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G Riedel

Publications and source records attributed to G Riedel.

At least 37 records · Page 2Linked to original sources

Transient translocation of protein kinase Cgamma in hippocampal long-term potentiation depends on activation of metabotropic glutamate receptors.

Protein kinase C has been implicated in long-term regulation of cellular functions including induction and maintenance of hippocampal long-term potentiation. In the present study the time-course of long-term potentiation-induced translocation of Ca(2+)-dependent protein kinase C isoenzymes (PKCalpha/beta and PKCgamma) was investigated. Quantitative immunoblot analysis was used to measure translocation of these isoenzymes between cytosolic, membrane-associated and membrane-inserted fraction at 5, 15 and 60 min after induction of long-term potentiation in the dentate gyrus in vivo. To investigate the involvement of metabotropic glutamate receptors in protein kinase C regulation during long-term potentiation induction, additional animals were treated before tetanization with (R,S)-alpha-methyl-4-carboxyphenylglycine, an antagonist of metabotropic glutamate receptors. Brief tetanic stimulation of the perforant path resulted in a 100-150% increase in the population spike amplitude in response to test stimuli 5, 15 or 60 min after stimulation in both untreated and (R,S)-alpha-methyl-4-carboxyphenylglycine-treated animals. Only those rats showing clear potentiation were selected for further biochemical analysis of the potentiated dentate gyrus. Five minutes after high-frequency stimulation the subcellular distribution of all studied protein kinase C isoenzymes was unchanged compared with controls. PKC-gamma translocated into the cytosol 15 min after tetanization and this redistribution was blocked by (R,S)-alpha-methyl-4-carboxyphenylgly-cine pretreatment. By contrast, PKC alpha/beta levels increased in the cytosolic fraction only 60 min after tetanization, but in a (R,S)-alpha-methyl-4-carboxyphenylglycine-independent manner. In an additional set of experiments it was shown that (R,S)-alpha-methyl-4-carboxyphenylglycine alone applied intraventricularly had no effect on the subcellular distribution of the studied isoenzymes. The data suggest that PKCalpha/beta and PKCgamma are activated during different post-tetanic phases and metabotropic glutamate receptor activation might be essential for tetanus-induced translocation of postsynaptic PKCgamma only.

Animals↗

Reversible neural inactivation reveals hippocampal participation in several memory processes.

Studies of patients and animals with brain lesions have implicated the hippocampal formation in spatial, declarative/relational and episodic types of memory. These and other types of memory consist of a series of interdependent but potentially dissociable memory processes-encoding, storage, consolidation and retrieval. To identify whether hippocampal activity contributes to these processes independently, we used a novel method of inactivating synaptic transmission using a water-soluble antagonist of AMPA/kainate glutamate receptors. Once calibrated using electrophysiological and two-deoxyglucose techniques in vivo, drug or vehicle was infused chronically or acutely into the dorsal hippocampus of rats at appropriate times during or after training in a water maze. Our findings indicate that hippocampal neural activity is necessary for both encoding and retrieval of spatial memory and for either trace consolidation or long-term storage.

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Nucleus accumbens lesions impair context, but not cue, conditioning in rats.

Previous work has provided evidence of a role for the hippocampal formation in contextual as opposed to cue conditioning. Similar deficits have been observed after transection of the fimbria/fornix, part of which consists of the hippocampal-nucleus accumbens (N.Acc) connection arising from both the dorsal and ventral subiculum. By means of electrolytic lesions of the N.Acc, we showed that the subiculo-accumbens projection appears to participate in aversive conditioning to context, but not to a cue (tone). Freezing, measured as an index of learning, in the experimental context was greatly reduced in animals with lesions of the N.Acc, as compared with sham-operated controls. No difference was found in freezing to a distinct tone. These data lend further support to the notion that the N.Acc is an important interface between limbic structures and motor output.

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Class I mGlu receptor antagonist 1-aminoindan-1,5-dicarboxylic acid blocks contextual but not cue conditioning in rats.

