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Biomedical subjects

M Palkovits

Publications and source records attributed to M Palkovits.

At least 127 records · Page 7Linked to original sources

Preoptic neuronal circuit: atrial natriuretic peptide-containing neurons are sensitive to acute and chronic alterations in body fluid volume.

Atrial antriuretic peptide (ANP) concentrations were determined in rostral preoptic midline structures (organum vasculosum laminae terminalis, periventricular and medial preoptic nuclei) and in the subfornical organ by radioimmunoassay in rats with acute volume load and volume depletion, as well as during water deprivation. ANP-containing neuronal elements in all four areas (to a lesser extent in the medial preoptic nucleus) reacted very sensitively to acute and chronic changes in body fluid volume: volume load resulted in an elevation, volume depletion in a depletion in ANP concentrations. These alterations were significant and completely matched changes in plasma ANP concentrations. Water deprivation increased ANP levels on the first experimental day, followed by a marked depletion in the organum vasculosum laminae terminalis, subfornical organ and the periventricular preoptic nucleus. It is hypothesized that three major neuropeptides (angiotensin II, vasopressin, ANP) regulate body fluid volume through a close neuronal network along a subfornical organ-preoptic-hypothalamic axis. The subfornical organ, which is very rich in angiotensin II and ANP receptors, serves as an open gate for circulating hormones and is neuronally interconnected with volume-sensitive ANP neurons in the preoptic area (organum vasculosum laminae terminalis and preoptic periventricular nucleus). Neurons in the subfornical organ and the preoptic area project to the supraoptic and paraventricular nuclei and control the activity of vasopressin-synthesizing neurosecretory cells.

Animals↗

Comparative distribution of N-acetylaspartylglutamate and GAD67 in the cerebellum and precerebellar nuclei of the rat utilizing enhanced carbodiimide fixation and immunohistochemistry.

The most prevalent peptide in the nervous system, N-acetylaspartylglutamate (NAAG), specifically activates N-methyl D-aspartate (NMDA) receptors and a subclass of metabotropic glutamate receptors. One action of this peptide may be to modulate the release of other neurotransmitters, including gamma-aminobutyric acid (GABA). The present study describes the cellular distribution of NAAG, relative to GABA, in the cerebellum and precerebellar nuclei as a foundation for further physiological investigations. Numerous cells of origin for mossy fibers, including many of the larger neurons of the pontine nuclei, lateral reticular nuclei, vestibular nuclei, reticulotegmental nuclei, and spinal grey, were moderately to strongly stained for NAAG. Many NAAG-labeled fibers were clearly visible in the cerebellar peduncles and central white matter. Mossy fibers and mossy endings were among the most prominent NAAG-immunoreactive elements in the cerebellar cortex. Most neurons in the inferior olive were not stained for NAAG, and only sparse, lightly immunoreactive, climbing fiber-like endings could be identified in restricted regions of the cortical molecular layer. Purkinje neurons ranged from nonreactive to moderately positive, with the great majority being unstained. Cerebellar granule cells did not exhibit any NAAG immunoreactivity. A population of neurons in the deep cerebellar nuclei was highly immunoreactive for NAAG. Additionally, many neurons of the red nucleus were intensely stained for NAAG. Comparisons with staining for the 67 kD form of glutamic acid decarboxylase in serial sections revealed complementary distributions, with NAAG in excitatory pathways and cell groups, and glutamic acid decarboxylase in inhibitory systems. These findings suggest a significant functional involvement of NAAG in the excitatory afferent and efferent projection systems and provide an anatomical basis for investigations into the interactions of NAAG and GABA in the cerebellum.

Animals↗

Selective up-regulation of neuropeptide synthesis by blocking the neuronal activity: galanin expression in septohippocampal neurons.

