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Biomedical subjects

H Wigström

Publications and source records attributed to H Wigström.

14 recordsLinked to original sources

[Memory at the synaptic level].

Ever since the discovery of the synapse at the end of the last century it has been surmised that elementary neural changes underlying learning and memory are located at the junctions between nerve cells. Experimental studies during the past 20 years have demonstrated the existence of several synaptic modification processes, the most prominent being long-term potentiation (LTP) in the hippocampus. Several links between LTP and learning/memory have been established. For example, memory impairment in older rats is well correlated, with increasing decline of LTP, and N-methyl-D-aspartate (NMDA) receptor antagonists give rise to a parallel blockade of LTP and of spatial task learning. Studies on rats in a natural learning situation have also demonstrated 'spontaneous' occurrence of LTP. LTP is induced as a consequence of coincident pre- and post-synaptic activity, and thus in conformity with a basic principle of learning theory known as Hebb's rule. Responsible for this associative induction is the NMDA-subtype of glutamate receptor channel with its unique property of being both transmitter and voltage controlled. Its opening allows calcium ions to enter the postsynaptic cell and to initiate biochemical processes leading to a lasting synaptic modification. The nature of the critical processes involved in establishing the modification(s) is uncertain, although the participation of calcium-activated protein kinases seems likely. There is still considerable controversy whether the actual change occurs postsynaptically, or presynaptically, triggered via a retrograde signal from the postsynaptic cell. LTP similar to that in the hippocampus has recently been described for various neocortical regions.

Animals

Synaptic potentiation in the hippocampal CA1 region induced by application of N-methyl-D-aspartate.

The effect of local pressure application of N-methyl-D-aspartate (NMDA) in the synaptic layer of CA1 pyramidal cells was investigated in the guinea pig hippocampal slice preparation using extracellular recording technique. Application of NMDA produced a transient depression and a subsequent 30-60 min potentiation of the field excitatory postsynaptic potential (EPSP) seen as an increase of the initial slope and amplitude of the EPSP. The increase in amplitude was consistently greater than that of the initial slope. Prior tetanization that caused saturation of long-term potentiation prevented the generation of an NMDA-induced potentiation of the initial slope for more than 1-2 h, but not the generation of an increase of the amplitude.

Animals

Long-lasting potentiations evoked by a brief heterosynaptic tetanus in the guinea pig dentate gyrus in vitro.

The heterosynaptic effects induced by a brief afferent tetanization in the molecular layer of the dentate gyrus were investigated in the guinea pig hippocampal slice preparation using extracellular recording technique. At a brief interval (5 ms) between a single stimulation of the test afferents and the tetanus evoked in the conditioning afferents, a long-lasting (greater than 1 h) potentiation of the test field excitatory postsynaptic potential (EPSP) initial slope and amplitude was observed. This potentiation was occluded by prior homosynaptic tetanization of the test afferents, suggesting that it represents long-term potentiation (LTP). Thus, in the dentate gyrus, a single activation of a single test EPSP suffices to induce LTP when coinciding in time with a brief tetanus to other afferents. When not temporally paired with the test stimulation, i.e. at longer test-conditioning intervals (greater than 50 ms), the conditioning tetanus also elicited a long-lasting potentiation of the test field EPSP. This potentiation was, however, seen as a prolongation of the rising phase with no change in the field EPSP initial slope, and may represent a potentiation distinct from LTP.

Animals

Long-term potentiation in the hippocampal CA1 region: its induction and early temporal development.

Long-term potentiation (LTP) is a process that due to its prolonged time course and associative nature of induction is believed to be involved in learning and memory in the mammalian brain. In this chapter the experimental evidence for the view that LTP is initiated by an influx of calcium ions through synaptically controlled N-methyl-D-aspartate (NMDA) receptor channels is discussed. It will also be described how LTP develops following its induction. It will be shown that there is a considerable delay, about 2-3 s, between a tetanus and the initiation of LTP, and that additional 20-30 s are needed for the potentiation to reach peak levels. The potentiation subsequently decays to a degree which depends primarily on tetanus length. It will be argued that this early phase of tetanus-induced LTP is of the same nature as that present a few hours later.

Action Potentials

Decreased nerve conduction velocity in optic nerve following early post-natal low-dose lead exposure.

A study was made on nerve conduction velocity of the optic nerve in rats subjected to lead exposure during the first 2 weeks of post-natal life. The rats were given intraperitoneal injections with a calculated daily exposure of 7.6 micrograms (low-dose) or 15.8 micrograms (high-dose) lead g-1 body weight. Growth retardation at 30 days was seen only with the higher dose. Littermates of low-dose exposed rat were injected with vehicle only and served as controls. Lead concentrations in blood and brain were measured in rats of 20 days of age in order to ascertain that exposure was adequate in the present litters. Nerve conduction velocity of the optic nerve was examined in 14 rats of 30 days of age taken from 10 different litters. The optic nerve(s) was prepared in anaesthetized rats and placed in a flow-through incubation chamber. One stimulating and two recording tungsten electrodes were used. In all rats, three positive-negative waves, regarded as representing three functional groups of optic nerve axons, could be recorded. The last one often had a long duration and a small amplitude without distinct peaks and hence was omitted from further analysis. The mean conduction velocities for the two faster axonal groups were 16.8 and 5.4 m s-1 in control rats, 10.3 and 5.8 m s-1 in low-dose rats and 9.4 and 5.2 m s-1 in high-dose rats. The difference in conduction velocity for the fastest axons was significant for controls versus low-dose and high-dose but not for low-dose versus high-dose.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

On the function of recurrent inhibition in the spinal cord.