It is widely believed that metabotropic glutamate (mGlu) receptors play a potential role in memory formation. However, the particular function of different classes of mGluRs, or even subtypes, remains elusive. We show here that intraperitoneal injection of the class I selective antagonist 1-aminoindan-1,5-dicarboxylic acid (AIDA) in concentrations of 0.18 or 1.8 mg/kg 25 min prior to acquisition training blocks hippocampus-dependent contextual, but not hippocampus-independent cue, conditioning in rats. These data provide the first evidence for a specific role of mGlu receptors, class I in particular, in hippocampus-dependent learning tasks.

Acoustic Stimulation↗

Activation of phospholipases C and D by the novel metabotropic glutamate receptor agonist tADA.

In hippocampal slices taken from 8-day-old rats, trans-azetidine-2,4-dicarboxylic acid (tADA), a novel glutamatergic agonist acting preferentially at class I mGluR receptors, activates phosphoinositide and phosphatidylcholine hydrolysis with widely different potencies. Inositol phosphate formation was maximally increased at 10 microM tADA (EC50: 1.2 microM), while phospholipase D activation was observed at a tADA concentration of 1 mM. This is the first report of a tADA-induced phospholipase D activity.

Animals↗

The forebrain of the blind cave fish Astyanax hubbsi (Characidae). I. General anatomy of the telencephalon.

This paper presents a survey of the cell groups in the telencephalon of the teleost Astyanax hubbsi, based on series of transverse sections stained with the Nissl-Klüver-Barrera and Bodian procedures. The work was conducted for two reasons. Firstly, it was intended to determine the contribution of the forebrain of blind cave fish to certain forms of behavior. An understanding of the anatomy of the telencephalic organization is essential for such a neuroethological approach. The second purpose was to provide the cytoarchitectural basis for the experimental analysis of the fiber connectivity of the telencephalon of A. hubbsi. Furthermore, information about the forebrain of characids is widely lacking, and this study may thus provide important knowledge about the cellular organization of characid forebrains for comparative anatomists. The brain of A. hubbsi is slender and elongated. Both optic nerves and optic tectum are reduced. Three longitudinal sulci-s. ypsiliformis, s. externus and s. limitans telencephali-can be distinguished in the telencephalon. A fiber lamina reaching from the s. externus to the s. limitans telencephali separates the area dorsalis (D) from the area ventralis telencephali (V). The two hemispheres are connected by fibers decussating in the anterior commissure. Although cross sections revealed no distinct fiber laminae between cytoarchitectonic components, 17 cell masses could be delineated: ten of these belong to D, seven to V. The topological analysis yielded the following results. The dorsal telencephalon D consists of three longitudinal columns, termed pars medialis (Dm), pars dorsalis and centralis (Dd and Dc) considered together, and par lateralis (Dl), which converge into a uniform posterior part (Dp). The columns can be divided into several subregions: Dm1 and Dm2, as well as Dlv and Dld, precommissurally, Dm3 and Dm4 postcommisurally. At polus posterior levels nucleus tenia can be identified. The ventral telencephalon (V) is arranged precommissurally in a periventricular neuronal column consisting of a dorsal (Vd) and ventral (Vv) part. Additionally, a lateral part (VI) is delineated. More caudally, a supracommissural part (Vs), a commissural part (Vc), a posterior part (Vp), and nucleus entopeduncularis are identified. This topological organization reflects many features characteristic for actinopterygian forebrains.

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The forebrain of the blind cave fish Astyanax hubbsi (Characidae). II. Projections of the olfactory bulb.

