Miniature endplate current rise times less than 100 microseconds from improved dual recordings can be modeled with passive acetylcholine diffusion from a synaptic vesicle.
- 11 June 1996
- journal article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 93 (12) , 5747-5752
- https://doi.org/10.1073/pnas.93.12.5747
Abstract
We recorded miniature endplate currents (mEPCs) using simultaneous voltage clamp and extracellular methods, allowing correction for time course measurement errors. We obtained a 20-80% rise time (tr) of approximately 80 micros at 22 degrees C, shorter than any previously reported values, and tr variability (SD) with an upper limit of 25-30 micros. Extracellular electrode pressure can increase tr and its variability by 2- to 3-fold. Using Monte Carlo simulations, we modeled passive acetylcholine diffusion through a vesicle fusion pore expanding radially at 25 nm x ms(-1) (rapid, from endplate omega figure appearance) or 0.275 nm x ms(-1) (slow, from mast cell exocytosis). Simulated mEPCs obtained with rapid expansion reproduced tr and the overall shape of our experimental mEPCs, and were similar to simulated mEPCs obtained with instant acetylcholine release. We conclude that passive transmitter diffusion, coupled with rapid expansion of the fusion pore, is sufficient to explain the time course of experimentally measured synaptic currents with trs of less than 100 micros.Keywords
This publication has 15 references indexed in Scilit:
- The rise times of miniature endplate currents suggest that acetylcholine may be released over a period of timeBiophysical Journal, 1995
- Monte Carlo simulation of miniature endplate current generation in the vertebrate neuromuscular junctionBiophysical Journal, 1991
- Transmitter release from synapses: Does a preassembled fusion pore initiate exocytosis?Neuron, 1990
- Properties of the fusion pore that forms during exocytosis of a mast cell secretory vesicleNeuron, 1990
- Temporal coincidence between synaptic vesicle fusion and quantal secretion of acetylcholine.The Journal of cell biology, 1985
- Diffusion and binding constants for acetylcholine derived from the falling phase of miniature endplate currents.Proceedings of the National Academy of Sciences, 1984
- Acetylcholine receptor site density affects the rising phase of miniature endplate currents.Proceedings of the National Academy of Sciences, 1980
- Characterization of drug iontophoresis with a fast microassay techniqueBiophysical Journal, 1976
- Effects of membrane potential, temperature and neostigmine on the conductance change caused by a quantum or acetylcholine at the toad neuromuscular junction.The Journal of Physiology, 1975
- ELECTRON MICROSCOPE RADIOAUTOGRAPHY AS A QUANTITATIVE TOOL IN ENZYME CYTOCHEMISTRYThe Journal of cell biology, 1969