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Biomedical subjects

M Palkovits

Publications and source records attributed to M Palkovits.

At least 91 records · Page 5Linked to original sources

High level expression and characterization of recombinant human hippocampus phenol sulfotransferase: a novel phenol-sulfating form of phenol sulfotransferase.

Phenol sulfotransferases (PSTs) represent a family of sulfotransferase enzymes that modify the biologic activities and excretion of phenolic compounds and monoamines. A novel human hippocampal PST (H-PST) cDNA with homology to phenol (P) and monoamine (M) forms of PST was previously isolated from brain. To compare the biochemical properties of H-PST with that of phenol (P-PST) and monoamine (M-PST) sulfotransferases, high level expression of recombinant H-PST was achieved in this study with the pET3c vector in BL21(DE3) Escherichia coli cells. Expression was demonstrated by isopropyl beta-D-thiogalactopyranoside induction of 34-kDa H-PST that represented 5-10% of total E. coli proteins. Purification by ion-exchange chromatography on DEAE-Sepharose yielded more than 2 mg of H-PST. Characterization showed that H-PST exists as a homodimer of 60-65 kDa by gel filtration chromatography. H-PST prefers p-nitrophenol as substrate and does not sulfate dopamine or neuropeptide substrates. Kinetic studies showed that H-PST possessed K(m(app)) and Vmax(app) values of 3 microM p-nitrophenol and 160 nmol/min/mg, respectively. H-PST was sensitive to inhibition by DCNP (2,6-dichloro-4-nitrophenol). H-PST is thermolabile since its activity was reduced upon preincubation at 37 degrees C. These results indicate that H-PST shows similarities and differences compared to P-PST and M-PST sulfotransferases. P-PST prefers p-nitrophenol as substrate, is sensitive to inhibition by DCNP, and is thermostable; in contrast, M-PST prefers monoamines as substrate, is not sensitive to DCNP, and is thermolabile. The distinct profile of biochemical properties of H-PST, and its primary sequence homology to P-PST and M-PST, suggests that H-PST represents a novel allelic variant of human phenol sulfotransferases. Importantly, this study demonstrates that high level expression of H-PST allows determination of distinguishing characteristics of variant forms of PSTs.

Alleles↗

Chronic ACE inhibition by quinapril modulates central vasopressinergic system.

OBJECTIVE: The role of the brain as a target for angiotensin converting enzyme (ACE) inhibitors in the treatment of heart failure and hypertension is unclear. To test the hypothesis that ACE inhibitors may modulate other central neuropeptide systems such as the central vasopressin system, we studied the effects of chronic treatment with the ACE inhibitor, quinapril, on ACE activity and on central vasopressin content in specific brain areas in rats. METHODS: 22 rats were chronically treated with quinapril (6 mg.kg-1 BW per gavage daily for 6 weeks; untreated controls, n = 14). ACE density in various brain regions was assessed by in vitro autoradiography using the specific ACE inhibitor, 125I-351A. Vasopressin content was determined in 19 brain areas (micropunch technique) known to be involved in cardiovascular regulation. RESULTS: Following chronic quinapril treatment ACE was significantly decreased in the thalamus (-38%), hypothalamus (-37%), hypophysis (-35%), cerebellum (-36%) choroid plexus (-20%), and locus coeruleus (-35%). Additionally, a marked reduction in serum ACE activity (-97%) was observed. Plasma levels of vasopressin were significantly decreased after quinapril treatment (0.97[s.e.m. 0.11] vs. 1.63[0.24] pg.ml-1 in controls, P < 0.05). Vasopressin content was significantly reduced in 9 of 19 specific brain areas. Regarding the hypothalamic vasopressin-producing nuclei, vasopressin was decreased in the paraventricular (292[197] vs. 2379[585] pg.mg-1 crotein in controls; P < 0.001) and supraoptic nuclei (13618[1979] vs. 24525[3894] pg.mg-1 protein; P < 0.05), but not in the suprachiasmatic nucleus. Vasopressin content was significantly reduced in brain areas connected by vasopressinergic fibres originating in the hypothalamic paraventricular nucleus: namely central gray, subcommissural organ, organum vasculosum laminae terminalis, dorsal raphe nucleus, and locus coerules. Vasopressin content was also significantly reduced in the median eminence (5887[1834] vs. 28321[4969] pg.mg-1 protein, P < 0.001), where the hormone is mainly concentrated in the hypothalamo-hypophysial tract. CONCLUSIONS: Autoradiographic studies in vitro indicate that orally administered quinapril suppresses central ACE activity after chronic treatment. ACE inhibition by quinapril strongly influences vasopressin content in important brain areas which are involved in central cardiovascular regulation. Therefore, central modulatory effects of ACE inhibitors may also contribute to overall therapeutic efficacy.

