Click here to close
Hello! We notice that you are using Internet Explorer, which is not supported by Xenbase and may cause the site to display incorrectly.
We suggest using a current version of Chrome,
FireFox, or Safari.
???displayArticle.abstract???
1. Rohon-Beard cells in the spinal cord of Xenopus tadpoles have been studied in animals from early neural tube to free-swimming larval stages. The onset and further development of electrical excitability of these neurones has been investigated in different ionic environments, to determine the ionic species carrying the inward current of the action potential.2. The cells appear inexcitable at early stages (Nieuwkoop & Faber stages 18-20) and do not give action potentials to depolarizing current pulses.3. The action potential is first recorded at stage 20. (A) The inward current is carried by Ca(2+) at stages 20-25, since it is blocked by mm quantitites of La(3+), Co(2+) or Mn(2+) and is unaffected by removal of Na(+) or the addition of tetrodotoxin (TTX). (B) The action potential is an elevated plateau of long duration (mean 190 msec at stages 20-22). The duration decreases exponentially with repetitive stimulation. (C) The specific Ca(2+) conductance (g(Ca)) at the onset of the plateau of the action potential is 2.6 x 10(-4) mho/cm(2). Calculations show that a single action potential raises [Ca(2+)](1) by more than 100-fold.4. At later times (stages 25-40), the inward current of the action potential is carried by both Na(+) and Ca(2+): the action potential has two components, an initial spike which is blocked by removal of Na(+) or addition of TTX, followed by a plateau which is blocked by La(3+), Co(2+) or Mn(2+).5. Finally (stages 40-51), the inward current is primarily carried by Na(+), since the action potential is blocked only by removal of Na(+) or addition of TTX, and the overshoot agrees with the prediction of the Nernst equation for a Na-selective membrane. When the outward current channel is blocked and cells exposed to Na-free solutions, 67% of cells at the latest stages studied were incapable of producing action potentials in which the inward current is carried by divalent cations.6. The duration of the action potential decreases from a maximum of about 1000 msec to about 1 msec during development. The maximum input resistance (R(in)) decreases from ca. 1000 to 100 MOmega.7. The calcium action potential may play a role in the development of excitability and the growth of the neurones.
Baker,
Phasic entry of calcium in response to depolarization of giant axons of Loligo forbesi.
1971, Pubmed
Baker,
Phasic entry of calcium in response to depolarization of giant axons of Loligo forbesi.
1971,
Pubmed
Beaty,
Calcium dependent electrical activity in twitch muscle fibres of the frog.
1976,
Pubmed
Bray,
The growth cone in neurite extension.
1973,
Pubmed
FRANKENHAEUSER,
Potassium permeability in myelinated nerve fibres of Xenopus laevis.
1962,
Pubmed
,
Xenbase
Geduldig,
Sodium and calcium components of action potentials in the Aplysia giant neurone.
1968,
Pubmed
Hagiwara,
Calcium and potassium currents of the membrane of a barnacle muscle fibre in relation to the calcium spike.
1969,
Pubmed
Hagiwara,
Surface density of calcium ions and calcium spikes in the barnacle muscle fiber membrane.
1967,
Pubmed
Hagiwara,
Differences in Na and Ca spikes as examined by application of tetrodotoxin, procaine, and manganese ions.
1966,
Pubmed
Hagiwara,
Voltage clamp analysis of two inward current mechanisms in the egg cell membrane of a starfish.
1975,
Pubmed
HAGIWARA,
THE INITIATION OF SPIKE POTENTIAL IN BARNACLE MUSCLE FIBERS UNDER LOW INTRACELLULAR CA++.
1964,
Pubmed
Hille,
The selective inhibition of delayed potassium currents in nerve by tetraethylammonium ion.
1967,
Pubmed
HODGKIN,
The effect of sodium ions on the electrical activity of giant axon of the squid.
1949,
Pubmed
HODGKIN,
The dual effect of membrane potential on sodium conductance in the giant axon of Loligo.
1952,
Pubmed
Horackova,
Calcium conductance in relation to contractility in frog myocardium.
1976,
Pubmed
Ito,
Electrical characteristics of Triturus egg cells during cleavage.
