PubMed HealthSearch

Biomedical subjects

W Kamphuis

Publications and source records attributed to W Kamphuis.

At least 19 recordsLinked to original sources

Hippocampal kindling increases the expression of glutamate receptor-A Flip and -B Flip mRNA in dentate granule cells.

The level of the mRNAs encoding the AMPA-selective glutamate receptors-A and -B, alternatively splice variants, Flip and Flop, was studied by in situ hybridization in the brains of rats kindled by Schaffer collateral/commissural-fiber stimulation. In comparison to control animals, the expression level of the Flip variant of both GluR-A and GluR-B mRNAs was bilaterally enhanced in the dentate granule neurons of kindled animals 24 h after last-generalized seizure, whereas no obvious alterations were observed in the GluR-A Flop and GluR-B Flop mRNA variants. In kindled animals, studied 1 month after the last seizure, GluR-A Flip and GluR-B Flip mRNA had returned to control levels. We suggest that these changes may result in an enhanced glutamate receptor sensitivity in the fascia dentata during kindling.

Alternative Splicing

Hippocampal kindling leads to different changes in paired-pulse depression of local evoked field potentials in CA1 area and in fascia dentata.

Monosynaptic evoked field potentials (EPs) in response to paired-pulse stimulation (20 ms interval) were recorded in area CA1 and fascia dentata of the same animal in the course of development of a kindled focus in the CA1 region. A significant reduction of paired pulse depression in response to medium and high stimulation intensity was found in CA1. A similar change was found in the fascia dentata in response to medium intensity stimulation of the angular bundle. In contrast, at high intensity, paired pulse depression was enhanced in the fascia dentata in the course of kindling. These results indicate that kindling epileptogenesis is accompanied by regionally different changes in recurrent inhibition: a reduction in CA1 and intensity dependent changes in fascia dentata.

Animals

Current source density of sustained potential shifts associated with electrographic seizures and with spreading depression in rat hippocampus.

The membrane currents responsible for the sustained potential shifts associated with electrographic seizures and with spreading depression in hippocampus were studied in the anesthetized rat. Probes incorporating 16 sensors in a straight line, spaced at 150-microns distances, were recording the potential changes with DC-coupled amplifiers in CA1 and dentate gyrus (DG) of one hemisphere. Seizures and spreading depression were provoked by repetitive stimulation of different afferent pathways. Seizures always began in DG before CA1, regardless of the pathway stimulated. Tonic seizures were associated with a sustained negative potential shift that was largest in the cell body layers. Current source density was computed from these recordings and confirmed the presence of a current sink limited to the cell body layer throughout the duration of electrographic seizures. Spreading depression was associated with a very large sink located in the layer of apical dendrites, maximal among the proximal segment of dendrites, to which the cell body layer served as a source. We conclude that seizures are associated with an inward current in neuron cell bodies, probably flowing through membrane channels of as yet no know physiological function.

Animals

Enhancement of endogenous release of glutamate and gamma-aminobutyric acid from hippocampus CA1 slices after in vivo long-term potentiation.

The effect of long-term potentiation (LTP) on endogenous amino acid release from rat hippocampus slices was studied. LTP was induced in vivo by application of a tetanus (200 Hz, 200 ms) to the Schaffer collateral fibers in unanesthetized rats. Endogenous release of glutamate and gamma-aminobutyric acid (GABA) was investigated 60 min after tetanization in CA1 subslices of potentiated and control rats. No significant effects of LTP were observed in basal and K(+)-induced Ca(2+)-independent release components of these amino acids. In contrast, K(+)-induced Ca(2+)-dependent release of both glutamate and GABA increased approximately 100% in slices from potentiated rats. No differences were observed in total content of glutamate and GABA between the subslices from control and LTP animals. These results suggest a persistent increase in the recruitment of the presynaptic vesicular pool of glutamate and GABA during LTP.

Animals

Development of changes in endogenous GABA release during kindling epileptogenesis in rat hippocampus.