Neuronal activity regulates expression of phenotype-specific genes, including galanin, which coexists with choline acetyltransferase in septal and basal forebrain neurons. Transections of the fornix and the diagonal band alter galanin expression in septohippocampal neurons attributed to a deficit in target-derived trophic factors. The present study demonstrates that tetrodotoxin-induced blockade of neuronal activity fully mimicked the effect of axotomy (transection of the septohippocampal fibers) in the neurons of the nucleus of the diagonal band, and caused a dramatic, although temporary, up-regulation of galanin immunoreactivity and galanin mRNA without significant alteration in choline acetyltransferase expression. This finding suggests that in the septohippocampal cholinergic system perturbance of electrical activity alone can lead to temporary up-regulation of galanin expression, previously attributed exclusively to a "lesion effect."

Animals↗

Calpain activity in adult and aged human brain regions.

We assayed calpain activity in 27 human brain regions from adult (43-65 years of age) and aged (66-83 years of age) postmortem tissue samples. Calpain I (microM Ca-requiring) activity was 10% or less of the total activity; it was below detectable levels in a number of areas, and so data are are expressed as total (microM + mM Ca-dependent) calpain activity. The distribution of the enzyme was regionally heterogeneous. Highest activity was found in the spinal cord, followed by the amygdala, and levels in mesencephalic areas and in cerebellar grey matter were also high. Levels in cerebellar white matter, tegmentum, pons, and putamen were low, and activity in cortical areas was also relatively low. Although in some areas activity seemed higher with aging, the differences were not statistically significant. We previously found that the regional distribution of cathepsin D in human and in rat brain is similar, this seems to be true for calpain activity as well. The increase of protease activity with age found in rat brain is not found in human areas, as was shown previously with cathepsin D, and in the present study with calpain.

Adult↗

Comparison of [3H]resiniferatoxin binding by the vanilloid (capsaicin) receptor in dorsal root ganglia, spinal cord, dorsal vagal complex, sciatic and vagal nerve and urinary bladder of the rat.

In the present report we compared the properties of [3H]resiniferatoxin (RTX) binding by the vanilloid receptors present at different parts of the primary afferent neurons of the rat. We found no major differences in either the affinity or the cooperativity of [3H]RTX binding by vanilloid receptors on the cell body, central terminals, peripheral terminals or axons. Specific binding of [3H]RTX to dorsal root ganglia, whole spinal cord, dorsal vagal complex, urinary bladder, and sciatic and vagal nerves all followed sigmoidal saturation kinetics indicating positive cooperativity among the binding sites. The cooperativity indexes determined by fitting the data to the Hill equation were 1.82 +/- 0.11, 2.21 +/- 0.04, 2.55 +/- 0.01, 1.91 +/- 0.11, 2.03 +/- 0.09 and 2.27 +/- 0.04, respectively. The dissociation constants in dorsal root ganglia, spinal cord, dorsal vagal complex, urinary bladder, and sciatic and vagal nerve membranes were 46.5 +/- 2.7, 29.3 +/- 5.1, 28.2 +/- 1.2, 60.8 +/- 4.4, 59.9 +/- 1.9 and 45.2 +/- 0.7 pM; the receptor densities were 219 +/- 14, 48 +/- 5, 67 +/- 1, 32 +/- 7, 61 +/- 9, and 100 +/- 20 fmol/mg protein, respectively. We could not show any major differences in the affinities of capsaicin and capsazepine in inhibition of [3H]RTX binding by the different membrane preparations either. In all cases the initial enhancement of [3H]RTX binding by nonradioactive RTX, capsaicin, and capsazepine confirmed the existence of positive cooperativity among the binding sites. We were unable to detect specific [3H]RTX binding sites in membrane preparations of the preoptic area, locus ceruleus, substantia nigra, striatum and paraventricular nuclei of the rat brain under our present conditions. Our results suggest the uniformity of the vanilloid receptors present at different parts of the primary afferent neuron.

Animals↗

Autoradiographic localization and quantitative determination of specific binding sites of anxiolytic homophthalazines (formerly called 2,3-benzodiazepines) in the striato-pallido-nigral system of rats.

