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J Gen Physiol
1976 Jun 01;676:621-38. doi: 10.1085/jgp.67.6.621.
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Potassium current and the effect of cesium on this current during anomalous rectification of the eggcell membrane of a starfish.
Hagiwara S, Miyazaki S, Rosenthal NP.
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The kinetics of the membrane current during the anomalous or inward-going rectification of the K current in the eggcell membrane of the starfish Mediaster aequalis were analyzed by voltage clamp. The rectification has instantaneous and time-dependent components. The time-dependent increase in the K conductance for the negative voltage pulse as well as the decrease in the conductance for the positive pulse follows first-order kinetics. The steady-state conductance increases as the membrane potential becomes more negative and reaches the saturation value at about -40 mV more negative than the K equilibrium potential, V(K). The entire K conductance can be expressed by g(K).n; g g(K) represents the component for the time-independent conductance which depends on V-V(K) and [K+]o, and n is a dimensionless number (1 is greater than or equal to n is greater than or equal to 0) and determined by two rate constants which depend only on V-V(K). Cs+ does not carry any significant current through the K channel but blocks the channel at low concentration in the external medium. The blocking effect increases as the membrane potential is made more negative and the potential-dependent blocking by the external Cs+ also has instantaneous and time-dependent components.
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Adrian,
Slow changes in potassium permeability in skeletal muscle.
1970,
Pubmed Adrian,
The potassium and chloride conductance of frog muscle membrane.
1962,
Pubmed Adrian,
Rectification in muscle membrane.
1969,
Pubmed ADRIAN,
THE RUBIDIUM AND POTASSIUM PERMEABILITY OF FROG MUSCLE MEMBRANE.
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Pubmed ADRIAN,
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1962,
Pubmed Almers,
Potassium conductance changes in skeletal muscle and the potassium concentration in the transverse tubules.
1972,
Pubmed Armstrong,
Inactivation of the potassium conductance and related phenomena caused by quaternary ammonium ion injection in squid axons.
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Potassium pores of nerve and muscle membranes.
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Pubmed Armstrong,
Interaction of tetraethylammonium ion derivatives with the potassium channels of giant axons.
1971,
Pubmed ARMSTRONG,
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Pubmed Baumann,
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Pubmed Bezanilla,
Negative conductance caused by entry of sodium and cesium ions into the potassium channels of squid axons.
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Pubmed Hagiwara,
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Pubmed
,
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The anomalous rectification and cation selectivity of the membrane of a starfish egg cell.
1974,
Pubmed
,
Echinobase HODGKIN,
The influence of potassium and chloride ions on the membrane potential of single muscle fibres.
1959,
Pubmed HODGKIN,
A quantitative description of membrane current and its application to conduction and excitation in nerve.
1952,
Pubmed Horowicz,
The role of the electrochemical gradient in determining potassium fluxes in frog striated muscle.
1968,
Pubmed Miyazaki,
Action potential and non-linear current-voltage relation in starfish oocytes.
1975,
Pubmed
,
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Analysis of non-linearity observed in the current-voltage relation of the tunicate embryo.
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Pubmed Miyazaki,
Potassium rectifications of the starfish oocyte membrane and their changes during oocyte maturation.
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Pubmed
,
Echinobase NAKAJIMA,
Delayed rectification and anomalous rectification in frog's skeletal muscle membrane.
1962,
Pubmed