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PMID: 4414038 Published · ppublish English Journal Article

Kinetics and steady-state properties of the charged system controlling sodium conductance in the squid giant axon.

The Journal of physiology ·Vol. 239 ·No. 2 ·1974-06-00 ·Pages 393-434

Keynes RD, Rojas E

Abstract

1. Asymmetries in the early time course of the displacement current passing across the membrane after application of equal voltage-clamp pulses in the two directions have been investigated in the squid giant axon. Before making the measurements, Na current was blocked by removal of external Na and treatment with tetrodotoxin. Potassium current was usually blocked by perfusion with CsF, but some experiments were done with intact axons. A signal averaging technique was used to eliminate the symmetrical components of the membrane current.2. The asymmetrical current had a contribution of appreciable size attributed to the movement of mobile charges or dipoles in the membrane. This was manifested as an outward current rising rapidly to a peak on depolarization of the membrane and then declining exponentially to zero, followed at the end of the pulse by an inward surge of current with a similar time course. There was also a sustained flow of current outwards during the pulse, arising from ionic leakage with a rectifying characteristic.3. The identification of the exponentially changing current component with the displacement of charged particles forming an integral part of the membrane was supported by the demonstration that the total transfer of charge was equal and opposite at the beginning and end of the pulse, that it reached saturation when the internal potential was taken to a sufficient positive value, and that its size was unaffected by temperature, although its time constant had a large temperature coefficient.4. The disposition of the mobile charges in the steady state was shown to obey a Boltzmann distribution. At the midpoint of the distribution curve, the proportion of the charge displaced underwent an e-fold change for a 19 mV change in potential. The effective valency of the particles, that is their actual charge multiplied by the fraction of the electric field acting on them, was therefore 1.3.5. The total quantity of mobile charge was estimated as about 1500 x 10(-12) C for 0.05 cm(2) of membrane, corresponding to some 1900 charges/mum(2).6. The identification of these mobile charges with the gating particles responsible for controlling Na conductance was supported by the findings that (a) their time constants were the same as those of Hodgkin & Huxley's ;m' system, both in absolute magnitude and in their dependence on potential and temperature, (b) the transition potential at which the charges were evenly distributed on the two sides of the membrane also agreed with that for the ;m' system in intact axons, and its value was similarly shifted in a positive direction by a reduction in internal ionic strength or by raising the external Ca concentration, (c) comparison of the steepness of the curves governing on the one hand the steady-state distribution of the mobile charges and on the other the Na conductance, suggested that an effective cooperation of the charges in groups of three was involved, again in excellent agreement with the ;m' system.7. Displacement of the mobile charges was unaffected by external pH over the range 5-8, but preliminary observations showed that 1% procaine reduced the total charge transfer to somewhat less than 40% of the initial value, and roughly halved the time constant.

MeSH Terms
Animals Axons/physiology Decapodiformes/physiology Electric Conductivity Fluorides/pharmacology In Vitro Techniques Kinetics Membrane Potentials/drug effects Potassium/physiology Procaine/pharmacology Sodium/physiology Temperature Tetrodotoxin/pharmacology Time Factors
Chemicals
Tetrodotoxin Procaine Sodium Fluorides Potassium
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Keynes R D
Rojas E
References (16)
16 references, click to expand
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  3. Analysis of the effects of calcium or magnesium on voltage-clamp currents in perfused squid axons bathed in solutions of high potassium.
    J Gen Physiol. 1969 Oct;54(4):532-52 PMID: 5823216
  4. Analysis of the potential-dependent changes in optical retardation in the squid giant axon.
    J Physiol. 1971 Oct;218(1):205-37 PMID: 5130611
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    J Physiol. 1952 Aug;117(4):500-44 PMID: 12991237
  7. Effect of procaine on electrical properties of squid axon membrane.
    Am J Physiol. 1959 May;196(5):1071-8 PMID: 13649934
  8. Evidence for two types of sodium conductance in axons perfused with sodium fluoride solution.
    J Physiol. 1970 Dec;211(3):653-78 PMID: 5501056
  9. Currents related to movement of the gating particles of the sodium channels.
    Nature. 1973 Apr 13;242(5398):459-61 PMID: 4700900
  10. The action of calcium on the electrical properties of squid axons.
    J Physiol. 1957 Jul 11;137(2):218-44 PMID: 13449874
  11. The membrane actions of anesthetics and tranquilizers.
    Pharmacol Rev. 1972 Dec;24(4):583-655 PMID: 4565956
  12. Characteristics of the sodium gating current in the squid giant axon.
    J Physiol. 1973 Aug;233(1):28P-30P PMID: 4759110
  13. The binding of labelled tetrodotoxin to non-myelinated nerve fibres.
    J Physiol. 1972 Dec;227(1):95-126 PMID: 4646588
  14. The effect of changing the internal solution on sodium inactivation and related phenomena in giant axons.
    J Physiol. 1965 Oct;180(4):821-36 PMID: 5880364
  15. Voltage clamp experiments on internally perfused giant axons.
    J Physiol. 1965 Oct;180(4):788-820 PMID: 5880363
  16. Potassium ion current in the squid giant axon: dynamic characteristic.
    Biophys J. 1960 Sep;1:1-14 PMID: 13694549
Article Info
Journal
The Journal of physiology
Abbr.
J Physiol
ISSN
0022-3751
Published
1974-06-00
Pages
393-434
Language
English
Region
England
NLM ID
0266262
PMCID
PMC1330930
Subset
IM
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