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G Gombos

Publications and source records attributed to G Gombos.

At least 37 records · Page 2Linked to original sources

Autoradiographic characterization of [3H]L-glutamate binding sites in developing mouse cerebellar cortex.

Postnatal changes of [3H]L-glutamate binding sites in mouse cerebellum were studied by in vitro autoradiography. These sites were already present at birth, their density globally increased until postnatal day 25, and at all ages it was higher when Cl- and Ca2+ were present in the incubation buffer. At birth, these binding sites were diffused through the whole cerebellar mass, but became distinctly concentrated in the molecular and the internal granular layers by postnatal day 10. From this age on, binding site sensitivity to ions and glutamate analogues takes a different course in each layer. The external granular layer and the white matter never displayed significant amounts of binding. In the molecular layer the Cl-/Ca2+ effect increased during ontogeny until, in adults, the ion-dependent binding was threefold higher than the ion-independent binding. Quisqualate-sensitive sites accounted for 80% of the total binding sites already at postnatal day 15, while displacement by alpha-amino-3-hydroxy-methyl-4-isoxazolepropionic and ibotenic acids attained the maximum (68%) at postnatal day 60. N-Methyl-D-aspartate displaced glutamate binding (50%) only in the presence of Cl- and Ca2+. Starting from postnatal day 15, binding site density in the molecular layer of lobules VIb and VII of the vermis was lower than in other lobules. In the internal granular layer, the Cl-/Ca2+ effect observed in young animals decreased during development. These transient binding sites were sensitive to quisqualic and ibotenic acid. In adults, the majority of glutamate binding sites were ion-independent and mainly sensitive to D,L-amino-5-phospho-valeric acid and N-methyl-D-aspartate. Throughout development and in both layers, sites displaced by kainate were present at low density and sites displaced by D,L-2-amino-4-phosphonobutyric acid were not detected. The localized postnatal changes of the [3H]L-glutamate binding sites were correlated with the events occurring during growth and maturation of cerebellar structures. The increase of the Cl-/Ca(2+)-dependent binding in the molecular layer is simultaneous with the growth of Purkinje cell dendrites and of parallel fibres and with the formation of the synapses between them. This suggests that these binding sites are localized in these synapses. The changing pattern of sensitivity to different agonists during development might correspond to the maturation of these synapses. The low density of [3H]L-glutamate binding in the molecular layer of lobules VIb and VII probably indicates the presence of specific nerve projections to these areas.(ABSTRACT TRUNCATED AT 400 WORDS)

2-Amino-5-phosphonovalerate↗

Stoichiometry of muscimol and benzodiazepine binding sites in developing mouse cerebellum.

The ontogeny of high affinity GABAA and central benzodiazepine receptors in the mouse cerebellum was investigated by measuring [3H]muscimol and [3H]flunitrazepam binding to membrane preparations during postnatal development. In the P2 fraction, [3H]muscimol binding was much more abundant than [3H]flunitrazepam binding at all ages. [3H]muscimol Bmax exhibited a peak around postnatal day 25 while [3H]flunitrazepam binding did not follow a parallel course. These results can be explained by the preferential presence in cerebellum of certain variants of the different subunits of the GABAA receptor complex and with different topographical distributions of the different receptor subtypes. Development dependent changes of organelle distribution during subcellular fractionation also contributed to the described developmental pattern.

Animals↗

Identification and characterization of a high-affinity glutamate-controlled TCP binding site in rat brain postsynaptic densities.

The kinetic and equilibrium binding parameters of the phencyclidine receptor ligand [3H]N-[1-(2-thienyl)cyclohexyl]piperidine (TCP) to a postsynaptic density (PSD) subcellular fraction from rat brain were investigated. A single site was found, which was identified as the high-affinity TCP binding site by competition with dibenzocycloalkenimine (MK-801). In contrast, [3H]TCP binds to two sites on the plasma membrane fraction used as a precursor for PSD; on both fractions, [3H]TCP binding responds to glutamate by an increase of the association rate, the dissociation constant and the number of sites being unchanged. In the PSD fraction [3H]3-(2-carboxypiperazin-4-yl)propyl-1-phosphonic acid (CPP), an antagonist specific for the N-methyl-D-aspartate (NMDA) site, bound to high- and low-affinity sites. These results ascertain the presence and identity of synaptic NMDA-gated ion channels, which are assumed in the current hypothesis about excitotoxicity, long-term potentiation and learning.

Animals↗

Radial glia and astrocytes in developing and adult telencephalon of the lizard Gallotia galloti as revealed by immunohistochemistry with anti-GFAP and anti-vimentin antibodies.

