Presynaptic calcium currents at voltage-clamped excitor and inhibitor nerve terminals of crayfish

S N Wright1, M S Brodwick, G D Bittner

  • 1Department of Zoology, University of Texas, Austin 78712, USA.

The Journal of Physiology
|October 15, 1996
PubMed

Insights

Calcium currents in crayfish nerve terminals primarily use P-type channels. Inactivation of these currents is calcium-dependent and differs between excitatory and inhibitory terminals.

Area of Science:

  • Neuroscience
  • Cellular Biology
  • Biophysics

Background:

  • Nerve terminal calcium currents are crucial for neurotransmitter release.
  • Understanding the specific types of calcium channels involved is key to elucidating synaptic function.
  • Crayfish neuromuscular junctions offer a model system for studying these processes.

Purpose of the Study:

  • To characterize the biophysical and pharmacological properties of calcium currents in crayfish excitatory and inhibitory nerve terminals.
  • To identify the specific types of voltage-gated calcium channels mediating these currents.
  • To investigate the characteristics of calcium current inactivation.

Main Methods:

  • Two-electrode voltage clamp recordings of calcium currents.
  • Pharmacological blockade of voltage-dependent currents using specific toxins and ions (tetrodotoxin, 3,4-diaminopyridine, 4-aminopyridine, tetraethylammonium, cadmium, omega-agatoxin IVA, omega-conotoxin GVIA, omega-conotoxin MVIIC, nifedipine, cobalt).
  • Current-voltage (I-V) relation analysis and tail current analysis.
  • Local superfusion techniques and intracellular BAPTA injection.

Main Results:

  • Calcium currents in both excitatory and inhibitory terminals are mediated by P-type calcium channels, as indicated by blockade with cadmium and omega-agatoxin IVA.
  • Current-voltage relations and activation kinetics are similar between excitatory and inhibitory terminals.
  • Calcium current inactivation is calcium-dependent and more pronounced in inhibitory terminals (< 20% over 30 ms depolarization).
  • Adequate space clamp conditions were confirmed through localized barium superfusion experiments.

Conclusions:

  • The biophysical and pharmacological properties of calcium currents at crayfish neuromuscular junctions are consistent with P-type calcium channels.
  • Calcium-dependent inactivation of presynaptic calcium currents exhibits differential characteristics between excitatory and inhibitory terminals.
  • These findings in crayfish provide insights comparable to those from squid stellate synapses, highlighting conserved mechanisms in synaptic physiology.

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