Angiotensin-Converting Enzyme Inhibitors↗

Changes in specific binding sites of girisopam after chemical and surgical lesions in the striato-nigral system.

Neurotoxin (AMPA)-induced lesions in the caudate nucleus as well as unilateral surgical transection of the striato-nigral pathway strongly depleted the binding of a homophthalazine (formerly called 2,3-benzodiazepines) girisopam (GYKI-51189, EGIS 5810) selectively in the substantia nigra of the rat, ipsilateral to the lesions. In contrast to this, AMPA injections into the substantia nigra failed to effect on girisopam binding to either components of the nigro-striatal system. Data indicate that this homophthalazine may bind to a descending component of the striatum (striato-nigral projecting neurons), or its binding capacity to substantia nigra neurons depends on the integrity of striatal afferent pathways to the substantia nigra.

Afferent Pathways↗

Stress-induced Fos-like Immunoreactivity in the Pons and the Medulla Oblongata of Rats.

Immunoreactivity of the immediate early gene c-fos was used to investigate changes in the activity of brainstem neurons in response to acute stressors like immobilization, formalin-induced pain, cold exposure, hemorrhage and insulin-induced hypoglycemia. Different stressors induced Fos-like immunoreactivity in different pontine and medullary neurons. A single, 3 hour immobilization was found to be a very strong stimulus that activated brainstem catecholaminergic (tyrosine hydroxylase-immunopositive) neurons and cells in the raphe and certain pontine tegmental nuclei, as well as in the reticular formation. Pain, induced by a subcutaneous injection of formalin was also effective on catecholamine-synthesizing neurons and on others cells in the nucleus of the solitary tract. Cold exposure activated cells mainly in the sensory spinal trigeminal and parabrachial nuclei and in the so-called "pontine thermoregulatory area". Moderate Fos-like immunoreactivity was induced by a hypotonic (25%) hemorrhage in medullary catecholaminergic neurons, the nucleus of the solitary tract and the Barrington nucleus. Among stressful stimuli used, insulin-induced hypoglycemia elicited the smallest Fos activation in the lower brainstem. The present observations indicate that different stressors may use different neuronal pathways in the central organization of the stress response.

Journal Article↗

Viral labelling of synaptically connected neurons.

A method has recently been developed to study the neuroanatomical connections in the brain by trans-synaptic tract-tracing via neurotropic viruses. Neurotrop viruses injected into a peripheral organ or directly into the central nervous system are transported axonally. Viruses are expressed in the infected neurons and they are transferred through synapses to reach other neurons. Many research studies illustrate by immunocytochemical detection of the viral proteins that the trans-synaptically interconnected neurons can be visualized, in addition, their neurochemical character can be identified. Thus, viruses could serve as a self-amplifying specific markers of connected neurons along hierarchial chains of functionally related circuits. Herein, we reviewed the methodology of the neuroanatomical studies obtained with a member of a-herpes viruses, the pseudorabies virus, frequently used in tracer studies in rats.

Animals↗

Corticotropin-releasing hormone expression in supraoptic neurons after bilateral lesioning of the paraventricular nucleus in rats.

In situ hybridization histochemistry was used to demonstrate corticotropin releasing hormone (CRH) mRNA expression in the supraoptic nucleus of rats. Labeled cells with a range of grain densities were located mainly in the dorsal area of the nucleus. Long-term (6-weeks) lesioning of the hypothalamic paraventricular nucleus, which eliminates the major CRH pool from the hypothalamo-hypophyseal system resulted in an increased CRH mRNA density within supraoptic neurons compared to within sham-operated rats. Adrenalectomy failed to effect CRH mRNA content either in sham-operated or paraventricular-lesioned animals. CRH gene expression in supraoptic neurons of long-term paraventricular lesioned rats may exhibit a compensatory mechanism in the hypothalamus by which supraoptic neurons can take over some of the functions of the lesioned paraventricular CRH cells.