The calcium-dependent gamma-aminobutyric acid (GABA) and glutamate release from rat hippocampal CA1 slices, evoked by a 1-min depolarization with 50 mM K+, was investigated in different stages of kindling epileptogenesis. Kindling was induced by tetanic stimulation of the Schaffer collateral/commissural pathway. In agreement with our previous results, we found a significantly increased calcium-dependent GABA release compared to that of implanted controls, in a group of fully kindled animals 1 day after the last seizure and also 25-36 days after the last seizure. In addition, we found that the increase in GABA release was associated with late phases of kindling epileptogenesis since no significant alterations were found in partly kindled animals that had received only 6 kindling stimulations while a significant increase was apparent in animals that had received 14 tetanic stimuli. When the release protocol was carried out in the presence of SK&F 89776-A, a blocker of the GABA uptake carrier, an additional amount of GABA was found after depolarization. This additional amount of GABA, reflecting the amount of GABA taken up under conditions without blocker, was in kindled animals not different from controls which demonstrates that a reduced GABA uptake does not account for the observed enhanced release in kindled animals. The calcium-dependent release of glutamate evoked by 1 min of high potassium depolarization was not significantly changed in the kindled groups. Only after prolonged depolarization during 4 subsequent minutes a significant increase in animals of the fully kindled group and at long-term after kindling was observed. The threshold K+ concentration for eliciting a calcium-dependent release of GABA and glutamate, was not changed in the kindled animals.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

A long-lasting decrease in the inhibitory effect of GABA on glutamate responses of hippocampal pyramidal neurons induced by kindling epileptogenesis.

Experiments were carried out to test whether changes in the sensitivity of hippocampal pyramidal neurons to the neurotransmitters glutamate, GABA and noradrenaline may be associated with the establishment of an epileptogenic focus induced by kindling. The effects of iontophoretically applied neurotransmitters on the firing rate of single units were quantified in the rat hippocampal CA1 area in kindled and control animals. Kindling was induced by electrical tetanic stimulation of the Schaffer collateral/commissural fibers. Firing was evoked by local glutamate iontophoresis while simultaneous GABA or noradrenaline application suppressed this response. A significant reduction of the GABAergic inhibitory action on the firing rate in kindled animals studied around four or around 42 days after the last convulsion was found. In the same neurons, the suppressive effect of noradrenaline was not different from controls. The neurons of kindled animals, investigated around four days after the last seizure, had a reduced sensitivity for glutamate; more glutamate ejection current was needed to evoke firing or to evoke the maximum firing rate. In contrast, the responsiveness for glutamate was significantly increased long-term after the last convulsion. These findings demonstrate that hippocampal Schaffer collateral kindling is associated with a long-lasting reduced effectiveness of the GABA-mediated response on glutamate-evoked firing in CA1.

Analysis of Variance

Neonatal clonidine treatment results in long-lasting changes in noradrenaline sensitivity and kindling epileptogenesis.

In the present experiment we tested the hypothesis that early interference with noradrenaline transmission can have permanent consequences for brain function in adulthood. Neonatal depletion of noradrenaline by daily subcutaneous injections of clonidine results in supersensitivity to noradrenaline in adult hippocampal CA1 cells as shown in our previous microiontophoretic study. These findings were confirmed and extended here with dose-response curves. Furthermore, we tested whether this form of neonatal interference with noradrenaline also permanently affects long-lasting plasticity as revealed in kindling epileptogenesis in adulthood. The initiation of the epileptic activity after the kindling stimulation was significantly delayed in the clonidine-treated group, and all measured parameters of seizure expression tended to be retarded in comparison with saline-treated control rats. This indicates that noradrenaline supersensitivity induced by neonatal clonidine treatment retards kindling development in adulthood.

Animals

Kindling increases the K(+)-evoked Ca2(+)-dependent release of endogenous GABA in area CA1 of rat hippocampus.

The release of endogenous amino acids from hippocampal CA1 subslices under basal conditions and the release evoked by high potassium (50 mM K+) depolarization was studied during kindling epileptogenesis. Emphasis was put on the release of the amino acid neurotransmitters gamma-aminobutyric acid (GABA) and glutamate. Kindling was induced by tetanic stimulation of the Schaffer-collaterals/commissural fibers of the dorsal hippocampus of the rat. The calcium-dependent GABA release in the presence of high K+ was significantly increased (40-46%) in fully kindled animals, 24 h after the last seizure, in comparison to controls. At long-term, 28 days after the last seizure, the calcium-dependent GABA release was still significantly increased (45-49%). An increased release of GABA in kindled animals was still found when GABA uptake was blocked by nipecotic acid. In contrast, no significant alterations were encountered in the basal or high potassium induced release of the excitatory amino acids aspartate and glutamate. These results suggest that kindling epileptogenesis is accompanied by a specific and long-lasting enhancement of GABA exocytosis which may lead to a desensitization of the GABA receptor, and thus determine the increase of seizure sensitivity.

Animals

Kindling induced changes in parvalbumin immunoreactivity in rat hippocampus and its relation to long-term decrease in GABA-immunoreactivity.