Homophthalazines (2,3-benzodiazepin-derivates, such as tofisopam, nerisopam, girisopam) constitute a drug family with strong anxiolytic and antipsychotic potencies. By autoradiography, all of these drugs showed a specific distribution pattern of binding sites exclusively in brain areas which relate to the striato-pallido-nigral system, while no specific label was found in any other brain areas in the rat. Quantitative analyses of the autoradiograms by computerized densitometry, as well as by a receptor binding assay on 32 microdissected brain areas showed very high concentrations of tritiated homophthalazines in the glubus pallidus, caudate nucleus, putamen and the substantia nigra. Relatively high density of binding sites was measured in the nucleus accumbens, the olfactory tubercle, the entopeduncular nucleus and the subthalamic nucleus. Concentrations measured in the cerebral cortical areas, cerebellum or brainstem nuclei did not differ from the background. No significant differences were found between the homophthalazines investigated in terms of the distribution patterns or density of binding sites.

Animals↗

[3H]resiniferatoxin binding by the human vanilloid (capsaicin) receptor.

We report here that we were able to detect the human vanilloid receptor in all three major central endings of primary afferent neurons--in the dorsal horn of the spinal cord, in the cuneate and gracile nuclei and in the spinal nucleus of the trigeminal nerve--and to characterize the binding properties of the receptor in the dorsal horn. Specific [3H]resiniferatoxin (RTX) binding is thought to represent the vanilloid (capsaicin) receptor. [3H]RTX binding to membranes obtained from total human spinal cord and dorsal horn followed sigmoidal saturation kinetics indicating apparent positive cooperativity. The cooperativity index determined by fitting the data to the Hill equation was 1.37 +/- 0.02 in the total spinal cord and 1.77 +/- 0.16 in the dorsal horn. The apparent dissociation constants in whole spinal cord and dorsal horn membranes were 915 +/- 12 and 532 +/- 27 pM; the receptor densities were 140 +/- 6 and 227 +/- 15 fmol/mg protein, respectively. Membrane preparations from the spinal nucleus of the trigeminal nerve and the cuneate and gracile nuclei also bound [3H]RTX in a similar fashion. In parallel experiments, rat spinal cord membranes bound [3H]RTX with 20- to 40-fold higher affinity, somewhat greater positive cooperativity, but at a 3-fold lower receptor density. As predicted by the modified Hill equation, non-radioactive RTX at low receptor occupancy produced biphasic competition curves.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Neuropeptides in the human dorsal vagal complex: an immunohistochemical study.

The distribution of twelve biologically active neuropeptides, i.e., thyrotropin-releasing hormone, corticotropin-releasing factor, pro-opiomelanocortin-derived peptides (adrenocorticotropic hormone, beta-endorphin, alpha-melanocyte-stimulating hormone), leucine-enkephalin, dynorphin A, dynorphin B, cholecystokinin, substance P, galanin and calcitonin gene-related peptide, was examined by immunohistochemistry in the human dorsal vagal complex including the nucleus of the solitary tract, the dorsal motor nucleus of the vagus and the area postrema. Immunoreactivity of all the twelve neuropeptides was found widely distributed in the various subdivisions of the nucleus of the solitary tract, showing a unique distribution for every peptide. Neuronal cell bodies immunostained with leucine-enkephalin, galanin and dynorphin B were found in this region. There were no immunopositive perikarya for any of the peptides in the other structures studied. Fibers containing galanin, corticotropin-releasing factor, substance P, dynorphin B, thyrotropin-releasing hormone and calcitonin gene-related peptide were observed at a relatively high density in the nucleus of the solitary tract. In the same structure, a moderately dense network of fibers immunostained with dynorphin A, cholecystokinin and leucine-enkephalin, but only solitary pro-opiomelanocortin-derived peptides-containing fiber fragments were observed. In the dorsal motor nucleus of the vagus the most prominent network of fibers was found to contain thyrotropin-releasing hormone, galanin and substance P. In contrast to these, no beta-endorphin immunoreactivity was detected. The area postrema contained only moderate to low densities of galanin-, substance P-, calcitonin gene-related peptide-, dynorphin B- and cholecystokinin-immunoreactive fibers.

Adult↗

The regional distribution of N-acetylaspartylglutamate (NAAG) and peptidase activity against NAAG in the rat nervous system.

