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The activity phase of postsynaptic neurons in a simplified rhythmic network.

Many inhibitory rhythmic networks produce activity in a range of frequencies. The relative phase of activity between neurons in these networks is often a determinant of the network output. This relative phase is determined by the interaction between synaptic inputs to the neurons and their intrinsic properties. We show, in a simplified network consisting of an oscillator inhibiting a follower neuron, how the interaction between synaptic depression and a transient potassium current in the follower neuron determines the activity phase of this neuron. We derive a mathematical expression to determine at what phase of the oscillation the follower neuron becomes active. This expression can be used to understand which parameters determine the phase of activity of the follower as the frequency of the oscillator is changed. We show that in the presence of synaptic depression, there can be three distinct frequency intervals, in which the phase of the follower neuron is determined by different sets of parameters. Alternatively, when the synapse is not depressing, only one set of parameters determines the phase of activity at all frequencies.

Animals↗

Bicuculline, benzyl penicillin, and inhibitory amino acids in the spinal cord of the cat.

Bicuculline methochloride (BMC), applied by microiontophoresis, tends to depolarize spinal motoneurons and lower their input resistance. With approximately equal iontophoretic currents of gamma-aminobutyric acid (GABA) and BMC, there is an almost equal chance of observing no change, a potentiation, or a depression of the GABA-evoked conductance increase. A block of the GABA action is seen consistently only when the iontophoretic current of BMC is at least double that of GABA. Under these conditions BMC can selectively antagonize GABA without blocking the effects of glycine, though the latter can also be blocked by larger amounts of BMC. BMC also regularly eliminates the usual apparent desensitization to GABA. This may be due to depression of GABA uptake by BMC, which would also account for its potentiating action at lower relative doses. Comparable effects are observed with iontophoretic applications of benzyl penicillin (BP); but even large doses of BP produce no definite change in membrane properties or in conductance increase evoked by GABA or glycine.

Action Potentials↗

On the conduction velocity of nonmyelinated nerve fibers.

Nerve impulse conduction in nonmyelinated nerve fibers is analyzed by considering this process as a direct consequence of the coexistence of two structurally distinct regions, active and resting. Assuming that the active (i.e. swollen) region of the fiber is in direct contact with the resting (i.e. shrunken) region, a simple procedure for deriving the conduction velocity equation is described. The physico-chemical significance of the quantities in this velocity equation is briefly discussed.

Animals↗