Reduction by intracellular calcium chelation of acetylcholine secretion without occluding the effects of adenosine at frog motor nerve endings
Open Access
- 1 March 1994
- journal article
- Published by Wiley in British Journal of Pharmacology
- Vol. 111 (3) , 753-758
- https://doi.org/10.1111/j.1476-5381.1994.tb14802.x
Abstract
1 The calcium chelators bis-(aminophenoxy)ethane-tetraacetic acid (BAPTA) or dimethyl-BAPTA (DMBAPTA) were introduced into the cytoplasm of frog motor nerve endings by use of the AM loading technique. The effects of intracellular Ca2+ chelation were studied on quantal acetylcholine (ACh) release and on the action of adenosine. 2 Intracellular BAPTA or DMBAPTA prevented the increases in quantal ACh secretion normally evoked by caffeine. 3 Intracellular DMBAPTA decreased the number of ACh quanta released by individual nerve impulses and virtually eliminated the fast phase of facilitation in response to paired nerve impulses. 4 Adenosine reduced both spontaneous and evoked secretion of ACh quanta with its usual potency and efficacy in the presence of intracellular DMBAPTA. Adenosine had no significant effect on facilitation. 5 The results, which suggest that adenosine and intracellular DMBAPTA reduce ACh secretion by different mechanisms, are consistent with the hypothesis that adenosine inhibits ACh release by reducing the ability of Ca2+ to promote ACh secretion from frog motor nerve endings.Keywords
This publication has 28 references indexed in Scilit:
- Inhibition of quantal transmitter release in the absence of calcium influx by a G protein-linked adenosine receptor at hippocampal synapsesNeuron, 1992
- The effects of TMB-8 on acetylcholine release from frog motor nerve: interactions with adenosineEuropean Journal of Pharmacology, 1990
- Calcium transport and buffering in neuronsTrends in Neurosciences, 1988
- Transmitter release at frog end-plate loaded with a Ca2+-chelator, BAPTA: hypertonicity and erythrosin B augment the release independently of internal Ca2+Neuroscience Letters, 1988
- How does adenosine inhibit transmitter release?Trends in Pharmacological Sciences, 1988
- Adenosine receptors and calcium: Basis for proposing a third (A3) adenosine receptorProgress in Neurobiology, 1986
- Role for microsomal Ca storage in mammalian neurones?Nature, 1984
- A non-disruptive technique for loading calcium buffers and indicators into cellsNature, 1981
- New calcium indicators and buffers with high selectivity against magnesium and protons: design, synthesis, and properties of prototype structuresBiochemistry, 1980
- EFFECT OF CAFFEINE ON THE NEUROMUSCULAR JUNCTION OF THE FROG, AND ITS RELATION TO EXTERNAL CALCIUM CONCENTRATIONThe Japanese Journal of Physiology, 1973