N-Acetylaspartylglutamate (NAAG), a prevalent peptide in the vertebrate nervous system, may be hydrolyzed by extracellular peptidase activity to produce glutamate and N-acetylaspartate. Hydrolysis can be viewed as both inactivating the peptide after synaptic release and increasing synaptic levels of ambient glutamate. To test the hypothesis that NAAG and the peptidase activity that hydrolyzes it coexist as a unique, two-stage system of chemical neurotransmission, 50 discrete regions of the rat CNS were microdissected for assay. In each microregion, the concentration of NAAG was determined by radioimmunoassay and the peptidase activity was assayed using tritiated peptide as substrate. The NAAG concentration ranged from 2.4 nmol/mg of soluble protein in median eminence to 64 in thoracic spinal cord. Peptidase activity against NAAG ranged from 54 pmol of glutamate produced per milligram of membrane protein per minute in median eminence to 148 in superior colliculus. A linear relationship was observed between NAAG peptidase and NAAG concentration in 46 of the 50 areas, with a slope of 2.26 and a correlation coefficient of 0.45. These data support the hypothesis that hydrolysis of NAAG to glutamate and N-acetylaspartate is a consistent aspect of the physiology and metabolism of this peptide after synaptic release. The ratio of peptide concentration to peptidase activity was > 0.3 in the following four areas: ventrolateral medulla and reticular formation where the peptide is concentrated in axons of passage, thoracic spinal cord, where NAAG is concentrated in ascending sensory tracts as well as motoneuron cell bodies, and ventroposterior thalamic nucleus.

Animals↗

Potential problems in using [35S]-dATP-tailed oligonucleotides for detecting mRNAs in certain cells of the immune system.

In this study we examined the cause of unusually intense signals obtained in immune cells by in situ hybridization histochemistry using 35S-labeled oligonucleotides. We verified that the phenomenon is an amplification of a specific signal due to a series of chemical interactions after the probe binds to a specific mRNA in the tissue. The presence of oxidative enzymes in the tissue seems to be necessary for this reaction to occur. Therefore, most cells of the immune system (e.g., macrophages, neutrophil and eosinophil leukocytes), being rich in oxidative enzymes, will show some signal amplification. The intensification of the signal can be avoided if MgCl2 is substituted for CoCl2 in the synthesis of [35S]-thiophosphate-labeled probes, if 2,3-dimercaptopropanol [British anti-Lewisite (BAL)] is added to the hybridization buffer, or if [33P]-phosphate is used instead of [35S]-thiophosphate in the labeling of the probes.

Adenosine Triphosphate↗

Galanin immunoreactive neurons in the medulla oblongata of rats.

The distribution of galanin-immunoreactive (-ir) neurons in the medulla oblongata was mapped with light microscopic immunohistochemistry. No immunopositive perikarya were seen in untreated rats. Two days after colchicine treatment, galanin immuno-positive neurons were localized in the following areas: 1) raphe nuclei (magnus, pallidus and obscurus); 2) in various parts of the reticular formation, mainly in the territory of the catecholaminergic groups and in the peritrigeminal subdivision of the lateral reticular nucleus; 3) vagal nuclei (nucleus of the solitary tract, nucleus ambiguous); 4) two cell groups at the ventral surface of the rostro-caudal middle portion of the medulla oblongata (they do not correspond to any known demarkated anatomical nuclei, but related to the chemosensitive medullary area); 5) in the gelatinous part of the spinal trigeminal nucleus. The wide distribution of galanin neurons in the medulla support data that had been reported on the role of this peptide in various viscerosensory and autonomic mechanisms. In addition to these, galanin seems to be an important factor in the restoration of lesioned neurons (nerve growth factor-like activity). An increased galanin mRNA expression can be seen in dorsal vagal or hypoglossal motor neurons after intracranial transections of vagal or hypoglossal nerves, respectively. Transections of the olivocerebellar tract induced galanin gene expression in neurons of the contralateral inferior olive. After brainstem hemisection, galanin immunopositivity was seen in cells of the nucleus of the solitary tract due to the transection of ascending projections of this primary autonomic center in the medulla oblongata.

Animals↗

5-HT uptake sites and 5-HT2 receptors in brain of antidepressant-free suicide victims/depressives: increase in 5-HT2 sites in cortex and amygdala.

