Voltage‐clamp analysis of a crayfish rectifying synapse.
- 1 May 1987
- journal article
- research article
- Published by Wiley in The Journal of Physiology
- Vol. 386 (1), 91-112
- https://doi.org/10.1113/jphysiol.1987.sp016524
Abstract
1. The rectifying crayfish giant motor synapse has been studied in the second abdominal ganglion, using the double-voltage-clamp technique which allowed direct measurements of junctional current at various fixed transjunctional potentials. 2. The transjunctional potential (Vj), defined as the difference between the voltages recorded in the lateral giant axon and the giant motor fibre, was varied from -70 to +50 mV, the minimum and maximum junctional chord conductances (gmin and gmax, respectively) were found to be 1.2 .+-. 1.3 .mu.S (n = 10) and 22.9 .+-. 6.3 .mu.S (n = 10), respectively. 3. For a given Vj, changes in the lateral giant axon or giant motor fibre membrane potential over a range of .+-. 30 mV around their resting levels did not influence the junctional permeability (gj), indicating that the inside-outside potential of the junctional channel does not control gj. 4. Therefore, the steady-state junctional chord conductances were dependent only upon Vj. 5. The voltage dependence of the chord conductance was well fitted by a modified Boltzmann relation. 6. The junctional currents were already constant 1 ms after step changes in the junctional voltage; this was three orders of magnitidue faster than the other known examples of votalge-controlled gap junctions between embryonic cells. 7. Our results may be interpreted by a highly voltage-dependent probability of opening of the junctional channels. They also suggest that the gap junction channels forming the giant motor synapse respond very rapidly to potential and that the hemi-channels which constitute them may not be symmetric.This publication has 30 references indexed in Scilit:
- Permeability properties of cell-to-cell channels: Kinetics of fluorescent tracer diffusion through a cell junctionThe Journal of Membrane Biology, 1985
- Single-channel currents of an intercellular junctionNature, 1985
- Cell-to-cell channels with two independently regulated gates in series: Analysis of junctional conductance modulation by membrane potential, calcium, and pHThe Journal of Membrane Biology, 1983
- Kinetic properties of a voltage-dependent junctional conductance.The Journal of general physiology, 1981
- The fine structure of a rectifying electrotonic synapse.The Journal of cell biology, 1978
- Synaptic control of electronic coupling between neuronsBrain Research, 1972
- EXPERIMENTAL ALTERATION OF COUPLING RESISTANCE AT AN ELECTROTONIC SYNAPSEThe Journal of cell biology, 1971
- A Rectifying Electrotonic Synapse in the Central Nervous System of a VertebrateThe Journal of general physiology, 1969
- PHYSIOLOGY OF ELECTROTONIC JUNCTIONS*Annals of the New York Academy of Sciences, 1966
- Impulse Propagation at the Septal and Commissural Junctions of Crayfish Lateral Giant AxonsThe Journal of general physiology, 1961