The primary subdivisions of the telencephalon of a characidian, Astyanax hubbsi, were extensively described and this subsequent study elucidates the organization of the secondary olfactory system based on horseradish peroxidase (HRP) and carbocyanine dye (DiI) tracing techniques. Both methods yielded similar results. Two fiber bundles project from the olfactory bulbs into the ventral rostral telencephalon: the medial olfactory tract (tom), embedded in the white matter of the ventral telencephalon (V), which gives rise to a dorsal (tom-d) and a ventral (tom-v) branch, and the lateral olfactory tract (tol). Running caudally, fibers of the tom-v synapse both ipsi- and contralaterally, after decussation in the ventral part of the anterior commissure, identified as the interbulbar commissure of Goldstein, in the medial terminal field of V, and in the preoptic terminal field. The dorsal branch (tom-d) projects bilaterally to a complex pattern of terminal fields, including the medial terminal field in V, the central terminal field in the dorsomedial forebrain (Dm), the caudal part of the lateral terminal field in the dorsoposterior telencephalon (Dp), and, finally, a hypothalamic terminal field at the lateral edge of the posterior nucleus tuberis. In addition, some fibers of tom-d and tom-v reach into the contralateral olfactory bulb. Here, both nerve terminals and cells were stained in the olfactory nucleus. The lateral olfactory tract (tol) runs along the lateral edge of the external sulcus forming a horizontal band. Extensive terminals were identified bilaterally in the lateral terminal field, which uniformly covers the medial and caudal parts of the dorsal hemispheres (Dc, Dl and Dp). Fibers decussate prominently in the dorsal part of the anterior commissure. A small number of projections, which join the stria medullaris, protrude into the diencephalon, decussate in the habenular commissure, and turn rostrally back into the telencephalon to synapse in the caudal part of the contralateral terminal field. These features resemble a simple bauplan of olfactory fiber connections in actinopterygian brains and further indicate that substantial parts of the telencephalon are not dominated by olfactory inputs.

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Function of metabotropic glutamate receptors in learning and memory.

Learning is the modification of behaviour by experience, and memory is the retention of such modifications. Since learning events might be of short duration, selective neuronal mechanisms must exist to translate transient activity into long-lasting memory. Because metabotropic glutamate (mGlu) receptors are coupled to various second messenger cascades they are ideal candidates for such translations. Their involvement in synaptic plasticity has been demonstrated recently, an important finding given that changes in synaptic efficacy are widely believed to be the physical substrate for information storage. Behavioural investigations using selective drugs have demonstrated that memory formation, especially of hippocampus-dependent tasks, is blocked by pre-training treatment with both mGlu-receptor agonists and antagonists. In contrast, agonists administered post-training might amplify memory formation. The hypothesis put forward here suggests that the primary function of mGlu receptors is to set the signal-to-noise ratio and thereby filter out unimportant or amplify important information.

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Comparing the role of metabotropic glutamate receptors in long-term potentiation and in learning and memory.

1. Neuronal plasticity has been suggested to be the physical substrate for changes underlying the expression of memory. One model which has attracted wide attention as a possible candidate of such neuronal plasticity is long-term potentiation (LTP), mainly investigated in the hippocampus of rodents. Moreover, various processes with different time constants may underlie LTP, and these phases show striking correspondence to different phases of memory. 2. Pharmacological evidence strongly implicates that the neurotransmitter glutamate plays a major role in LTP. Although the involvement of ionotropic glutamate receptors has been proven, the role of the newly discovered metabotropic glutamate receptors is still uncertain. 3. Metabotropic glutamate receptors (mGluRs) comprise a whole family with currently eight members grouped into three classes according to their amino acid sequence identity and pharmacological profile. They are G-protein coupled, either positively linked to phospholipase C (class I) or negatively linked to adenylate cyclase (class II and III), and among other effects are known to induce phosphorylation of ionotropic glutamate receptors as well as modulate the excitability of neurons. Finally, they are heterogeneously distributed throughout the brain. 4. In hippocampal slice preparations, mGluRs have been shown to be involved in the induction of LTP in CA1 and dentate gyrus by some investigators, but others have failed to reproduce such experiments, leaving the question: what are the appropriate conditions for mGluR-mediated LTP? 5. In vivo, metabotropic receptor antagonists have been shown to block, and agonists to facilitate, induction and maintenance of LTP, mainly at perforant path/dentate granule cell synapses. As demonstrated in behavioral investigations, mGluRs apparently play an important part in hippocampus-dependent learning paradigms. As in LTP, antagonists block memory formation; in contrast to LTP, agonists also prevent memory formation. In memory recall metabotropic receptors seem to play no role. 6. Based on current information the authors develop models for a role of mGluRs in both LTP and memory formation. Activation of metabotropic receptors plays a particular modulatory role when high frequency stimulation is weak. Strong tetanization may bypass mGluRs by stimulating other systems leading to, at least phenomenologically, similar LTP, Behaviorally, mGluRs possibly set the signal to noise ratio of the hippocampal circuit.