The density (Bmax) of 5-HT2 receptors labelled with [3H]ketanserin was significantly increased in prefrontal cortex (by 67%) and amygdala (by 97%) from suicide/depressives in comparison with controls. There were no differences in Kd of [3H]ketanserin binding between the two groups. The density (Bmax) and affinity (Kd) of [3H]paroxetine sites were not significantly different in the suicide/depressives and controls. The ratio between the density of presynaptic 5-HT uptake sites and postsynaptic 5-HT2 receptors in amygdala was significantly lower in suicide/depressives than in controls. The data confirm and extend some of the previous findings of increases in 5-HT2 receptors in post-mortem brains of suicide victims and depressives who died of natural causes and lend support to the view that an abnormality in brain serotonergic system is associated with depression and suicidal behaviour.

Adult↗

A novel specific binding site for homophthalazines in the rat brain.

The specific binding sites of a homophthalazine, girisopam, in rat brain have been localized by qualitative and quantitative autoradiography. This substance exerts strong anxiolytic and antipsychotic effects both in rodents and in humans. High labeling was present in all major components of the extrapyramidal system, such as the caudate-putamen, globus pallidus, subthalamic nucleus, substantia nigra, and the extrapyramidal portion of the accumbens nucleus and the olfactory tubercle, while specific labeling was not seen in any other brain areas including the cerebral cortex, thalamus, cerebellum or brainstem areas. This novel distribution of girisopam is consistent with its antipsychotic effect and anxiolytic properties and may provide a morphological basis for further studies to elucidate the mechanisms of action of homophthalazines in the central nervous system.

Animals↗

Heterogeneous distribution of functionally important amino acids in brain areas of adult and aging humans.

The regional distribution of seven amino acids thought to have inhibitory neurotransmitter or neurotransmitter precursor function--GABA, glycine, taurine, serine, threonine, phenylalanine, and tyrosine--was determined in 52 discrete areas from brain of adult and old humans. Significant heterogeneity was found, with 3- to 16-fold differences in levels in the various regions analyzed. The patterns of distribution were somewhat different from those in the adult or old rat brain. Relatively few changes were seen in old brain. Heterogeneity in distribution has to be taken into account in assessing physiological changes in amino acid levels and metabolism.

Adult↗

Reduced [3H]flunitrazepam binding in cingulate cortex and hippocampus of postmortem schizophrenic brains: is selective loss of glutamatergic neurons associated with major psychoses?

UNLABELLED: Findings. Specific [3H]flunitrazepam binding to "neuronal"-type sites was significantly lower in anterior cingulate cortex, hippocampus, somatomotor cortex, cerebellar cortex, and globus pallidus in small postmortem samples of schizophrenic brains than in non-schizophrenic controls. Four of these five brain regions were reported by others to exhibit atrophy and/or neuronal loss in schizophrenia. INTERPRETATION: Selective loss of hippocampal pyramidal neurons in postmortem schizophrenic brains has been reported (11). Pyramidal neurons are known to be glutamatergic (14,26) and to exhibit high densities of benzodiazepine binding sites (25,31). Glutamatergic neurons are known to be abundant in most layers of the cerebral cortex, and most of these are pyramidal neurons (26). All layers of the cerebral cortex display high densities of benzodiazepine binding sites (24,25,31). The number of larger pyramidal cells is little affected in most layers of the anterior cingulate cortex, but the number of small neurons is significantly lower, particularly in layer II (10). Pyramidal neurons range in size from very large to very small, and many very small pyramidal cells are often counted, together with small "stellate" neurons, as "granule" cells (28). Further, non-pyramidal glutamatergic neurons are reportedly also found in cerebral cortex (26). Thus, it seems possible that the large reduction in [3H]flunitrazepam binding we find in anterior cingulate cortex reflects the selective loss of glutamatergic neurons. The hypothesis that selective loss of glutamatergic neurons form various brain regions is associated with major psychoses can be easily tested by immunohistochemical studies of these regions using glutamate- and GABA-specific antibodies.

Adult↗

Rapid alterations in cAMP accumulation in brain nuclei of rats following microinjections of vasoactive intestinal polypeptide (VIP) into the lateral ventricle.