Adrenocorticotropic Hormone↗

Distribution of angiotensin II type-2 receptor (AT2) mRNA expression in the adult rat brain.

Radioactively labeled cRNA probes were used for in situ hybridization histochemistry to establish a detailed map of the sites of expression of the recently cloned angiotensin II, type 2 (AT2) receptor mRNA in the adult rat brain. The distribution of the AT2 receptor mRNA was consistent with that of the AT2 binding sites, which were previously established by autoradiographic binding studies. Thus, high AT2 receptor mRNA expression was observed in the lateral septum, in several thalamic nuclei, in the subthalamic nucleus, in the locus coeruleus, and in the inferior olive. Due to the superior resolution and sensitivity of in situ hybridization, AT2 receptor expression was localized at the cellular level, and some additional brain nuclei expressing AT2 receptor mRNA have been identified. These include the red nucleus, the pedunculopontine tegmental nucleus, the bed nucleus of the supraoptic decussation, the paragenual nucleus, and numerous brainstem nuclei. Several brain nuclei, such as the motor hypoglossal nucleus and the cerebellar nuclei, where AT2 receptor binding had previously been identified in young animals only, showed a high expression of the AT2 receptor mRNA in the adult rat. No correlation was found between the expression of the AT2 and the type 1 (AT1) receptor mRNAs. A combination of the in situ hybridization and glial fibrillary acidic protein (GFAP) immunohistochemistry shows that the AT2 receptor in the lateral septum showed that the AT2 receptor was not detected in GFAP immunoreactive astroglial cells, therefore indicating that AT2 is neuronal rather than glial in this brain region.

Animals↗

Isolation and measurement of the endogenous cannabinoid receptor agonist, anandamide, in brain and peripheral tissues of human and rat.

Anandamide (arachidonylethanolamide) is a novel lipid neurotransmitter first isolated from porcine brain which has been shown to be a functional agonist for the cannabinoid CB1 and CB2 receptors. Anandamide has never been isolated from human brain or peripheral tissues and its role in human physiology has not been examined. Anandamide was measured by LC/MS/MS and was found in human and rat hippocampus (and human parahippocampal cortex), striatum, and cerebellum, brain areas known to express high levels of CB1 cannabinoid receptors. Significant levels of anandamide were also found in the thalamus which expresses low levels of CB1 receptors. Anandamide was also found in human and rat spleen which expresses high levels of the CB2 cannabinoid receptor. Small amounts of anandamide were also detected in human heart and rat skin. Only trace quantities were detected in pooled human serum, plasma, and CSF. The distribution of anandamide in human brain and spleen supports its potential role as an endogenous agonist in central and peripheral tissues. The low levels found in serum, plasma, and CSF suggest that it is metabolized in tissues where it is synthesized, and that its action is probably not hormonal in nature.

Animals↗

Ethanol inhibition of stress-related tachycardia involves medullary NMDA receptors.

In rats, neurons in the perifornical area of the hypothalamus send descending projections to the commissural part of the nucleus tractus solitarii as demonstrated by an anterograde tracer study. In urethane-anaesthetised rats, stimulation of neurons in the perifornical area by microinjection of bicuculline or 6-OH-saclofen causes tachycardia and inhibits baroreflex bradycardia. The effects elicited from the perifornical area are similar in magnitude to those elicited from the adjacent dorsomedial nucleus, also called the hypothalamic defense area. Microinjection into the nucleus tractus solitarii of the NMDA (N-methyl-D-aspartate) receptor antagonist, AP-7 (2-amino-7-phosphonoheptanoic acid), inhibits the tachycardic response to stimulation of the perifornical area. Injection of ethanol intravenously or into the nucleus tractus solitarii also inhibits this tachycardic response, but causes no further inhibition when combined with AP-7. We conclude that the perifornical area is part of the hypothalamic defense area, and it is under strong, tonic GABAergic inhibition mediated by both GABAA and GABAB receptors. Furthermore, descending input from the perifornical area to the nucleus tractus solitarii is via an NMDA synapse, and ethanol inhibits stress-related tachycardia by inhibiting these NMDA receptors in the nucleus tractus solitarii.