The immunoreactivity of parvalbumin (PV), a Ca2+-binding protein present in a subpopulation of interneurons, was studied in the hippocampal CA1 region during kindling epileptogenesis, induced by tetanic stimulation of the Schaffer collateral/commissural fibers. PV-immunoreactivity was increased in comparison to controls after 13 afterdischarges and after the induction of generalized seizures. A quantification of the number of PV-immunoreactive somata showed an increase of 20% in both stages of kindling. This level had returned to baseline level 31 days after the last seizure. These results imply that changes in PV-immunoreactivity are related to seizure activity rather than to the long-term increase in seizure sensitivity in kindled animals. Co-localization study in controls showed that 32% of PV-immunoreactive somata were also immunopositive for GABA. A colocalization study in stratum oriens and pyramidale on the stimulated side of kindled animals 31 days after the last generalized seizure showed neither a reduction in the number of PV-immunoreactive somata nor in the number of GABA-immunopositive cell bodies that co-localized with PV. In contrast, the number of GABA-immunoreactive somata that did not co-localize with PV was reduced by 50%. It has been shown that a large influx of Ca2+ plays a crucial role in epileptogenesis. Here we demonstrate that the presence of the calcium-binding protein parvalbumin seems to exert a protective effect against the process that leads to a decrease in GABA content.

Animals

Paradoxical sleep deprivation does not affect neuronal excitability in the rat hippocampus.

Before, during and after paradoxical sleep deprivation, field potentials, evoked in the CA1 region and in the fascia dentata of the hippocampus by means of paired pulse stimulation, were measured. Paradoxical sleep deprivation was applied for 3 days, using the platform and the pendulum technique. No changes were observed on evoked field potential amplitude, population spike or paired pulse depression during and after the deprivation period. These results suggest that the neuronal excitability in the rat hippocampus, measured with the evoked potential technique, does not change as a result of paradoxical sleep deprivation.

Action Potentials

Decrease in GABA immunoreactivity and alteration of GABA metabolism after kindling in the rat hippocampus.

The kindling model of epilepsy, induced by tetanic stimulation of Schaffer collateral/commisural fibers, was studied in the rat hippocampus. Gamma-aminobutyric acid immunoreactivity was used to quantify the number of GABA-immunoreactive somata per mm2 in CA1 region, 28 days after the last generalized seizure. Comparison of the numbers obtained from kindled animals with those from controls, showed a significant decrease (18%) on the ipsilateral stimulated side but none on the contralateral side. In control rats injection of the GABA-transaminase inhibitor, amino oxyacetic acid (AOAA), led to a 46% increase in the number of cell somata immunoreactive for GABA. This probably results from an accumulation of GABA, reflecting GABA synthesis by glutamate decarboxylase (GAD) activity, in somata of interneurons that had initially a GABA content below the immunocytochemical detection threshold. In kindled rats, 31 days after the last seizure, the number of GABA-immunoreactive cells that could be observed after AOAA-treatment was significantly lower (35% ipsilateral and 25% contralateral) when compared to AOAA-treated controls. This suggests that in kindled animals a GAD dependent increase in GABA content did not take place in a subpopulation of interneurons. The observations for kindled rats are interpreted as a long-term decrease in GABA content and as an alteration in GABA turnover in a subpopulation of interneuron somata, the latter possibly due to a decrease in GAD activity. The long-term enhanced seizure sensitivity, characteristic for kindled animals, may be due to a decreased GABAergic inhibitory control of the neuronal circuitry in the CA1 region of the hippocampus.

Aminooxyacetic Acid

Transient increase of cytoplasmic calcium concentration in the rat hippocampus after kindling-induced seizures. An ultrastructural study with the oxalate-pyro-antimonate technique.

Kindling stimulations were applied to the Schaffer collateral/commissural fibers in the CA1 area of the dorsal rat hippocampus. In fully kindled animals the ultrastructural distribution of calcium was studied at different time intervals after an induced generalized seizure, using the oxalate-pyro-antimonate technique. Semi-quantitative analysis of the amount of precipitate revealed no change in the investigated structures analysed after 2 h or 24 h: boutons and spines of the Schaffer-collateral/pyramidal-dendrite synaptic contacts, cytoplasm and mitochondria of terminals on pyramidal cell bodies and smooth dendrites. The major change was found 15 min after a seizure, when calcium precipitate in boutons and spines of stratum radiatum was strongly increased, precipitate in somata terminals only slightly, while smooth dendrites were not affected. These results imply a seizure-related increase of the intracellular calcium concentration. The transient character suggests that the investigated cellular compartments in kindled tissue are still capable of maintaining calcium homeostasis. The observed increase in precipitate density for at least 15 min may initiate the neurochemical mechanisms leading to an enhanced seizure sensitivity in the kindling model of epilepsy.