1966,
Pubmed
Kano,
Tetrodotoxin-resistant electric activity in chick skeletal muscle cells differentiated in vitro.
1973,
Pubmed
Kano,
Development of excitability in embryonic chick skeletal muscle cells.
1975,
Pubmed
Katz,
Tetrodotoxin-resistant electric activity in presynaptic terminals.
1969,
Pubmed
Katz,
The effect of prolonged depolarization on synaptic transfer in the stellate ganglion of the squid.
1971,
Pubmed
Keynes,
Calcium and potassium systems of a giant barnacle muscle fibre under membrane potential control.
1973,
Pubmed
Kidokoro,
Sodium and calcium components of the action potential in a developing skeletal muscle cell line.
1975,
Pubmed
Kidokoro,
Developmental changes of membrane electrical properties in a rat skeletal muscle cell line.
1975,
Pubmed
Kidokoro,
Development of action potentials in a clonal rat skeletal muscle cell line.
1973,
Pubmed
KOKETSU,
Further observations on electrical activity of frog spinal ganglion cells in sodium-free solutions.
1959,
Pubmed
Mascher,
Two components of inward current in myocardial muscle fibers.
1969,
Pubmed
McDonald,
Electrical activity in embryonic heart cell aggregates. Developmental aspects.
1975,
Pubmed
Meech,
The sensitivity of Helix aspersa neurones to injected calcium ions.
1974,
Pubmed
Meech,
Potassium activation in Helix aspersa neurones under voltage clamp: a component mediated by calcium influx.
1975,
Pubmed
Miyazaki,
Electrical excitability in the egg cell membrane of the tunicate.
1974,
Pubmed
Miyazaki,
Calcium and sodium contributions to regenerative responses in the embryonic excitable cell membrane.
1972,
Pubmed
Miyazaki,
Action potential and non-linear current-voltage relation in starfish oocytes.
1975,
Pubmed
Miyazaki,
Analysis of non-linearity observed in the current-voltage relation of the tunicate embryo.
1974,
Pubmed
Okamoto,
Two components of the calcium current in the egg cell membrane of the tunicate.
1976,
Pubmed
OOMURA,
Electrical activity of a giant nerve cell under abnormal conditions.
1961,
Pubmed
Palmer,
Some bio-electric parameters of early Xenopus embryos.
1970,
Pubmed
,
Xenbase
Rougier,
Existence and role of a slow inward current during the frog atrial action potential.
1969,
Pubmed
Schultz,
The importance of calcium ions for the regulation of guanosine 3':5'-cyclic monophosphage levels.
1973,
Pubmed
Shen,
An electrophysiological study of the membrane properties of the immature and mature oocyte of the batstar, Patiria miniata.
1976,
Pubmed
Slack,
The distribution of sodium and potassium in amphibian embryos during early development.
1973,
Pubmed
,
Xenbase
Slack,
Properties of surface and junctional membranes of embryonic cells isolated from blastula stages of Xenopus laevis.
1975,
Pubmed
,
Xenbase
Sperelakis,
Decreased K+ conductance produced by Ba++ in frog sartorius fibers.
1967,
Pubmed
Sperelakis,
Changes in membrane properties of chick embryonic hearts during development.
1972,
Pubmed
Spitzer,
The development of the action potential mechanism of amphibian neurons isolated in culture.
1976,
Pubmed
,
Xenbase
Spitzer,
The ionic basis of the resting potential and a slow depolarizing response in Rohon-Beard neurones of Xenopus tadpoles.
1976,
Pubmed
,
Xenbase
Spitzer,
Development of the action potential in embryo amphibian neurons in vivo.
1976,
Pubmed
,
Xenbase
Stefani,
Potassium and calcium conductance in slow muscle fibres of the toad.
1976,
Pubmed
Takahashi,
Development of excitability in embryonic muscle cell membranes in certain tunicates.
1971,
Pubmed
Wald,
Ionic differences between somatic and axonal action potentials in snail giant neurones.
1972,
Pubmed
Warner,
The electrical properties of the ectoderm in the amphibian embryo during induction and early development of the nervous system.
1973,
Pubmed
WERMAN,
Graded and all-or-none electrogenesis in arthropod muscle. II. The effects of alkali-earth and onium ions on lobster muscle fibers.
1961,
Pubmed