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1 , the gene coding for the gamma-aminobutyric acidA (GABA(A)) receptor alpha1 subunit is suggested as
5 ed that injections of the gamma-aminobutyric acidA (GABAA) agonist muscimol into the nucleus accumben
8 A cDNA encoding the human gamma-aminobutyric acidA (GABAA) receptor alpha 6 subunit has been cloned a
9 input was blocked by the gamma-aminobutyric acidA (GABAA) receptor antagonist bicuculline (5 microM)
10 d to a unique site on the gamma-aminobutyric acidA (GABAA) receptor complex and allosterically modula
12 mpal dentate granule cell gamma-aminobutyric acidA (GABAA) receptor pharmacological properties was st
13 ent of mRNAs encoding for gamma-aminobutyric acidA (GABAA) receptor subunits, (ii) in the expression
14 composition of cerebellar gamma-aminobutyric acidA (GABAA) receptors (GABARs) with in situ hybridizat
15 site associated with the gamma-aminobutyric acidA (GABAA) receptors in cerebellum and hippocampus pl
16 odiazepine site of native gamma-aminobutyric acidA (GABAA) receptors provides useful information abou
17 nt of the pharmacology of gamma-aminobutyric acidA (GABAA) receptors with respect to agonists, antago
20 ollowing mutations to the gamma-aminobutyric acidA receptor (GABAAR) beta1 subunit gene (Gabrb1).
22 s been direct evidence of gamma-aminobutyric acidA receptor modification during status epilepticus.
23 order and a marker in the gamma-aminobutyric acidA receptor subunit gene, GABRB3 155CA-2 (MTDT 28.63,
25 functional properties of gamma-aminobutyric acidA receptors (GABARs), the alpha subunit subtypes hav
26 revealed insertion of new gamma-aminobutyric acidA receptors in the inhibitory synapses present on so
27 ular studies of epileptic gamma-aminobutyric acidA receptors present on dentate granule cells of rats
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