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Biomedical subjects

U Altrup

Publications and source records attributed to U Altrup.

32 records · Page 2Linked to original sources

Epileptic discharges induced by pentylenetetrazol: changes of shape of dendrites.

The effect of the epileptogenic drug pentylenetetrazol (PTZ) on the shape of dendrites of identified snail neurons was investigated. Comparison between control and test preparations revealed that changes in the shape of dendrites appeared after PTZ treatment: (i) the number of dendrites, especially filopodia-like structures, increased; (ii) separations and involutions of dendrites occurred. Both of these changes of dendrites were found either separately or in combination.

Animals↗

Inputs and outputs of giant neurons B1 and B2 in the buccal ganglia of Helix pomatia: an electrophysiological and morphological study.

The identified giant neurons B1 and B2 in the buccal ganglia of Helix pomatia were studied with electrophysiological and morphological techniques in order to establish a baseline for the study of neuronal communication in a relatively simple nervous system. Different synaptic inputs to neurons B1 and B2 were found to come from neurons of the buccal ganglia and to come via buccal nerves. In the epithelium of the pharynx, fibers of bipolar peripheral neurons could be stained, the central fibers of which probably contribute to the synaptic inputs of neurons B1 and B2. The dendrites of neurons B1 and B2 are mainly situated in anterior and lateral parts of the neuropil of the buccal ganglia, respectively. The axon of neuron B1 was traced to the esophagus/stomach. Intracellular stimulation of the neuron induces both a contraction of the longitudinally oriented fibers and an increase in the amplitude of spontaneously occurring peristaltic contractions of the esophagus. The axons of neuron B2 run to both salivary glands. Thin axon collaterals showing multiple swellings follow the bases of the epithelial cells of the salivary gland. The functioning of neurons B1 and B2, which are homologous to giant neurons in the buccal ganglia of other molluscs, is discussed.

Action Potentials↗

Intrasomatically recorded action potentials in snail neurons (Helix pomatia): different shapes with different sites of origin in the neuronal arborization. A combined morphological and electrophysiological study.

Fibres of the identified neurons B1 to B3 in the buccal ganglia of Helix pomatia can be divided into three types according to their diameters. Electrical stimulation of nerves containing the different fibres induces typical fast depolarizations in the somata of neurons B1 to B3. The appearance of these depolarizations is strictly correlated to the fibre types. The depolarizations are interpreted as axonal action potentials.

Action Potentials↗

Motor organization in pharynx of Helix pomatia.

Identified motor neurons in the buccal ganglia of Helix pomatia and pharynx muscles innervated by them were studied with intracellular recording and cobalt staining. Retrograde cobalt staining via the buccal nerves indicated that neurons occupy relatively constant positions within the ganglia. With intracellular cobalt staining it was shown that the shape of a representative motor neuron (B4) is similar in different preparations. In some cases, however, deviations from the normal pattern of axon distribution were found. Presumed motor endings of neuron B4 in the muscle were also visualized with intracellular staining. Recordings from individual motor neurons show typical phase relationships of spontaneous spike activity. Most motor neurons are active in the retraction phase of the radula. Only excitatory motor neurons were found. Most neurons directly supply more than one muscle. Amplitude of excitatory junction potentials (EJP) and plasticity at neuromuscular junctions from one neuron are similar in different muscles. Single muscle fibers receive polyneuronal innervation. Activity of single motor neurons already leads to muscle contraction even without spiking of the muscle cells. Muscle tension depends on integrated EJP size. Most motor neurons supply typical combinations of a set of muscles. Thus, several muscles can be activated synchronously by activity of a single motor neuron. In this way muscle combinations are predetermined morphologically by the peripheral branching patterns of the respective neurons.

Animals↗

Changes in neuronal arborizations induced by lesions of the ganglionic perineurium (Helix pomatia).

Lesions of the perineurium of the buccal ganglia of Helix pomatia have been found to elicit changes in neuronal arborizations. These changes were studied by light and electron microscopical techniques. In ganglionic regions of a damaged perineurium, the known arborizations of the identified neurones B1, B2 and B3 were characterized by additional and atypical fibres of small diameters and with multiple swellings. Damaged regions contained an increased number of neuronal fibres often showing vacuoles of great diameters. The changes observed 4-24 h after the damage of the perineurium are interpreted as neuronal sproutings.

Animals↗

Differentiation between anti- and orthodromic responses to nerve stimulation in neurons with axo-axonal synapses (Helix pomatia).

