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Y Grossman

Publications and source records attributed to Y Grossman.

64 records · Page 4Linked to original sources

Mechanisms involved in differential conduction of potentials at high frequency in a branching axon.

1. The ionic mechanisms involved in block of conduction of action potentials following high frequency stimulation were studied in a branching axon of the lobster Panulirus penicillatus. 2. A 2-3 mM increase in extracellular K concentration (normal concentration 12 mM) produced block of conduction into both daughter branches. 3. While conduction block induced by high frequency stimulation occurs first into the large daughter branch and only later into the smaller one, propagation into both branches is blocked simultaneously by increased extracellular K concentration. 4. Increasing extracellular K by 2-3 mM resulted in membrane depolarization, reduction in membrane resistance and reduced excitability. The latter two effects were larger than expected from the small depolarization. It appears that increase of extracellular K has direct effects on membrane excitability. 5. It is suggested that block of conduction after high frequency stimulation results from accumulation of K in the extracellular space. However, in order to account for differential conduction block in the two branches one must assume differential buildup of extracellular K concentration around the two branches during high frequency stimulation. 6. Ultrastructural studies using La and horseradish peroxidase as extracellular markers show that the space around the two branches is similar and is open to the extracellular space. Therefore differences in periaxonal volume cannot account for differential buildup of K around the two branches. 7. It is demonstrated that the lobster axon has a Na+/K+ electrogenic pump. After blocking this pump with ouabain, stimulation at high frequency resulted in a conduction block in the two branches almost at the same time. 8. Injection of Ca2+ intracellularly into the thick branch prevents or delays the appearance of conduction block after high frequency stimulation. 9. A mechanism based on these findings is suggested to explain the differential conduction block seen after high frequency stimulation in a branching axon with almost ideal impedance matching.

Action Potentials↗

Cholinergic features of photoreceptor synapses in Hermissenda.

1. A number of observations, as listed below, suggested a cholinergic basis for inhibitory interactions between photoreceptors of the eye in the nudibranch mollusk Hermissenda crassicornis. 2. The isolated eyes synthesized and accumulated acetylcholine but not other putative neurotransmitter substances. Synthesis and accumulation were determined by electrophoretic separation of products that incorporated radioactive label. Electron microscopic visualization of clear round vesicles within the photoreceptors' somata and axon hillocks was consistent with synthesis and storage of acetylcholine within these cells. 3. Pharmacologic experiments indicated the presence of cholinergic receptors on the terminal branches of the photoreceptors, which are pre- and postsynaptic to each other. Carbachol or nicotine produced hyperpolarization of the photoreceptors' membrane accompanied by a reduction of the input resistance. The reversal potential of carbachol-induced hyperpolarization coincided with the reversal potentials of the IPSPs that followed, one for one, impulses of neighboring photoreceptors. Eserine often caused blockade of the IPSPs. This blockade was associated with substantial membrane hyperpolarization and reduction of membrane resistance. 4. Neuronal endings within the optic tract in the area of the photoreceptor's terminal branches stained for acetylcholinesterase. 5. The results of these different experiments, especially when considered together, strongly suggest, although by no means unequivocally demonstrate, that the neurotransmitter of the photoreceptors is acetylcholine.

Acetylcholine↗

Evidence for nonsynaptic neuronal interaction.

1. Evidence is presented that synaptic interactions within and between the statocyst and visual pathways of Hermissenda are eliminated after 0.5-4 min exposure to 20-40 mM Co2+. 2. Synaptic blockade was also produced by perfusion with low Ca2+ (5mM) plus 10-20 mM Co2+. 3. Depolarization of hair cells by impulses of type A photoreceptors remains after the same exposure to Co2+, or low Ca2+ plus Co2+. 4. The increased resistance previously observed during this depolarization of hair cells cannot be observed after exposure to Co2+. 5. The depolarization which remains after exposure to Co2+ did not change with different levels of membrane potential from -20 mV below to +10 mV above the resting level. 6. The time course of potassium accumulation, monitored by the amplitude of the type A impulse afterpotential, closely followed the time course of hair cell depolarization and also of changes in the amplitude of the hair cell afterpotential. 7. The depolarization of hair cells by type A impulses decreased with increased extracellular potassium, but was only slightly reduced by lowered extracellular potassium. 8. The amount of potassium accumulation following a type A impulse train could be estimated from the effects of changes in extracellular potassium in the perfusate on the type A impulse afterpotential. From this extimated increase of extracellular potassium it was possible to predict with some accuracy, the observed hair cell depolarization. 9. Although type A cells are not electrically coupled to ipsilateral hair cells, firing of these hair cells slightly depolarized the type A photoreceptor which excites them. 10. Strophanthidin (10-4 M) did not block the depolarization of hair cells by type A impulses. 11. The data are evidence for nonsynaptic excitation of hair cells by type A photoreceptor impulses. The data are also consistent with the interpretation that the excitation arises from potassium accumulation around the type A and hair cell axonal membranes.

Animals↗

Period doubling of calcium spike firing in a model of a Purkinje cell dendrite.

