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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.
Abstract:
1. A two-electrode voltage clamp was used to record calcium currents from the excitatory and inhibitory nerve terminals that innervate the crayfish (Procambarus spp.) opener muscle. Other voltage-dependent currents were blocked with tetrodotoxin, 3,4-diaminopyridine, 4-aminopyridine and tetraethylammonium. 2. The presynaptic calcium current at both excitatory and inhibitory synapses was blocked by cadmium and omega-agatoxin IVA but was not affected by omega-conotoxin GVIA, omega-conotoxin MVIIC or nifedipine, suggesting that the calcium currents flow through P-type calcium channels. 3. Current-voltage (I-V) relations at both excitatory and inhibitory synapses are similar, with current activation near -40 mV, peak current near -10 mV and current reversal at membrane potentials greater than +25 mV. I-V relations were scaled along the current axis by partial calcium current blockade with cobalt, suggesting that series resistance and space-clamp errors were small. 4. A subset of terminals on one muscle fibre was locally superfused with a physiological saline containing barium; the rest of the preparation was superfused with a physiological saline containing calcium channel antagonists. Under such conditions the characteristics of the I-V relation were very similar to the I-V relations recorded when the entire preparation was bathed in physiological levels of calcium, suggesting that the space clamp was adequate. 5. Calcium channel activation, as determined from tail current analyses, was similar when the entire preparation was bathed in physiological levels of calcium or if terminals on one muscle fibre were locally superfused with barium. 6. During a 30 ms depolarization, calcium currents inactivated to a greater extent in inhibitory than in excitatory terminals. The inactivation was of small magnitude (< 20%) and was eliminated by intracellular injection of the calcium chelator BAPTA, suggesting that the inactivation was calcium dependent. 7. These data show that biophysical and pharmacological properties of calcium currents at crayfish neuromuscular junctions resemble those found at stellate synapses in squid.
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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