCN1A sodium channel gene are linked to an epilepsy syndrome...
Dravet syndrome is a severe rare epileptic disease caused by mutations in the SCN1A gene coding for ...
While thousands of epilepsy-causing mutations have been identified throughout the SCN1A gene encodin...
Mutations in the gene encoding the α1 subunit of the voltage gated sodium channel (SCN1A) are associ...
Dravet syndrome is the prototype of SCN1A-mutation associated epilepsies. It is characterised by pro...
Mutations in the gene encoding the α1 subunit of the voltage gated sodium channel (SCN1A) are associ...
This paper reviews Drosophila voltage-gated Na(+) channel mutations encoded by the para (paralytic) ...
Dravet Syndrome (DS) is an encephalopathy with epilepsy associated with multiple neuropsychiatric co...
Dravet Syndrome (DS) is an encephalopathy with epilepsy associated with multiple neuropsychiatric co...
Over 1250 mutations in SCN1A, the Nav1.1 voltage-gated sodium channel gene, are associated with a va...
Over 1250 mutations in SCN1A, the Nav1.1 voltage-gated sodium channel gene, are associated with a va...
Dravet syndrome is a severe, childhood-onset epilepsy largely due to heterozygous loss-of-function m...
BACKGROUND: We investigated how two distinct mutations in SCN1A differentially affect electrophysiol...