Animals

Changes in local evoked potentials in the rat hippocampus (CA1) during kindling epileptogenesis.

Electrophysiological changes occurring during the development of a kindled focus in the CA1 region of the rat hippocampus were studied in vivo. The most conspicuous changes of the field potentials (EPs) recorded from the stratum radiatum to stimulation of the Schaffer collaterals were the following: (1) a progressive decrease of the slope of the decaying phase of the EPs which was significantly different (P less than 0.02) from controls from sessions 8-12 onwards; (2) in the EPs recorded from the stratum pyramidale/oriens a population spike emerged from sessions 7-10 onwards; the ratio amplitude of the population spike/slope of the local EP increased progressively from session 8 onwards until a saturation level was reached; and (3) a progressive attenuation of paired-pulse depression; this decreased linearly with kindling session from session 1 up to session 11 (r = 0.97, P less than 0.01) and thereafter stabilized. These results are interpreted as due to a progressive imbalance between excitatory and inhibitory processes resulting in a decrease of inhibitory control in CA1 accompanied by a decrease in threshold of pyramidal neurons.

Action Potentials

The development of changes in hippocampal GABA immunoreactivity in the rat kindling model of epilepsy: a light microscopic study with GABA antibodies.

Immunocytochemical techniques were used to study changes of GABA immunoreactivity in the rat hippocampal CA1 region during kindling epileptogenesis, gradually developing over a period of two weeks by daily electrical tetanization of Schaffer collaterals/commissural fibres. The number of GABA-immunoreactive somata per mm2 was quantified in CA1 region after 6 and 14 stimulus-induced afterdischarges and in fully kindled animals. The absolute values were compared with those obtained from controls and the relative difference between the side where the stimulations were applied and the contralateral side was determined. In comparison to controls the rats showed, after 6 afterdischarges at the ipsilateral, stimulated side, a slight increase in cell density of about 10%; after 14 afterdischarges, there was a significant increase of 38% together with an enhanced labelling density, while in fully kindled rats (34 afterdischarges) there was no significant difference with controls. At the contralateral side, we observed a different pattern of, respectively, a small decrease (17%), no significant difference, and a significant increase of 22% in fully kindled animals. This result is discussed in relation to observations that fully kindled rats, investigated 24 days after the last seizure of the acquisition phase, showed rather a significant decrease by 35% of cell density at the stimulated side and a regional loss of immunoreactivity of varicosities. At this point in time, no significant changes were found at the contralateral side. The complex time-course of GABA immunoreactivity during epileptogenesis consists of a transient increase in the early phase of kindling acquisition followed by a process of gradual reduction that leads to the long-term decrease of GABA immunoreactivity and high excitability.

Action Potentials

Decrease in number of hippocampal gamma-aminobutyric acid (GABA) immunoreactive cells in the rat kindling model of epilepsy.

Daily repeated tetanic electrical stimulation (kindling) of hippocampus or other brain structures leads to progressive increase in epileptiform activity. Since kindling may involve changes in the inhibitory neurotransmitter gamma-aminobutyric acid (GABA), the distribution of this amino acid was studied. A significant decrease in number of GABA immunoreactive positive cell bodies in stimulated CA1 region of the rat hippocampus compared to the contralateral side was found.

Animals

Modulation of adjuvant-enhanced delayed-type hypersensitivity by the interferon inducers poly I:C and Newcastle disease virus.

The modulation by the interferon (IFN) inducers poly I:C and Newcastle disease virus (NDV) of the effector phase of adjuvant-enhanced delayed-type hypersensitivity (DH) was studied in mice. A strongly enhanced DH was induced in mice to ultraviolet (UV) light inactivated Semliki forest virus (SFV) by the use of the adjuvant dimethyldioctadecylammonium bromide. At day 6 after intracutaneous immunization, DH was elicited with SFV and measured 24 and 48 h later as increase in footpad thickness (footpad swelling test). Systemic, intravenous administration of either poly I:C, UV-inactivated NDV, or NDV-induced IFN prior to elicitation of DH with antigen resulted in a temporarily suppressed DH reaction. Both the poor swelling at 3 h and strong swelling at 24 h were suppressed, while the swelling at 48 h was enhanced. The model described provides a sensitive in vivo method to study modulating effects of drugs and microbial agents on the effector phase of DH.

Animals