In identified neurons of Helix pomatia nerve stimulation evoked depolarizations of short latencies. The mechanisms underlying these potentials were studied by conventional electrophysiological and intracellular staining techniques. Most of the depolarizations behaved like chemically mediated postsynaptic potentials. The remaining responses can be regarded either as antidromic axonal action potentials (APs) or as electrotonic junction potentials. The differentiation between the latter alternatives and hence the identification of the axonal pathways of the impaled neurons proved to be difficult using conventional methods.

Animals↗

Axonal pathways and synaptic inputs of three identified neurons in the buccal ganglion of Helix pomatia.

The axonal pathways and the synaptic inputs of the identified neurons B1 through B3 in the buccal ganglia of Helix pomatia were studied. The axons of neurons B1, B2 and B3 were found to run invariably within the ipsilateral posterior oesophageal nerve, ipsi- and contralateral salivary gland nerves, and ipsilateral cerebrobuccal connective, respectively. Synaptic responses could be elicited by stimulation of most of the nerves of the buccal ganglia. These consisted of an early depolarization which was most frequently followed by a longlasting de- or hyperpolarization. The shape of the synaptic response proved to be related to the different neurons.

Action Potentials↗

Identified neuronal individuals in the buccal ganglia of Helix pomatia.

The buccal ganglia of Helix pomatia are used as model nervous structures in neurophysiological and epileptological studies. Many basic problems concerning membrane physics and the functioning of single neurons and neuronal networks can be easily studied using these ganglia. The model character derives mainly from the relative simplicity of this nervous system and the fact that it contains large, visually identifiable neurons. As in other invertebrate nervous systems, the large neurons have proved to be individuals showing the same functional and structural properties from one animal to another.

Animals↗

Effects of valproate in a model nervous system (buccal ganglia of Helix pomatia): I. Antiepileptic actions.

Cellular actions of valproate (VPA) were studied using intracellular recordings of identified neuronal individuals in the buccal ganglia of Helix pomatia. Under nonepileptic conditions, VPA induced (a) a hyperpolarization, (b) slight changes in action potentials (AP), and (c) an increase in membrane resistance. Under epileptic conditions (i.e., during application of an epileptogenic drug), extracellular application of VPA decreased frequency of occurrence of epileptic depolarizations (early effect) and led to a decay in paroxysmal depolarizations (late effect). Intracellular injection of VPA could block epileptic activity in the treated neuron immediately. A metabolite of VPA (trans-2-en VPA) mainly lacked the late effect (decay in epileptic depolarizations) obtained with VPA. Results suggest that the early antiepileptic effect is exerted from the extracellular side of the neuronal membrane and that the late effect results from intracellular actions of VPA being delayed by slow access to an intracellular site.

Action Potentials↗

Effects of valproate in a model nervous system (buccal ganglia of Helix pomatia): II. Epileptogenic actions.

High concentrations of valproate (VPA; greater than 20 mM) depolarized identified neuronal individuals in the buccal ganglia of Helix pomatia and transiently induced paroxysmal depolarization shifts (PDS). Threshold concentration of VPA for the induction of PDS was decreased (a) by increased seizure susceptibility, (b) by increased concentrations of derivatives of VPA, and (c) by increased H+ concentrations. Intrasomatic injection of VPA did not induce PDS. The epileptogenic action of VPA is believed to be exerted from the extracellular side of the cell membrane.

Animals↗

Simultaneous and continuous measurement of free concentration of valproate in blood and extracellular space of rat cerebral cortex.

Free concentration of valproate (VPA) was measured simultaneously and continuously in blood and in the extracellular space of cerebral cortex of rats by VPA-selective microelectrodes. Constant amounts of VPA were injected into the femoral vein with differing duration of injection. Immediately after drug application, the concentration of free VPA in blood and brain increased to a peak value, the degree of which increased with the speed of injection. Ten to 15 min after VPA injection, a plateau value was reached. This plateau value was equal in the extracellular space of cortex and in blood. The data indicate that VPA can "freely" cross the blood-brain barrier (BBB).

Animals↗

Identified neuronal individuals in the buccal ganglia of Helix pomatia.

The buccal ganglia of Helix pomatia are used as model nervous structures in neurophysiological and in epileptological studies. Many basic problems concerning membrane physics, functioning of the single neurons and of neuronal networks can be studied easily using these ganglia. The model character mainly comes from the relative simplicity of this nervous system and that it contains large visually identifiable neurons. As in other invertebrate nervous systems, the large neurons have proved to be individuals showing the same functional and structural properties from one animal to the next.

Animals↗