The development of radial glia and astrocytes in the telencephalon of the lizard Gallotia galloti was studied by immunohistochemistry with anti-vimentin and anti-GFAP antibodies. Vimentin appears at embryonic stage 32 (E32) in the proliferative zone of the lateral ventricle and subpial end-feet in the marginal zone. At E34-35 the staining intensity for vimentin in all radial glia is maximal. It then decreases and disappears in most structures in adult animals. GFAP appears at E35 in the end-feet in the marginal zone and its intensity increases until adulthood, particularly in radial and sinuous fibers and in fibers that originate from the sulci and invade the ventral striatum and the septum. In contrast, the reaction is weak in the cortex, in the anterior dorso-ventricular ridge, and in the amygdala nuclei. Radial glia is still present in the adult, and the composition of its intermediate filaments changes during development from vimentin to GFAP. No GFA-positive cell bodies except those of ependymal glia were detected in telencephalon.

Animals↗

Glial fibrillary acidic protein and vimentin immunohistochemistry in the developing and adult midbrain of the lizard Gallotia galloti.

The distribution of glial fibrillary acidic protein (GFAP)- and vimentin-containing cells was studied by immunohistochemistry in the midbrain of the lizard Gallotia galloti. At embryonic stage 32 (E32), vimentin immunoreactivity appeared first in cell bodies located in the ventricular walls, in radial fibers, and subpial end-feet and increased in these structures until E34/E35. Faint GFAP immunoreactivity gradually appeared in the same structures between E34 and E37, and this increased until adulthood, whereas vimentin immunoreactivity decreased after E35, becoming limited to a few end-feet and fibers in the adult, mainly in the tegmentum. Thus, in developing Gallotia midbrain a shift from vimentin-containing to GFAP-containing intermediate filaments begins around E36 or E37. At E40, in addition to the cell bodies in the ependymal area, dispersed GFAP-positive cells, possibly immature astrocytes appeared. These cells showed the same shift. In the adult lizard, GFAP-positive radial glia are still present and coexist with GFAP-positive astrocytes, which are prefentially located in the marginal optic tract and the oculomotor nuclei, but are absent in the fasciculus longitudinalis medialis. Optic tectum, pretectum, tegmentum, and isthmic nuclei are the areas richest in GFAP-positive radial fibers: these were much less abundant in the deep mesencephalic nuclei. Thus, in this lizard, GFAP-positive astrocytes display a clear cut regional distribution: they are present in mesencephalon, whereas they are absent in telencephalon.

Animals↗

Developmentally regulated changes of glutamate binding sites in mouse deep cerebellar nuclei.

The expression of L-[3H]glutamate binding sites of different ionic and pharmacological sensitivities was studied in mouse deep cerebellar nuclei during early postnatal development by means of in vitro autoradiography. Ca2+/Cl(-)-dependent, quisqualate/AMPA/ibotenate-sensitive, and APB-insensitive binding sites are present at high density in the deep cerebellar nuclei of young animals, but greatly decrease between the 10th and 25th postnatal day and remain low in the adult. The density of Ca2+/Cl(-)-independent binding sites remains low and constant during the whole of postnatal development. The possible involvement of the Ca2+/Cl(-)-dependent binding sites in brain development is discussed.

Aging↗

Immunohistochemical localization of glutamine synthetase in mesencephalon and telencephalon of the lizard Gallotia galloti during ontogeny.

The immunohistochemical localization of glutamine synthetase, an astrocyte marker in mammals, was determined in the telencephalon and mesencephalon of the lizard Gallotia galloti during development by using an antiserum raised against chicken brain glutamine synthetase. Ependymal glial cells and their radial processes were glutamine synthetase immunoreactive, and they were present also in the adult. Immunoreactivity was also detected in two populations of scattered cell bodies, each preferentially localized in different zones: star-shaped cells morphologically similar to mammalian astrocytes, and ovoid or pear-shaped cell bodies, the processes of which were aligned with radial fibers and formed perivascular end-feet. Both populations displayed ultrastructural characteristics of astrocytes even though a comparison with our previous results (Monzon-Mayor et al., 1989; Yanes et al., 1989) indicated that many of these cells did not react with antibodies directed against the astrocyte-specific glial fibrillary acidic protein. During ontogeny, glutamine synthetase immunoreactivity appeared in radial glial processes and in ependymal glial cells of midbrain at embryonic stage 35 (E35) and of telencephalon at E37; in both regions, immunoreactivity in the radial glia increased until hatching and then decreased until adulthood, but it did not disappear. Labelled scattered cells became progressively more numerous and more immunoreactive. A comparative analysis of the distribution of these cells at different ages tends to suggest that some of the "ovoid" astrocytes originate in, and migrate out from, the proliferative zone of the different sulci, whereas the star-shaped cells appear directly in situ, probably because they begin to express glutamine synthetase after they have reached their final location.

Aging↗

Alteration of benzodiazepine receptors in mouse cerebellum following methylazoxymethanol treatment during development.