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Physiological and pharmacological profile of trans-azetidine-2,4-dicarboxylic acid: metabotropic glutamate receptor agonism and effects on long-term potentiation.

In this study, we biochemically analysed the effects of the novel metabotropic glutamate receptor agonist trans-azetidine-2,4-dicarboxylic acid and examined its role in hippocampal long-term potentiation. In cell lines expressing metabotropic receptor 1 or 5 subtypes, the compound stimulated phosphoinositide hydrolysis with EC50 values of 189.4 +/- 6.4 and 32.2 +/- 8.3 microM, respectively. In hippocampal slices, trans-azetidine-2,4-dicarboxylic acid also increased phosphoinositide hydrolysis, yet failed to show any effect on forskolin-stimulated formation of cyclic AMP, even if 1 mM azetidine was applied. Since trans-azetidine-2,4-dicarboxylic acid (20 mM in 5 microliters) injected cerebroventricularly prolongs long-term potentiation induced by weak tetanization, a possible interaction with N-methyl-D-aspartate receptors was investigated using patch-clamp techniques. Neither facilitation of N-methyl-D-aspartate (500 microM) currents nor induction of non-specific currents was observed in the presence of 50 and 500 microM azetidine. Strong tetanus-induced long-term potentiation in the dentate gyrus of freely moving rats was not influenced by azetidine. In combination with the antagonist (R,S)-alpha-methyl-4-carboxyphenylglycine (200 mM in 5 microliters), however, the potentiation was attenuated and returned to baseline within 90 min. Blockade of N-methyl-D-aspartate receptors using 2-amino-5-phosphonopentanoate (20 mM in 5 microliters) prevented the potentiation in controls, but not in the azetidine group, where normal potentiation was observed for both the population spike amplitude and the excitatory postsynaptic potential. These data suggest that (i) trans-azetidine-2,4- dicarboxylic acid is an agonist at glutamate metabotropic receptors; (ii) a facilitation of induction and maintenance of long-term potentiation via N-methyl-D-aspartate receptors seems unlikely; and (iii) pharmacological activation of metabotropic receptors prior to tetanization appears to bypass the N-methyl-D-aspartate receptor dependence of the potentiation. In conclusion, a role for metabotropic glutamate receptors in both short-term and long-term potentiation is indicated by these data.

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Blockade of metabotropic glutamate receptors protects hippocampal neurons from hypoxia-induced cell death in rat in vivo.

1. In this pilot study the authors examined the role of hippocampal metabotropic glutamate receptors (mGluRs) in hypoxia in vivo by determining frank neuronal cell death histologically 4 days after the first of three daily insults. 2. Adult male, Wistar rats, chronically prepared with cannulae, were intraventricularly injected with either saline or the metabotropic receptor antagonists L-AP3 (0.102 mg) or MCPG (0.208 mg) 30 min prior to hypoxic insult. 3. Histological analysis of hippocampal regions revealed attenuated neuronal cell loss in CA1 and CA3 in both L-AP3 and MCPG-treated animals. 4. These data suggest a participation of mGluRs in hypoxia-induced neuronal cell death.

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Metabotropic glutamate receptors in hippocampal long-term potentiation and learning and memory.

