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D A Terrar

Publications and source records attributed to D A Terrar.

62 records · Page 4Linked to original sources

Factors affecting the time course of decay of end-plate currents: a possible cooperative action of acetylcholine on receptors at the frog neuromuscular junction.

1. End-plate currents have been studied in gylcerol-treated frog sartorius nerve-muscle preparations with the voltage-clamp technique. 2. Adding the anticholinesterase prostigmine (3 muM) to the solution bathing the muscle caused a 2-7 (mean 3-3) times increase in the time constant of decay of end-plate currents. The anticholinesterase edrophonium (15 muM) also prolonged the time course of end-plate currents. 3. Pre-treatment of the preparation with collagenase, which leads to the removal of acetylcholinesterase in the synaptic cleft, prolongs the time course of end-plate currents. 4. Curare (1-2 muM), cobratoxin (0-13 muM), or alpha-bungarotoxin (0-13-0-26 muM) decreased the time constant of decay of end-plate currents in the presence of prostigmine. 5. These observations are consistant with the suggestion that repeated binding of acetylcholine (ACh) molecules to receptors as the ACh escapes from the synaptic cleft can contribute to the prolongation of end-plate currents which occurrs when acetylcholinesterase activity is eliminated. 6. Increasing the amount of transmitter released from the presynaptic nerve terminal leads to a prolongation of end-plate currents in the presence of prostigmine. 7. In the presence of prostigmine, the second of two end-plate currents (interval 2-10 msec) decays more slowly than the first. 8. ACh (1-40 muM) or carbachol (40 muM) applied in the solution bathing the muscle prolongs end-plate currents in the presence of prostigmine. 9. It is suggested on the basis of the observations described in paragraphs 6 to 8 that the time constant of decay of end-plate currents in the presence of prostigmine increases with increasing concentrations of ACh in the synaptic cleft. In the absence of prostigmine, increasing the concentration of ACh in the synaptic cleft did not change the time constant for decay of end-plate currents. 10. We interpret these results to suggest that ACh can have a cooperative action on receptors such that the association of ACh with one receptor (defined as binding a single ACh molecule) favours the binding or retention of ACh at other receptors. This implies that receptors can interact.

Acetylcholine↗

Influence of SKF-525A congeners, strophanthidin and tissue-culture media on desensitization in frog skeletal muscle.

1 Microelectrodes have been used to follow changes in membrane potential at end-plate regions of frog skeletal muscle fibres exposed to carbachol; the depolarizing drug was applied to narrow strips of muscle in a rapidly flowing solution containing relatively impermeant anions rather than chloride.2 During prolonged applications of carbachol (10 to 20 muM), the depolarization caused by the drug showed a gradual decline which was attributed to desensitization.3 Desensitization was little if at all affected by supplementing the external solution with factors present in tissue-culture media, or by treating the muscle with strophanthidin (25 muM).4 The rate of repolarization in the presence of carbachol (10 to 20 muM) was greatly increased by the SKF-525A congeners pipenzolate bromide (10 muM) and adiphenine hydrochloride (1 muM). The desensitization-enhancing action of these compounds is discussed.

Animals↗

Influence of chloride ions on changes in membrane potential during prolonged application of carbachol to frog skeletal muscle.

1. Micro-electrodes were used to follow changes in the membrane potential at the end-plate region of single fibres in narrow strips of frog skeletal muscle exposed to carbachol applied in continuously flowing Ringer solution containing tetrodotoxin (200 nM) and neostigmine (3 muM).2. The depolarizations elicited by carbachol (5-20 muM) usually developed in two phases, the first of which was generally complete within 30 s whereas several min were required for the second.3. Repolarization after carbachol also occurred in two phases, the second of which outlasted the time needed to clear the bath, and varied with the magnitude and duration of the depolarization which carbachol had caused.4. These findings could best be explained in terms of the consequences of net entry of chloride ions into the fibre during the depolarization caused by carbachol. This hypothesis is supported by three lines of evidence:(a) Replacement of the chloride content of the Ringer solution by the less permeant anion isethionate abolished the slow phases of the carbachol response.(b) Reduction of chloride permeability (by lowering pH) caused rapid repolarization during the recovery period after carbachol.(c) When the membrane potential was clamped at the resting level throughout the action of carbachol, so avoiding chloride redistribution, the clamping current records did not show the slow phases attributed to chloride movement.5. Chloride redistribution contributes to the gradual spread of depolarization during prolonged applications of depolarizing agents to skeletal muscle. It also complicates the interpretation of the dose-response relationship, and may make it more difficult to assess the extent to which the receptors become desensitized during the action of agonists applied in the bath.

Animals↗