The specific binding of [3H]flunitrazepam was studied to biochemically specify the morphological alterations induced in mouse cerebellum by a single injection of an antimitotic agent, methylazoxymethanol (MAM) performed at the beginning of the postnatal life. The MAM injection causes a general reduction of the benzodiazepine receptors in the adult mice which is particularly severe in mice having been injected the 1st day of postnatal life (so-called MAM0 mice) as compared to animals injected the 5th day (MAM5 mice): in MAM0 mice the benzodiazepine receptor is reduced to half of the control value. The affinity of the benzodiazepine towards its receptor was not affected and the topographic and biochemical action of MAM in the central nervous system was ascertained. Correlations could be made between the biochemical modifications and the morphological alterations otherwise described.

Aging↗

Immunohistochemistry with anti-calbindin and anti-neurofilament antibodies in the cerebellum of methylazoxymethanol-treated mice.

Mice pups were injected with methylazoxymethanol at birth (MAM0) or on the fifth postnatal day (MAM5) and their cerebella were examined when adult. Immunohistochemistry with an antiserum directed against calbindin, a protein specific for Purkinje cells, was used to survey more easily Purkinje cell position and orientation. For a general view of basket cell axon distribution, we used a monoclonal antibody that recognized the phosphorylated form of the 200 kD constituent protein of neurofilaments, which is axon specific. The present results confirm that in MAM5 the cytoarchitecture was preserved, some Purkinje cells degenerated, and the pericellular basket around the Purkinje cells was apparently normal. In MAM0 animals, the Purkinje cells appeared malpositioned and disoriented, the pinceau around the Purkinje cell hillock was absent, but basket cell axons were present. This indicated that the absence of pinceau was not due to the absence of basket cells, but probably to alterations of cell interactions, which hindered the proper pericellular basket formation.

Animals↗

Release of [3H]L-glutamate and [3H]L-glutamine in rat cerebellum slices: a comparison of the effect of veratridine and electrical stimulation.

Depolarization-elicited release of neurotransmitter glutamate was studied in rat cerebellar slices previously loaded with either [3H]L-glutamate or [3H]L-glutamine. Both depolarization conditions used (e.g. long-lasting tonic depolarization elicited by veratridine, or short repetitive electrical pulses) increased 6 to 8 folds the release of labelled glutamate and of another compound, presumably alpha-ketoglutarate, without modifying the release of labeled glutamine. Because of the position of the label in the precursor radioactive molecules, GABA was weakly labeled and aspartate was unlabeled. The properties of the evoked glutamate release from cerebellar slices were those of a neurotransmitter since it was inhibited by tetrodotoxin and was Ca2+-dependent. Alpha-ketoglutarate is either coreleased from nerve terminals or is released from astrocytes and could participate in glutamate recycling. The data confirm the generally accepted model implying the presence of two neurotransmitter glutamate pools, a neuronal pool of newly synthesized glutamate and an astrocytic storage pool, but in addition indicate that the former is in rapid isotopic equilibrium with the extracellular compartment. Our present results also indicate that the glutamate/glutamine cycle is not activated in depolarizing conditions.

Animals↗

Developing rat cerebellum--I. Effects of abnormal thyroid states and undernutrition on sulfated glycosaminoglycans.

Sulfated glycosaminoglycans deposition during rat postnatal cerebellar developmental is affected by altered thyroid states and undernutrition. These ontogenetic alterations seem not to be specific but to be one aspect of the general acceleration, slowing down and reduction of the cerebellar development occurring in thyroid-deficient, hyperthyroid and undernourished rats, respectively.

Aging↗

Developing rat cerebellum--II. Effects of abnormal thyroid states and undernutrition on hyaluronic acid.

The early postnatal pattern of hyaluronic acid (HA) deposition in rat cerebellum is affected by thyroid deficiency, thyroxine treatment and undernutrition. The modification of HA ontogenesis apparently reflects the smaller number of cells formed in undernourished rats, or alterations of cell maturation (accelerated in thyroxine-treated and slowed down in thyroid-deficient rats). The developmentally regulated loss of tissue water is also affected in the three conditions; this can be correlated with the roughly simultaneous disappearance of extracellular, but not of total, HA.

Aging↗

Developing rat cerebellum--III. Effects of abnormal thyroid states and undernutrition on gangliosides.

Alteration of rat postnatal cerebellar development produced by undernutrition, thyroxine treatment and thyroid deficiency also involves ganglioside deposition. The distribution of the different ganglioside types is apparently unaffected but quantitative alterations are present that reflect the reduction of cell number and cell process surface in the adult, and either acceleration or slowing down or reduction of cell formation and maturation occurring during cerebellar development in the three experimental situations.

Aging↗

The cholinergic system in developing cerebellum: comparative study of normal, hypothyroid and underfed rats.

