The cloning and expression of genes encoding for the human neuronal nicotinic acetylcholine receptors (nAChRs) has opened new possibilities for investigating their physiological and pharmacological properties. Cells (HEK 293) stably transfected with two of the major brain subunits, α4 and β2, were characterized electrophysiologically using the patch-clamp technique. Fast application of the natural ligand ACh can evoke currents up to 3500 pA, with an apparent affinity (EC50) of 3 μmand a Hill coefficient of 1.2. The rank order of potency of four nAChR ligands to activate human α4β2 receptors is (−)-nicotine > ACh > (−)-cytisine > ABT-418. At saturating concentrations, the efficacy of these ligands is ABT-418 ≫ (−)-nicotine > ACh ≫ (−)-cytisine > GTS-21 (previously named DMXB). Coapplication of 1 μmACh with known nAChR inhibitors such as dihydro-β-erythroidine and methyllycaconitine reversibly reduces the current evoked by the agonist with respective IC50values of 80 nmand 1.5 μm. The current–voltage relationship of human α4β2 displays a strong rectification at positive potentials. Experiments of ionic substitutions suggest that human α4β2 nAChRs are permeable to sodium and potassium ions. In the “outside-out” configuration, ACh evokes unitary currents (main conductance 46 pS) characterized by a very fast rundown. Potentiation of the ACh-evoked currents is observed when the extracellular calcium concentration is increased from 0.2 to 2 mm. In contrast, however, a reduction of the evoked currents is observed when calcium concentration is elevated above 2 mm.
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Buisson et al. (1996) studied this question.
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