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Analysis of Quantal Acetylcholine Noise at End-plates of Frog Muscle During Rapid Transmitter Secretion

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Journal J Physiol
Specialty Physiology
Date 1988 Jun 1
PMID 3262154
Citations 2
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Abstract

1. Using the theory of noise analysis an attempt was made to measure frequency and amplitude of miniature end-plate potentials (MEPPs) under conditions of vigorous transmitter release. Frog sartorius muscles were incubated in a depolarizing (32 mM-K+) medium which lacked Ca2+ to prevent transmitter release. Subsequently, when the membrane potential had become stable at about -40 mV, end-plates were superfused with 4 mM-Ca2+-containing medium for 1 min periods with 5 min intervals between the superfusions. 2. Most junctions ('fast' type) responded to Ca2+ with a relatively large, noisy depolarization (5.8-14.5 mV) which subsided rapidly during subsequent challenges with Ca2+. Other junctions ('slow' type) responded with only 1-1.6 mV depolarizations which were rather well sustained during the consecutive Ca2+ applications. 3. From the variance, E2, and the depolarization, V, caused by Ca2+ the frequency n and amplitude factor q of the MEPPs were calculated. Values of n were 3-4 x 10(4) and 0.1-1 x 10(4) s-1 in the fast- and slow-type junctions, respectively. The mean value of q was 0.16 mV; it remained more or less constant in the fast-type junctions, but tended to decline in the slow-type junctions. 4. As expected, cholinesterase inhibitors potentiated V and E2 as well as individual MEPPs. However, no advantage could be taken from this finding, since these drugs caused burst-like peaks superimposed on the voltage signal, precluding application of noise analysis. 5. The results strongly suggest that, at least in the fast-type junctions, K+ caused an extremely rapid depletion of the store of transmitter quanta, whose mean size did not change appreciably in the course of the experiment. However, in the slow-type junctions during prolonged incubation, it cannot be excluded that the gradual decline of q was due to the release of newly formed, unripe quanta.

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Recycling and refilling of transmitter quanta at the frog neuromuscular junction.

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References
1.
Heuser J, Reese T . Evidence for recycling of synaptic vesicle membrane during transmitter release at the frog neuromuscular junction. J Cell Biol. 1973; 57(2):315-44. PMC: 2108984. DOI: 10.1083/jcb.57.2.315. View

2.
Ceccarelli B, HURLBUT W, Mauro A . Turnover of transmitter and synaptic vesicles at the frog neuromuscular junction. J Cell Biol. 1973; 57(2):499-524. PMC: 2108980. DOI: 10.1083/jcb.57.2.499. View

3.
COUTEAUX R, Pecot-Dechavassine M . [Specialized areas of presynaptic membranes]. C R Acad Hebd Seances Acad Sci D. 1974; 278(2):291-3. View

4.
Heuser J . Proceedings: A possible origin of the 'giant' spontaneous potentials that occur after prolonged transmitter release at frog neuromuscular junctions. J Physiol. 1974; 239(2):106P-108P. DOI: 10.1113/jphysiol.1974.sp010593. View

5.
Polak R, Molenaar P . Pitfalls in determination of acetylcholine from brain by pyrolysis-gas chromatography/mass spectrometry. J Neurochem. 1974; 23(6):1295-7. DOI: 10.1111/j.1471-4159.1974.tb12230.x. View