The in vivo effect of exogenous vasoactive intestinal polypeptide (VIP) on the accumulation of cAMP in 21 microdissected brain nuclei was investigated 3 and 7 min after intraventricular injections in rats. VIP elicited significant (up to 20-fold) increases in cAMP levels. This effect is region specific varying considerably among the brain regions investigated. VIP dramatically increased the cAMP content of the lateral septal nucleus, several hypothalamic nuclei, the habenula, the midbrain central gray and the locus coeruleus. Smaller increases were observed elsewhere including some VIP-rich brain areas such as the cerebral cortex and the hippocampus.

Animals↗

Effect of ACE inhibitors on atrial natriuretic factor in the brains of rats with reduced renal mass.

We tested the effect of renal insufficiency, with and without angiotensin (Ang) converting enzyme (ACE) inhibition, on blood and brain atrial natriuretic factor (ANF) in rats. Two ACEs, one which penetrates into the CNS and one which does not, were used to distinguish between peripheral and central ACE effects. Rats underwent 5/6 nephrectomy (5/6-NPX) by ligation of renal arterial branches. After seven days, 28 5/6-NPX rats received lisinopril 20 mg/kg/day and 28 5/6-NPX rats received quinapril 30 mg/kg/day orally for five days, while 28 5/6-NPX control rats and 28 sham rats did not. Body weight, blood pressure, drinking and urine volume were monitored. At sacrifice, urine, plasma, and brain tissue was collected. ANF in 16 brain areas was measured by radioimmunoassay. 5/6-NPX resulted in increased blood pressure, increased urine volume, proteinuria, and increased drinking. Both ACEs lowered blood pressure to sham values and decreased proteinuria. Both ACEs increased plasma renin activity and decreased plasma ANF. However, only lisinopril decreased drinking and urine volume. 5/6-NPX increased ANF values in six brain areas, namely the periventricular preoptic nucleus, the arcuate nucleus, the perifornical nucleus, the periventricular hypothalamic nucleus, the paraventricular nucleus, and the dorsal raphe nucleus compared to sham rats. These same increases in brain ANF were also observed in 5/6-NPX rats given quinapril, compared to shams. However, lisinopril lowered ANF to sham levels in the periventricular preoptic nucleus, the arcuate nucleus, and the perifornical nucleus. In the three additional brain areas, namely the periventricular hypothalamic nucleus, the paraventricular nucleus, and the dorsal raphe nucleus, lisinopril did not effect the elevated ANF concentrations.(ABSTRACT TRUNCATED AT 250 WORDS)

Angiotensin-Converting Enzyme Inhibitors↗

Effects of single or repeated immobilization on release of norepinephrine and its metabolites in the central nucleus of the amygdala in conscious rats.

The release of norepinephrine (NE) and its metabolites in the central nucleus of the amygdala was measured using in vivo microdialysis during immobilization (IMMO) stress in conscious rats. Animals underwent 2-hour periods of IMMO either once or daily for 7 days. Extracellular fluid concentrations of NE, dihydroxyphenylglycol (DHPG), methoxyhydroxyphenylglycol (MHPG), and the dopamine metabolite dihydroxyphenylacetic acid (DOPAC) were measured before, during, and after IMMO. Microdialysate levels of NE and DHPG attained 2- to 3-fold increments during the 1 h of IMMO and declined thereafter, whereas MHPG and DOPAC levels attained maximal levels of about twice basal concentrations during the 2- or 3-h after initiation of IMMO. After the sixth IMMO basal levels of NE, DHPG, MHPG, and DOPAC were decreased, and NE, DHPG, and DOPAC responses during the seventh IMMO failed to attain levels found during the first IMMO, although the absolute changes during IMMO were similar between animals subjected to IMMO once or seven times. The results indicate that acute IMMO increases synthesis, release, and metabolism of NE in the central nucleus of the amygdala and that repetition of IMMO decreases basal catecholamine synthesis and noradrenergic turnover in this brain region, without inhibiting acute noradrenergic responses.

3,4-Dihydroxyphenylacetic Acid↗