Recurrent inhibition of alpha-motoneurons, via motor axon collaterals and Renshaw cells, obviously reduces the response (output) from a motor nucleus to a given synaptic input. It is proposed that the supraspinal covergence on Renshaw cells allows recurrent inhibition to serve as a variable gain regulator at motoneuronal level. This would allow for an optimal resolution in the force control during weak as well as strong contractions. Renshaw cells are not only inhibiting alpha-motoneurons but also gamma-motoneurons and IA inhibitory interneurons. It is argued that this distribution is meaningful since all these receptive neurons act together as a functional unit, forming an "output stage" of the motor system.

Animals

Recurrent inhibition and afterhyperpolarization following motoneuronal discharge in the cat.

1. The relation between the size of a monosynaptic reflex (varying from the smallest values to the maximal motor response) and the output from Renshaw cells was investigated. This relation was extremely variable from one Renshaw cell to another. However, a linear relation between the reflex size and the early discharge emerged when the responses of all the Renshaw cells were averaged or when the summed activity of a pool of Renshaw cells was estimated by recording the recurrent inhibition in their target motoneurones. It was concluded that the lowest threshold motoneurones were efficient in producing recurrent inhibition. 2. In motoneurones, recorded intracellularly, the size of the depression caused by the afterhyperpolarization was compared to the maximum autogenetic recurrent inhibition. Under the particular experimental conditions used to mimic human experiments (Hultborn & Pierrot-Deseilligny, 1979a), it was found that recurrent inhibition had the same order of magnitude as the depression caused by afterhyperpolarization. 3. The additional depression caused by the summation of afterhyperpolarizations of two consecutive spikes was measured. It was shown that a summation of importance equal to the maximum autogenic recurrent inhibition required a mean interspike interval of 25 msec.

Animals

Functional characteristics of unmyelinated fibres in the hippocampal cortex.

(1) In transverse hippocampal slices (350 micrometer thick), taken from guinea pigs initially anaesthetized with ether, intracortical afferent fibres were activated by small current pulses delivered through tungsten microelectrodes. Extracellular potentials were recorded from the zone of activated fibres in dendritic layers while intracellular recordings were made from the soma of CA1 pyramidal cells. (2) When recording was made from the same level as the stimulating cathode, the extracellular potential consisted of a diphasic deflection followed by a larger negative wave with a superimposed population spike. The negative wave corresponded to an intracellularly recorded EPSP, and is called an extracellular EPSP, whereas the initial diphasic deflection had no intracellular counterpart. (3) The initial diphasic deflection was linearly related to the size of both the intracellular and extracellular EPSP. It was not changed by removal of calcium ions from the bathing fluid, whereas all postsynaptic activity disappeared. The diphasic deflection was propagated along fibres lying parallel to the pyramidal layer with a velocity of 0.3 m/sec. It could follow short bursts of stimulation at 300 Hz. The absolute refractory period was 2.0 msec. (4) The initial diphasic deflection is interpreted as the compound action potential of the largely unmyelinated afferent fibres to the CA1 neurones.

Afferent Pathways

Spatial propagation of associations in a cortex-like neural network model.

A neural network model is studied, having associative memory properties and allowing retrieved associations to propagate within the network. It is intended as a tentative description of the cerebral cortex consisting of "pyramidal cells" with modifiable synapses and "stellate cells" providing feedback through excitatory and inhibitory recurrent pathways. The model is based on some general assumptions: Learning occurs through facilitation of synapses which depends on simultaneous pre- and postsynaptic activity (two-conditional facilitation). Connections within the network are realizations of a random process, implying that nearby cells are more likely to be connected than distant one. The two-conditional facilitation makes it possible for an output signal pattern which occurred in conjunction with a certain input pattern to be retrieved later by reapplying the particular input, the model working as an associative memory. The random connections and the operation of the stellate cell models as linear threshold units give rise to pattern separation in the feedback link. This, in addition to the fact that patterns form associations with themselves, is of importance during the associative recall enabling the network to attain alternative stable modes of activity each corresponding to a learned association. It is shown that a learned pattern of activity which is retrieved, ie, a stable mode, can propagate across the surface of the network. The mode of activity evoked through a certain association may get into contact with modes originating from different associations, forming a stable or slowly moving boundary between the interacting modes. The model is discussed in relation to some properties of the visual system.

Association

Associative recall and formation of stable modes of activity in neural network models.

Models of neural networks with recurrent inhibition are studied, as well as one model which also includes recurrent excitation. The models are intended as possible descriptions of the cerebral cortex. Each network model is composed of neuron models called pyramidal cells and stellate cells in accordance with the names of two types of cells in the cortex. Inputs and outputs of the network are connected to the pyramidal cells while feedback is provided by the stellate cells. Connections within the network are random. During a learning phase the pyramidal cell excitatory synapses become facilitated according to a two-conditional facilitation rule. This is the basis of the model's ability for associative learning. The associative retrieval of information can be studied during a subsequent association phase. This has been done by simulation on a digital computer. It was shown that all of the models considered can be designed to perform a so-called decision-making function. This means that if the associating input pattern is similar to several patterns which occurred during learning the model can decide which similarity is greatest by responding with the appropriate associated pattern. The model also including recurrent excitation differs from the simpler models in that it can become stabilized in so-called stable modes of activity which are self-sustaining and remain even after the input has been turned off. Normally, only one stable mode can be active at a time. However, through careful choice of construction parameters it was possible to obtain a model in which a maximum of two stable modes could be activated independently of each other. Physiological and psychological interpretations are discussed and so are the limitations of the models, which are evident in certain situations.

Cerebral Cortex