Abstract
Calcium appears to be an essential participant in axon excitation processes. Many other polyvalent metal ions have calcium-like actions on axons. We have used the voltage-clamped lobster giant axon to test the effect of several of these cations on the position of the peak initial (sodium) and steady-state (potassium) conductance vs. voltage curves on the voltage axis as well as on the rate parameters for excitation processes. Among the alkaline earth metals, Mg(+2) is a very poor substitute for Ca(+2), while Ba(+2) behaves like "high calcium" when substituted for Ca(+2) on a mole-for-mole basis. The transition metal ions, Ni(+2), Co(+2), and Cd(+2) also act like high calcium when substituted mole-for-mole. Among the trivalent ions, La(+3) is a very effective Ca(+2) replacement. Al(+3) and Fe(+3) are extremely active and seem to have some similar effects. Al(+3) is effective at concentrations as low as 10(-5)M. The data suggest that many of these ions may interact with the same cation-binding sites on the axon membrane, and that the relative effects on the membrane conductance and rate parameters depend on the relative binding constants of the ions. The total amount of Na(+) transferred during a large depolarizing transient is nearly independent of the kind or amount of polyvalent ion applied.
MeSH Terms
Action Potentials
Aluminum/pharmacology
Animals
Axons/drug effects,physiology
Barium/pharmacology
Cadmium/pharmacology
Calcium/pharmacology
Cell Membrane
Cobalt/pharmacology
Crustacea/physiology
Electrophysiology
Iron/pharmacology
Lanthanum/pharmacology
Magnesium/pharmacology
Membrane Potentials
Metals/pharmacology
Nickel/pharmacology
Potassium/metabolism
Sodium/metabolism
Time Factors
Chemicals
Metals
Cadmium
Barium
Cobalt
Lanthanum
Nickel
Sodium
Aluminum
Iron
Magnesium
Potassium
Calcium
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Blaustein M P
Goldman D E
References (14)
14 references, click to expand
-
Ionic conductance changes in lobster axon membrane when lanthanum is substituted for calcium.
J Gen Physiol. 1966 Nov;50(2):461-71
PMID: 11526840
-
Alkali cation selectivity of squid axon membrane.
Ann N Y Acad Sci. 1966 Jul 14;137(2):818-29
PMID: 5229831
-
Some chemical aspect of plateau formation in the action current of the myelinated nerve fibre.
Jpn J Physiol. 1960 Jun 29;10:280-91
PMID: 13836630
-
Ions, drugs and the axon membrane.
Ann N Y Acad Sci. 1966 Jul 14;137(2):967-81
PMID: 5229838
-
Blockage of sodium conductance increase in lobster giant axon by tarichatoxin (tetrodotoxin).
J Gen Physiol. 1966 May;49(5):977-88
PMID: 5961361
-
The role of calcium ions in neural processes.
Pharmacol Rev. 1954 Sep;6(3):243-98
PMID: 13215068
-
Current-voltage relations in the lobster giant axon membrane under voltage clamp conditions.
J Gen Physiol. 1962 Jul;45:1217-38
PMID: 14452758
-
Origin of axon membrane hyperpolarization under sucrose-gap.
Biophys J. 1966 Jul;6(4):453-70
PMID: 19210970
-
Phospholipids as ion exchangers: implications for a possible role in biological membrane excitability and anesthesia.
Biochim Biophys Acta. 1967 Sep 9;135(4):653-68
PMID: 6048248
-
Competitive action of calcium and procaine on lobster axon. A study of the mechanism of action of certain local anesthetics.
J Gen Physiol. 1966 May;49(5):1043-63
PMID: 5961353
-
Effects of external ions on membrane potentials of a lobster giant axon.
J Gen Physiol. 1958 Jan 20;41(3):529-42
PMID: 13491820
-
A MOLECULAR STRUCTURAL BASIS FOR THE EXCITATION PROPERTIES OF AXONS.
Biophys J. 1964 May;4:167-88
PMID: 14185580
-
Reversible poisoning of nerve fibers by heavy-metal ions.
Nature. 1951 Jan 27;167(4239):146-7
PMID: 14806400
-
Topochemical factors in potentiation of contraction by heavy metal cations.
J Gen Physiol. 1966 May;49(5):937-61
PMID: 5961359