Glutamate receptors have been identified as important interfaces in learning and memory paradigms as well as in mechanisms of synaptic plasticity, such as long-term potentiation (LTP) and long-term depression (LTD), which are believed to be the underlying cellular basis of at least some forms of learning. Although investigations of G-protein-coupled receptors have a long history, those depending on ligand-binding of glutamate have only been discovered recently, and this is the reason why our knowledge about metabotropic glutamate receptors (mGluRs) is at present very limited. However, the development of relatively specific antagonists and agonists has enabled the analysis of the role of mGluRs in synaptic plasticity, mostly studied on the models of LTP and LTD. Among others, we have been able to demonstrate that activation of mGluRs is essential for induction and maintenance of long-lasting hippocampal LTP in vitro and in vivo. The work conducted by several groups, including ours, has now provided compelling evidence that mGluR activation is an important step in the cellular cascades leading to memory formation in vertebrates. This led us to assume, given that the hippocampus plays a prominent role in spatial rather than discrimination learning, that mGluRs may participate in the processing of spatial information via hippocampal mechanisms, and may thus be similarly important as N-methyl-D-aspartate receptors. This article surveys the literature dealing with mGluRs in hippocampal LTP and learning and memory. We will demonstrate that, although the understanding of cellular mechanisms of neuronal plasticity and of the pharmacology of learning and memory has advanced, the missing link to prove that LTP is a substrate for some form forms of learning still remains unsolved. Nevertheless, it appears reasonable to argue that mGluRs in LTP and learning may share some, but not all features, and it will be an interesting approach for further analysis to address the unresolved issues.

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Open field behaviour in rats: role of metabotropic glutamate receptors.

Previous studies have shown that spatial memory retention is affected by the metabotropic glutamate receptor (mGluR) influencing agents (R,S)-alpha-methyl-4-carboxyphenylglycine (MCPG) and trans-azetidine-2,4-dicarboxylic acid (tADA). In the present investigation we examined whether the mGluR antagonist MCPG (20 mM and 200 mM/5 microliters, respectively) and the agonist tADA (20 mM/5 microliters) have other behavioural effects using the open field test on two successive days. Only minor effects of MCPG (decrease of crossings during the 1st min on day 1) and tADA (increase of rearings on both days) were found. These results suggest that memory influencing doses of MCPG and tADA have no or only little behavioural effects in the open field situation.

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Aluminum impairs hippocampal long-term potentiation in rats in vitro and in vivo.

Although aluminum (Al) contributes to a variety of cognitive dysfunctions and mental diseases, the underlying mechanisms of Al interactions with the nervous system are still unknown. We have studied the action of Al on synaptic transmission and long-term potentiation (LTP) by performing electrophysiological recordings both in vivo, using freely moving animals, and in vitro, using hippocampal slices. In vivo recordings of the population spikes (PSs) of dentate gyrus granule cells in response to medial perforant path stimulation were performed on both acutely and chronically (Al each day for 5 days) intraventricularly injected animals. Acute Al-infusion (calculated brain concentrations of 0.27, 0.68, and 2.7 micrograms/ml) had no influence on baseline values. Al at 0.27 microgram/ml did not alter the induction and maintenance of LTP, but 0.68 and especially 2.7 micrograms/ml Al lead to a reduction in LTP, and the potentiation declined to baseline within 2 h. In chronic animals their neuronal responsiveness was reduced and in 30% of the rats the PS was completely lost. High-frequency tetanization failed to induce LTP. In slices, field potentials were evoked stimulating Schaffer collaterals and recording pyramidal cells of the CA1 region. Bath application of 0.68 microgram/ml Al increased the baseline amplitude of the PS slightly, whereas 2.7 micrograms/ml decreased the amplitude and concentrations > 5.4 micrograms/ml blocked the PS completely. Induction of LTP in the presence of 0.68 microgram/ml Al led to a smaller increase of the PS amplitude compared to controls, but the duration of LTP was not affected. In the presence of 2.7 micrograms/ml Al LTP was further reduced and declined to baseline levels within 60 min. Given that LTP is a form of synaptic plasticity underlying some forms of learning, our data suggest that both preparations are suitable models for investigating actions of Al-induced neurotoxicity.