Recordings from cerebellar Purkinje cell dendrites have revealed that in response to sustained current injection, the cell firing pattern can move from tonic firing of Ca(2+) spikes to doublet firing and even to quadruplet firing or more complex firing. These firing patterns are not modified substantially if Na(+) currents are blocked. We show that the experimental results can be viewed as a slow transition of the neuronal dynamics through a period-doubling bifurcation. To further support this conclusion and to understand the underlying mechanism that leads to doublet firing, we develop and study a simple, one-compartment model of Purkinje cell dendrite. The neuron can also exhibit quadruplet and chaotic firing patterns that are similar to the firing patterns that some of the Purkinje cells exhibit experimentally. The effects of parameters such as temperature, applied current, and potassium reversal potential in the model resemble their effects in experiments. The model dynamics involve three time scales. Ca(2+)- dependent K(+) currents, with intermediate time scales, are responsible for the appearance of doublet firing, whereas a very slow hyperpolarizing current transfers the neuron from tonic to doublet firing. We use the fast-slow analysis to separate the effects of the three time scales. Fast-slow analysis of the neuronal dynamics, with the activation variable of the very slow, hyperpolarizing current considered as a parameter, reveals that the transitions occurs via a cascade of period-doubling bifurcations of the fast and intermediate subsystem as this slow variable increases. We carry out another analysis, with the Ca(2+) concentration considered as a parameter, to investigate the conditions for the generation of doublet firing in systems with one effective variable with intermediate time scale, in which the rest state of the fast subsystem is terminated by a saddle-node bifurcation. We find that the scenario of period doubling in these systems can occur only if (1) the time scale of the intermediate variable (here, the decay rate of the calcium concentration) is slow enough in comparison with the interspike interval of the tonic firing at the transition but is not too slow and (2) there is a biostability of the fast subsystem of the spike-generating variables.

Action Potentials↗

Effect of CO2 on Vth nerve inhibition of respiration in isolated rat nervous system.

The role of hypercapnia in terminating trigeminal (Vth) nerve inhibition of respiration is not clear. Phrenic nerve responses to Vth nerve stimulation were examined during eucapnia and hypercapnia. We hypothesized that hypercapnic stimulation might not be sufficient to overcome the inhibitory effects of the Vth nerve, and thus would fail to restore respiratory center output to baseline values. Isolated rat brainstem-spinal cord preparations from newborn rats were placed in a tissue bath and superfused with modified Krebs solution at 27 degrees C. Respiratory related activity was recorded from cut C1 or C5 ventral roots. Tonic stimulation of the Vth nerve (1 Hz for 15 min) under eucapnic conditions initially inhibited the frequency of respiratory activity over the first 1-2 min, followed by partial recovery after 4 min to 50-60% of the control level. Stimulation of the Vth nerve at 0.5 Hz initially decreased the respiratory frequency to about 40% of baseline over the first 3 min, which then increased to control levels within 6 min despite continued Vth nerve stimulation. Exposure to hypercapnia (15 KPa PCO2) increased the baseline respiratory frequency. However, hypercapnic stimulation only partially reduced the degree of the Vth nerve inhibitory effect. We conclude that 15 KPa PCO2 only partially reverses the inhibitory effect of the Vth nerve stimulation at the level of the central respiratory controller.

Animals↗

CNS manifestations of HPNS: revisited.

Exposure to high pressures (HP) has been associated with the development of the high pressure neurological syndrome (HPNS) in deep-divers and experimental animals. In contrast, many diving mammals are naturally able to withstand very high pressures. Although at a certain pressure range humans are also able to perform to some extent, the severe signs of HPNS at higher pressures motivated the research on the pathophysiology underlying this syndrome rather than on possible adaptive mechanisms. Thermodynamically, high pressure resembles cooling. Both conditions usually involve reduction in the entropy and slowing down of kinetic rates. We have observed in rat corticohippocampal brain slices that high pressure slows and reduces excitatory synaptic activity. However, this was associated with increased gain of the system, allowing the depressed inputs to elicit regular firing in their target cells. This increased gain was partially mediated by elevated excitability of their dendrites and reduction in the background inhibition. This compensation is efficient at low-medium frequencies. However, it induces abnormal spike reverberation at the high frequency band (> 50 Hz). Synaptic depression that requires less vesicles/transmitter turn over may serve as an energy-saving mechanism when enzymes and membrane pumps activity are slowed down at pressure. It is even more efficient if a similar reduction is induced in inhibitory synaptic activity. Unfortunately, the frequency response characteristics at this mode of operation may make the system vulnerable to external signals (noise, auditory, visual, etc) at frequencies that elicit 'resonance' responses. Therefore, it is expected that humans exposed to pressures above 1.5 MPa display lethargy and fatigue, certain reduction in cognitive and memory functions when the system is working in an 'economic' mode. The more serious signs of HPNS such as nausea, vomiting, severe tremor, disturbance of motor coordination, and seizures, may be the consequence of an interaction between the 'economic' mode of operation and resonance-inducing environmental disturbances.

Acclimatization↗

Modulation of impulse conduction through axonal branchpoint by physiological, chemical and physical factors.

The impulse conduction capability of a crustacean bifurcating motor axon was studied under various physiological and physical conditions, and effects of several pharmacological agents were tested. The passive and active membrane properties were measured by intra- and extracellular recording, macropatch clamp and vaseline gap voltage clamp. Block of condition after high-frequency stimulation is caused by accumulation of K+ in the extracellular space, while its differential nature is attributed to early activation of the Na+-K+ electrogenic pump and increased intracellular Ca2+ in the thinner branch. Decreased Na+ and K+ conductance, or increased K+ conductance induced by various drugs, largely reduced the maximal following frequency of the branchpoint. High pressure initially increased the neuron excitability, and later decreased, to below control levels, the axon ability to conduct at high frequency. Cooling had a similar effect on the delayed effects of high pressure. The physiological significance of the frequency-dependent block and its possible role in anesthesia, epilepsy, high-pressure nervous syndrome and behavior are discussed.

Animals↗