Animals↗

[Neural pathways--neural networks].

During the past two decades, the introduction of several modern neuroanatomical approaches resulted in a rapidly growing body of informations about neuronal pathways in the central nervous system. Several new neuronal connections between brain areas have been discovered, and the chemical nature (neurotransmitter content) of pathways has been determined by using highly specific neurochemical and immunohistochemical techniques. On the basis of these new informations, our knowledge and attitude to the general organization of neuronal connections have been changed substantially: 1. Neuronal pathways are multi-neuronal networks rather than simple chain of neurons, wherein informations are forwarded between two brain areas bidirectionally, meanwhile several additional brain regions are inter-connected by axon-collaterals. 2. A single neuronal cell may synthesize several neuropeptides which co-localized in and released from nerve terminals, and depending on the target sites they may act as neurotransmitters or neurohormones. In certain conditions, neuropeptides may also function as nerve growth factors by supporting the survival or the restitution of neuronal cells. 3. By the introduction of molecular imaging in neuroscience (visualization of oncogenes, specific mRNA's, etc), topographical studies on neuronal pathways are more and more completed by functional informations.

Brain↗

Identification of endogenous peroxidase-containing cells as eosinophils in the gastrointestinal system.

Endogenous peroxidase (EPX) activity in certain cells in the gastrointestinal system interferes with immunohistochemical methods based on the horseradish peroxidase-catalyzed substrate deposition. We studied the distribution and characteristics of these cells. We also report an effective and antigen-preserving EPX blocking method, to make possible the evaluation of immunoperoxidase stainings in cryostat sections. The EPX-containing cells (EPX cells) are present in every part of the gastrointestinal tract, predominantly in the tunica propria. We identified them as eosinophil cells in May-Grünwald-Giemsa stained sections. The complete match was confirmed by different fluorescence techniques. Firstly, the EPX cells were labeled by a red fluorochrome-conjugated substrate of peroxidase enzymes, rhodamine-tyramide, whereas the eosinophil cells were labeled by the green fluorochrome, l-hydroxy-3,6,8-pyrenetrisulfonic acid, which is known to label exclusively eosinophilic granules at pH 10. Secondly, all the EPX cells reacted with a monoclonal antibody against the eosinophil peroxidase enzyme. Finally, a set of commercially available leukocyte markers was used to characterize the EPX cells colabeled by fluorochrome-tyramides. Neither macrophages nor mast cells showed EPX activity. Increased numbers and altered distribution were seen in stressed rats and in ulcerated human stomach.

Animals↗

Neurotensin receptors in the human amygdaloid complex. Topographical and quantitative autoradiographic study.

The distribution of high affinity 125I-neurotensin (NT) binding sites were investigated in the amygdaloid complex of adult humans by means of dry film and emulsion autoradiography. Autoradiograms were analysed quantitatively using [125I] standards and an image analyser system, and data obtained were converted to nCi of ligand bound per mg tissue. High densities of 125I-NT binding sites were found in the following amygdaloid structures the dorsal part of the accessory basal nucleus, the medial part of the cortical nucleus, the lateral subdivision of the central nucleus, the paralaminar nucleus, the amygdalohippocampal transition area and the rostral portions of the anterior amygdaloid area. The ventral part of the accessory basal nucleus, the intercalated cell groups and the remaining parts of the anterior amygdaloid area showed moderate density of NT binding sites, while the medial, basal and lateral amygdaloid nuclei, the lateral part of the cortical nucleus, the medial subdivision of the central nucleus, as well as the corticoamygdaloid transition area exhibited low densities of 125I-NT binding sites. At microscopic level, silver grains appeared more or less evenly distributed over both neuronal perikarya and the surrounding neuropil. In comparison to NT-immunoreactivity, NT receptors showed mismatching distribution throughout most parts of the amygdala, with the exception of the lateral subdivision of the central nucleus, where NT-immunoreactive perikarya and nerve fibers as well as 125I-NT binding sites were found in high density.