To overcome the deficiencies of previous findings, the activities of choline acetyltransferase (ChAT) and acetylcholinesterase (AchE) were studied at very short age intervals to allow a more precise definition of the shape and timing of their developmental curves in normal, hypothyroid and underfed rats. In addition, AchE expression in developing cerebellum was studied histochemically in these three neurological models. When compared with structural findings in the literature, the results provide the following information on the normal and abnormal developing cholinergic system, related or not to cerebellar neurotransmission (1) AchE activity, unlike ChAT, can be considered as a good marker of the developing cholinergic archicerebellum. (2) ChAT and AchE are transiently expressed together in functionally noncholinergic Purkinje cells. In contrast with most regions of the central nervous system, the high ratio of ChAT to AchE activities in the early stage of cerebellar development suggests an enhanced synthesis of acetylcholine (Ach). The level of ChAT activity correlates with Purkinje cell size, supporting the concept of a neurotrophic role of Ach in early maturing macroneurons. (3) The archicerebellar cholinergic network appears to be relatively well preserved from undernutrition and, to an even greater extent, from hypothyroidism, compared to other systems of neurotransmission formed later and more widely distributed throughout the cerebellum. The presynaptic compartment seems to be more affected than the postsynaptic compartment. (4) In disagreement with some data in the literature, the abnormalities induced by both abnormal thyroidal and nutritional states were found to be irreversible.

Acetylcholinesterase↗

Alteration of mouse cerebellar circuits following methylazoxymethanol treatment during development: immunohistochemistry of GABAergic elements and electron microscopic study.

Methylazoxymethanol (MAM) injected postnatally affects cerebellar development in mice. A single injection at the fifth postnatal day produces hypogranular cerebella whereas a single injection at birth produces, in addition, a disorderly cytoarchitecture of the folium and alteration of Purkinje cell positioning (Bejar et al.: Exp. Brain Res. 57:279-285, '85). In the present study we have used immunohistochemistry with anti-GABA immune serum and electron microscopy to further characterize these alterations. In addition to the already-described nonoccupied dendritic spines of Purkinje cells both in mice injected the day of birth and or at the fifth postnatal day, we have observed, in animals injected at birth, the absence of pericellular baskets around Purkinje cells and the presence of heterologous synapses between mossy fibres and Purkinje cell dendrites. These heterologous synapses apparently disappear after postnatal day 20. By using an appropriate timing of MAM injection, different types of hypogranular cerebella, phenocopies of different mutants, can be obtained in large enough number to carry out extensive biochemical studies at each developmental age.

Animals↗

Different effect of methylazoxymethanol on mouse cerebellar development depending on the age of injection.

Methylazoxymethanol (MAM), a powerful antimitotic, has been extensively used to affect rodent CNS development. Here we show that MAM causes different effects on mouse cerebellum depending on the age of the injected pup. Sublethal doses were determined for each age. A single injection at birth permanently reduces the number of cells. In addition, the cytoarchitecture was greatly perturbed: Purkinje cells retained an immature aspect and were dispersed through the cerebellar cortex. A single dose of MAM injected into 5 day old mice also affected the number of cells but, at the level of light microscopy, the cytoarchitecture of the cerebellar cortex appeared not to be altered. Purkinje cells, however, showed some immaturity and degenerated around the 22nd postnatal day. This modulation of MAM effect appears to provide a good model for studying cerebellar ontogeny and neuronal plasticity.

Age Factors↗

Equilibrium-driven mechanism for preferential adhesion between chick embryo cells.

The experiments presented here confirm the hypothesis according to which, in our experimental system of differential cell adhesion (where we studied the kinetics of the earliest period of adhesion of a suspension of chick embryo neuroblasts to layers of astroblasts or fibroblasts), the mechanism of adhesion appears to consist of two steps, the first of which is a short-term reversible phase corresponding to a binding equilibrium. In fact, adhesion of neuroblasts to each of the two cell layers occurs according to kinetic constants and attains levels which are characteristic for each of the two adhesion systems. In both systems, neuroblasts that have not adhered at equilibrium are able to adhere if inoculated over a fresh cell layer of the same type, as they do during the first inoculation; conversely, neuroblasts that have adhered to a cell layer can be made to de-adhere by substituting cell-free fresh medium to the inoculation medium containing non-adhering neuroblasts. This shows that, as predicted for a reversible equilibrium system, removal of adhering neuroblasts from the system at equilibrium provokes adhesion, and removal of non-adhered neuroblasts provokes de-adhesion. Furthermore the level of adhesion at equilibrium is, in all cases, the same. The reversibility of adhesion, which is almost quantitative during the onset of the equilibrium, gradually decreases with time, indicating the presence of a process of irreversible attachment between cells after the first reversible step. The developmental implications of the complete sequential mechanisms are briefly discussed.

Animals↗