A new model is proposed to account for the apparent conductance changes of the sodium, or early, channel in nerve fiber membranes. In this model it is assumed that the channels are gated at the interior side of the membrane and are resistively limited at the exterior side by sodium selective barriers of high resistance to ion flow. Under resting conditions the closed channels accumulate a store of sodium ions, dependent on the exterior sodium concentration. With the application of a depolarizing clamp the interior gates open allowing the stored ions to discharge into the interior low sodium concentration solution. In this model the initial rise in the early current results from the opening of more and more gates in response to the depolariz...
AbstractA Markov model of the cardiac sodium channel is presented. The model is similar to the CA1 h...
Changes in holding potential (Vh), affect both gating charge (the Q(Vh) curve) and peak ionic curren...
The original experiments of Cole and Moore (1960. Biophys. J. 1:161–202.), using conditioning and te...
A number of models proposed to account for the sodium conductance changes are shown to fall into two...
Sodium channel gating behavior was modeled with Markovian models fitted to currents from the cut-ope...
The sodium conductance of the membrane of the giant axon of squid was isolated by the use of potassi...
Experiments on sodium channel inactivation kinetics were performed on voltage-clamped crayfish giant...
Changes in holding potential (Vh), affect both gating charge (the Q(Vh) curve) and peak ionic curren...
In this paper we explore the properties of a mathematical model for the passive sodium permeability ...
We describe a kinetic reaction sequence for the sodium conductance system in the squid axon. It clos...
This paper deals with the physical interpretation of existing mathematical models which describe the...
The voltage clamp results of Hodgkin and Huxley have been reanalyzed in terms of alternative mathema...
A model of the neural membrane is described, based on a set of "convertible gates" on its inner surf...
AbstractWe have explored the permeation and blockage of ions in sodium channels, relating the channe...
Using Stern's double-layer adsorption model for the density of cations in the membrane pores, a quan...
AbstractA Markov model of the cardiac sodium channel is presented. The model is similar to the CA1 h...
Changes in holding potential (Vh), affect both gating charge (the Q(Vh) curve) and peak ionic curren...
The original experiments of Cole and Moore (1960. Biophys. J. 1:161–202.), using conditioning and te...
A number of models proposed to account for the sodium conductance changes are shown to fall into two...
Sodium channel gating behavior was modeled with Markovian models fitted to currents from the cut-ope...
The sodium conductance of the membrane of the giant axon of squid was isolated by the use of potassi...
Experiments on sodium channel inactivation kinetics were performed on voltage-clamped crayfish giant...
Changes in holding potential (Vh), affect both gating charge (the Q(Vh) curve) and peak ionic curren...
In this paper we explore the properties of a mathematical model for the passive sodium permeability ...
We describe a kinetic reaction sequence for the sodium conductance system in the squid axon. It clos...
This paper deals with the physical interpretation of existing mathematical models which describe the...
The voltage clamp results of Hodgkin and Huxley have been reanalyzed in terms of alternative mathema...
A model of the neural membrane is described, based on a set of "convertible gates" on its inner surf...
AbstractWe have explored the permeation and blockage of ions in sodium channels, relating the channe...
Using Stern's double-layer adsorption model for the density of cations in the membrane pores, a quan...
AbstractA Markov model of the cardiac sodium channel is presented. The model is similar to the CA1 h...
Changes in holding potential (Vh), affect both gating charge (the Q(Vh) curve) and peak ionic curren...
The original experiments of Cole and Moore (1960. Biophys. J. 1:161–202.), using conditioning and te...