Adult↗

Specific binding of [3H]resiniferatoxin by human and rat preoptic area, locus ceruleus, medial hypothalamus, reticular formation and ventral thalamus membrane preparations.

Specific [3H]resiniferatoxin (RTX) binding detects the vanilloid (capsaicin) receptors and provides a biochemical means for exploring their pharmacology. In the present study we demonstrate specific vanilloid (RTX) binding sites in various brain areas not known to be innervated by primary afferent neurons. Specific high-affinity binding of [3H]RTX could be detected in membrane preparations of the posterior ("hypothalamic") and anterior ("septal") parts of the preoptic area, locus ceruleus, medial hypothalamus, brainstem reticular formation and ventral thalamic nuclei from naive rats. The determined levels of binding at 4 nM [3H]RTX were 23.0 +/- 4.5, 7.1 +/- 1.6, 29.9 +/- 2.3, 23.5 +/- 2.4, 9.9 +/- 2.2 and 8.1 +/- 1.9 fmol/mg, respectively; unfortunately, the high levels of non-specific binding (higher than 80%) in the present experiments made it impossible for us to characterize fully the binding properties of the receptors. However, no detectable specific [3H]RTX binding was present in membranes of brain nuclei from rats pretreated with 300 mg/kg capsaicin, a treatment which causes loss of response to capsaicin. Significant specific [3H]RTX binding was also absent in membrane preparations of the midbrain central gray matter, somatosensory cortex and cerebellum either from naive or capsaicin treated rats. In human brain specific [3H]RTX binding measured at 4 nM [3H]RTX showed a pattern of distribution similar to that in the rat brain. The corresponding levels of specific [3H]RTX binding in the preoptic area, locus ceruleus, medial hypothalamus, reticular formation and ventral thalamus were 44.9 +/- 2.4, 50.6 +/- 3.0, 36.1 +/- 2.9, 9.4 +/- 2.8 and 8.4 +/- 2.4 fmol/mg, respectively. Our findings corroborate previous biological evidence that vanilloid receptors are present in brain as well as in sensory afferent neurons.

Animals↗

Brainstem hemisection decreases corticotropin-releasing hormone mRNA in the paraventricular nucleus but not in the central amygdaloid nucleus.

Corticotropin-releasing hormone (CRH) neurons in the paraventricular nucleus (PVN) of the hypothalamus and in the central nucleus of the amygdala (ACE) participate in neurohumoral and behavioral responses to stress. To understand better the central regulation of CRH, the present study assessed the effects of ipsilateral surgical hemisection of the brainstem on expression of CRH mRNA in the PVN and the ACE. In situ hybridization was used to demonstrate PVN CRH mRNA expression in hemisected, sham-operated or intact rats before and after 3 h of immobilization (IMMO). In addition, hypothalamic-pituitary-adrenocortical (HPA) axis activity at baseline and during IMMO was assessed by measurements of plasma concentrations of ACTH and corticosterone. IMMO markedly increased CRH mRNA expression in the PVN in all experimental groups. Rats with brainstem hemisections had lower PVN CRH mRNA expression ipsilateral to the lesion and markedly blunted responses after IMMO, compared to values in sham-operated rats. In contrast, neither hemisection nor IMMO affected CRH mRNA expression in the ACE. Lesioned and SHAM-operated groups did not differ in baseline or IMMO-induced increases in plasma ACTH or corticosterone levels. The present results indicate that baseline levels and IMMO-induced increments in CRH mRNA expression in the PVN, but not in the ACE, depend on ipsilaterally ascending medullary tracts and that IMMO-induced HPA activation does not depend on these pathways.

Adrenocorticotropic Hormone↗

Neural regulation of corticotropin releasing hormone (CRH) and CRH receptor mRNA in the hypothalamic paraventricular nucleus in the rat.

