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      Calcium Sensitivity of Neurotransmitter Release Differs at Phasic and Tonic Synapses

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          Abstract

          The efficacy of synaptic transmission varies greatly among synaptic contacts. We have explored the origins of differences between phasic and tonic crustacean neuromuscular junctions. Synaptic boutons of a phasic motor neuron release three orders of magnitude more quanta to a single action potential and show strong depression to a train, whereas tonic synapses are nearly unresponsive to single action potentials and display an immense facilitation. Phasic and tonic synapses display a similar nonlinear dependence on extracellular [Ca 2+] . We imposed similar spatially uniform intracellular [Ca 2+] ([Ca 2+] i) steps in phasic and tonic synapses by photolysis of presynaptic caged calcium. [Ca 2+] i was measured fluorometrically while transmitter release was monitored electrophysiologically from single boutons in which the [Ca 2+] i was elevated. Phasic synapses released the readily releasable pool (RRP) of vesicles at a much higher rate and with a shorter delay than did tonic synapses. Comparison of several kinetic models of molecular events showed that a difference in Ca 2+-sensitive priming of vesicles in the RRP combined with a revision of the kinetic Ca 2+-binding sequence to the secretory trigger produced the best fit to the markedly different responses to Ca 2+ steps and action potentials and of the characteristic features of synaptic plasticity in phasic and tonic synapses. The results reveal processes underlying one aspect of synaptic diversity that may also regulate changes in synaptic strength during development and learning and memory formation.

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          Author and article information

          Journal
          J Neurosci
          J. Neurosci
          jneuro
          The Journal of Neuroscience
          Society for Neuroscience
          0270-6474
          1529-2401
          23 March 2005
          : 25
          : 12
          : 3113-3125
          Affiliations
          [1 ]Department of Physiology, Faculty of Medicine, University of Toronto, Toronto, Ontario, Canada M5S 1A8, [2 ]Department of Molecular and Cell Biology, University of California, Berkeley, California 94720, and [3 ]Department of Pharmacology and Physiology, College of Medicine, Drexel University, Philadelphia, Pennsylvania 19102
          Article
          PMC6725098 PMC6725098 6725098 00253113
          10.1523/JNEUROSCI.4717-04.2005
          6725098
          15788768
          7071b324-fea5-4081-9eff-1c0245772cbe
          Copyright © 2005 Society for Neuroscience 0270-6474/05/253113-13.00/0
          History
          : 28 January 2005
          : 18 November 2004
          : 27 January 2005
          Categories
          Cellular/Molecular
          Custom metadata
          3113
          ARTICLE

          Ca2+ sensitivity,synaptic strength,priming,crayfish,neuromuscular junction,synapse

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