Aluminum↗

Block of spatial learning by mGluR agonist tADA in rats.

As demonstrated recently, mGluRs are involved in some forms of learning. We thus investigated the effect of tADA (trans-azetidine-2,4-dicarboxylic acid) applied intracerebroventricularly prior to learning a spatial alternation paradigm. Compared to controls, tADA treated animals were amnesic when tested for retention 24 hr after training. Effects of state-dependency were excluded. These data and our earlier work indicate that both mGluR agonists and antagonists can have memory-disrupting effects.

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Metabotropic glutamate receptor agonist trans-azetidine-2,4-dicarboxylic acid facilitates maintenance of LTP in the dentate gyrus in vivo.

We examined the role of metabotropic glutamate receptors by studying the effect of intracerebroventricular infusion of the putative mGluR agonist trans-azetidine-2,4-dicarboxylic acid (tADA) on long-term potentiation (LTP) in the dentate gyrus of freely moving rats. Weak tetanization caused a decremental potentiation which returned to baseline levels within 2 hr. Injections of tADA (20 mM/5 microliters) 30 min prior to weak tetanization prolonged LTP of the field EPSP for at least 24 hr.

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Inhibition of long-term potentiation in the dentate gyrus of freely moving rats by the metabotropic glutamate receptor antagonist MCPG.

Metabotropic glutamate receptors (mGluRs) are critically involved in the maintenance of long-term potentiation (LTP) (Reymann and Matthies, 1989; Behnisch et al., 1991; Izumi et al., 1991; Bashir et al., 1993). In order to assess further the physiological role of MGluRs in LTP, we injected freely moving rats with the recently available, competitive mGluR antagonist (R,S)-alpha-methyl-4-carboxyphenylglycine (MCPG) intraventricularly and recorded extracellularly the population spike (PS) as well as the field excitatory postsynaptic potential (fEPSP) of the granule cells of the dentate gyrus in response to stimulation of fibers of the perforant path. MCPG was administered in two concentrations (A = 20 mM/5 microliters; B = 200 mM/5 microliters) either 30 min prior to or 5 min after LTP induction. Sodium chloride infusion served as a control. Normal synaptic transmission was not altered by MCPG. However, the mGluR antagonist inhibited LTP in a concentration-dependent manner. Concentration A did not influence the potentiation shortly after the tetanus. In the PS, short-term potentiation (STP), which is decremental in its time course, occurred normally, but in contrast to controls the potentiation declined back to baseline values after 2-3 hr. This dose also reduced the posttetanic increase in the slope function of the fEPSP, and led to a time course of potentiation similar to that for the PS. Concentration B completely abolished the tetanus-induced potentiation. This block was similar to that obtained for the NMDA antagonist 2-amino-5-phosphonopentanoate (AP5). Both MCPG concentrations had no influence on the time course of preestablished LTP. These effects seem to be due to the action of the (+)-isomer of MCPG, since intracerebroventricular application of the (-)-isomer was without effect on the duration and magnitude of LTP. In addition, we were interested in the mGluR subtypes involved in the blocking mechanism of MCPG. 1S,3R-aminocyclopentane-1,3-dicarboxic acid (ACPD)-activated PPI hydrolysis in hippocampal slices was competitively inhibited by MCPG at a concentration of 1 mM or higher. In contrast, this concentration of MCPG did not affect the reduction of forskolin-stimulated cAMP formation by ACPD. These results corroborate recent findings that mGluRs are required for the induction of LTP in CA1 and CA3 in vitro (Bashir et al., 1993; Sergueeva et al., 1993) and in vivo (Riedel and Reymann, 1993). The process of STP is found to be independent of mGluR activation.(ABSTRACT TRUNCATED AT 400 WORDS)

2-Amino-5-phosphonovalerate↗