The role of afferent innervation to the hypothalamic paraventricular nucleus (PVN) on CRH mRNA and CRH receptor mRNA levels was studied in control and stressed rats. Groups of rats were subjected to unilateral transection of the stria terminalis (ST), the medial forebrain bundle at the rostral hypothalamic level (RMFB), or the lower brainstem through the medulla oblongata between the obex and the locus coeruleus (CBs). Twelve days after surgery, each group of rats was further divided into controls (basal conditions) and stressed (1 h immobilization), before collecting brains for mRNA analysis by in situ hybridization histochemistry. While ST and RMFB cuts had no effect on basal CRH mRNA levels in the PVN, CBs cut decreased CRH mRNA in the PVN ipsilaterally to the knife cut but it was without effect on the contralateral side (-40% and -37% vs contralateral and sham-operated, respectively, P < 0.01). Acute stress (rats were killed 3 h after immobilization) increased CRH mRNA levels by about 30% bilaterally, an effect which was unchanged by any of the three hemisections. Under basal conditions, CRH receptor mRNA levels in the PVN were indistinguishable from the surrounding areas in sham-operated controls, ST and RMFB operated rats. However, brainstem hemisection resulted in clear expression of CRH receptor mRNA in areas consistent with the dorsal, medial-ventral and lateral parvicellular subdivisions of the PVN, ipsilateral to the transection. CRH neurons in these subdivisions project to the lower brainstem and the spinal cord. Expression of CRH receptor mRNA in the medial-dorsal and anterior parvicellular divisions (CRH neurons with median eminence projections) was not affected by CBs cut. In these subdivisions, immobilization stress markedly increased CRH receptor mRNA levels but it did not influence CBs cut-induced CRH receptor expression. ST and RMFB hemisections were without effect on PVN CRH receptor mRNA levels under basal or stress conditions. Oxytocin (OT) and vasopressin (VP) mRNA levels in the magnocellular subdivision of the PVN were unchanged after immobilization, or following ST, RMFB or CBs cuts, whereas OT mRNA in the medial-ventral and caudal parvicellular subdivisions was decreased by 52% after CBs cut. The data demonstrate that: 1) basal CRH mRNA levels in the PVN are under tonic stimulatory influence of the lower brainstem (and/or spinal cord) afferents; 2) CRH receptor mRNA expression in PVN subdivisions (pituitary vs lower brainstem/spinal cord projecting neurons) is under different control mechanisms, and 3) immobilization-induced changes in CRH mRNA and CRH receptor mRNA levels are mediated either by neural inputs from brain areas other than those investigated here, or by humoral factors.

Animals↗

Changes of atrial natriuretic peptide in brain areas of rats with chronic myocardial infarction.

We measured immunoreactive atrial natriuretic peptide (ANP) in 18 selected, microdissected brain areas. Rats were studied 8 wk after coronary ligation or sham operation or as nonoperated control animals. In separate animals, hemodynamic and plasma parameters were measured. Rats with myocardial infarction had marked elevated right atrial and left ventricular end-diastolic pressure (2.6 +/- 0.6 and 16.2 +/- 3.1 mmHg, respectively; n = 15) vs. sham-operated rats (1.3 +/- 1.0 and 5.5 +/- 1.2 mmHg, n = 14; P < 0.05) and depressed maximal rate of pressure development (9,613 +/- 980 vs. 15,600 +/- 2,027 mmHg/s; P < 0.05) but similar arterial pressure (126 +/- 4 vs. 124 +/- 3 mmHg; P > 0.05). After myocardial infarction (n = 10), plasma ANP, renin activity, and angiotensin (ANG) II were elevated (53.1 +/- 16.2 pg/ml, 10.7 +/- 2.5 ng ANG I ml-1 h-1, and 219.6 +/- 11.0 fmol/ml, respectively) vs. sham rats (12.0 +/- 2.2 pg/ml, 5.7 +/- 0.7 ng ANG I ml-1, h-1, and 142.9 +/- 9.4 fmol/ml; n = 10; P < 0.05), whereas vasopressin and aldosterone levels remained unchanged among groups. In rats with myocardial infarction, a substantial decrease of ANP was found in the medial preoptic nucleus, the supraoptic nucleus, the subfornical organ, the paraventricular nucleus, and the locus ceruleus. These nuclei are involved in electrolyte, and fluid homeostasis, blood pressure regulation, and modulation of neuroendocrine systems. The mechanism of this reduction and the consequences for systemic adaption or decompensation remain unclear. However, the data suggest that myocardial infarction and chronic left ventricular dysfunction may induce changes of a neurotransmitter in brain.

Animals↗