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Biomedical subjects

G Jonsson

Publications and source records attributed to G Jonsson.

At least 127 records · Page 7Linked to original sources

In vivo formation of 5-methoxytryptamine from melatonin in rat.

Deacetylation of melatonin to 5-methoxytryptamine (5-MT) in vitro and in vivo was investigated in rat liver and brain tissue, using a gas chromatographic--mass spectrometric 5-MT assay method. In vitro incubation of liver but not brain (hypothalamic, Mesencephalic) slices with melatonin led to a concentration-dependent formation of small amounts of 5-MT; the conversion being 0.3--0.8%. In vivo administration of melatonin resulted in a dose-dependent formation of 5-MT in small quantities in the liver. The time course showed a peak maximum within 0.5 h, with a rapid decline; the half-life being about 1 h. 5-MT could be detected in both the blood and the hypothalamus after in vivo injection of melatonin. The time course of 5-MT in the blood was similar to that in the liver, but 5-MT could only be detected in the hypothalamus after large doses shortly after the melatonin injection. MAO had to be inhibited both in the in vitro and in vivo experiments in order to recover 5-MT, indicating that formed 5-MT is normally rapidly metabolised by MAO. It is concluded that a small fraction of melatonin can be converted to 5-MT by deacetylation (by aryl acylamidase) in the liver in vivo, constituting a minor pathway. Such a pathway could not be demonstrated in the brain. Trace amounts of 5-MT previously reported to be present in various tissues could originate from deacetylation of melatonin in the liver and possibly some other peripheral organs known to contain the deacetylating enzyme. The present results indicate that peripherally formed 5-MT, a psychoactive compound, is unlikely to have any effect on brain function under normal circumstances.

5-Methoxytryptamine↗

Noradrenaline and dopamine interaction in rat brain during development.

The effects of systemic treatment of newborn rats with the catecholamine neurotoxins 6-hydroxydopamine (6-OH-DA) or N-(2-chloroethyl)-N-ethyl-2-bromobenzylamine (DSP4) on the central dopamine (DA) and noradrenaline (NA) neurons were studied using neurochemical techniques. Both neurotoxins cause similar alterations of the postnatal development of the NA neurons with a pronounced NA denervation in the cerebral cortex and a NA hyperinnervation in the pons-medulla. The results did not show any neurotoxic action of neonatal 6-OH-DA or DSP4 treatment on the DA neurons. The tyrosine hydroxylase inhibition model was used to evaluate catecholamine turnover. The data showed a reduced DA turnover both in the cerebral cortex and striatum in young rats (12 days old) after neonatal 6-OH-DA or DSP4 treatment. After 6-OH-DA this effect could be blocked by pretreatment with the NA uptake blocker desipramine, which also prevented the 6-OH-DA induced alteration of the development of NA neurons. No clear-cut effect on DA turnover was seen in the adult stage after neonatal 6-OH-DA or DSP4, although a reduced DA turnover was observed in the cortex after an acute DSP4 treatment in adult rats. The results show that NA nerve terminals originating in the locus coeruleus NA neurons may be involved in regulating the functional activity of the DA nerve terminals both in the cerebral cortex and the striatum. This regulation appears to be facilitatory in nature and is present early in development.

Adrenergic Fibers↗

Intracortical spread of exogenous catecholamines: effective concentration for modifying cortical plasticity.

The present study is aimed to clarify the question of maximal intracortical spread of locally perfused 6-hydroxydopamine (6-OHDA) and norepinephrine (NE) through a continuous microperfusion system. The following analyses were performed: 1) catecholamine (CA) fluorescence histochemistry in 6-OHDA-perfused cortex, 2) spatial distribution of tritium counts in the visual cortex perfused either with [3H]-6-OHDA or with [3H]N# and 3) chemical assay of endogenous CAs in 6-OHDA-perfused cortex. 4) High voltage paper electrophoresis was also used to separate unchanged NE from NE metabolites in cortex samples perfused with [3H]NE. Taking the present results together with those in previous physiological assays of cortical synaptic plasticity, we calculated the lowest effective concentration of 6-OHDA for depletion and of NE for restoration of synaptic plasticity in kitten visual cortex: it was approximately 3 microM for 6-OHDA and 0.3 microM for NE, respectively. This concentration of 6-OHDA seems to be low enough for its specific uptake by CA-containing nerve terminals in the visual cortex. The effective concentration of NE appears to be close to or less than the endogenous level of NE per unit of volume of the normal cortical tissue. In addition, by comparing the size of chemical lesions placed by 6-OHDA perfusion in the visual cortex and the spatial distribution of endogenous NE in cortical tissues which had been treated similarly with 6-OHDA, we evaluated the lower limit of sensitivity of a modified glyoxylic acid-perfusion histofluorescence method for visualizing CA (mostly NE)-containing fibers and terminals. The threshold of sensitivity seemed to be 20% of the control.

Animals↗

Effects of neonatal nicotine administration on the postnatal development of central noradrenaline neurons.

The effects of neonatal nicotine and/or 6-hydroxydopamine (6-OH-DA) treatment on the postnatal development of central noradrenaline (NA) neurons have been investigated using neurochemical and histochemical techniques. Nicotine was found to produce an increase of 3H-NA uptake and endogenous NA in the cerebral cortex and pons-medulla, which was most pronounced at the age of one week. These parameters were normalized in the adult stage. Neonatal nicotine treatment was also found to partially counteract the 6-OH-DA induced alteraton of the development of the locus coeruleus NA system. The NA denervation produced by 6-OH-DA in the cerebral cortex and the spinal cord was thus counteracted by nicotine treatment. The results suggest that neonatal nicotine administration has a growth stimulatory effect on the early postnatal development of central NA neurons.

Animals↗

On the occurrence of 5-methoxytryptamine in brain.

A quantitative gas chromatography-mass spectrometry method has been used to determine 5-methoxytryptamine (5-MT) in the CNS and pineal gland of various species. The mean +/- S.D. levels of 5-MT in sheep, pig and cow pineal glands was 545 +/- 180, 228 +/- 119 and 117 +/- 48 pmol/g, respectively. The postmortem levels of 5-MT in the pig pineal gland was stable for 2 h after death but decreased by more than 90% 24 h after death. In the CNS, 5-MT was found only in the sheep hypothalamus (28 +/- 4 pmol/g). Analysis of the rat pineal gland and CNS failed to detect any 5-MT at the limit of sensitivity of the method which is at variance with previously reported results.

5-Methoxytryptamine↗

Aging and unusual catecholamine-containing structures in the mouse brain.

Brains of C57BL/6J mice, aged 4, 8 and 20--29 months, were examined by the Falck-Hillarp histochemical fluorescence technique. Numerous large, intensely fluorescent green to yellow-green spots (LIFS) were observed in the brains of senescent mice. LIFS were generally round to ovoid in shape and ranged in size from about 10 micrometer to about 30 micrometer. Histochemical and pharmacological procedures and spectral analysis indicated that the formaldehyde-induced fluorescence of the LIFS was due to the presence of catecholamines (CA) rather than aging pigment. Their distribution in the brain suggests an association with nerve axons or terminals rather than cell bodies. The number of LIFS in the hypothalamus increased progressively during aging. It is proposed that LIFS may represent age-related, unusual CA accumulation in enlargements proximal to axonal or terminal portions undergoing spontaneous degeneration.

Aging↗

Developmental plasticity of central noradrenaline neurons after neonatal damage--changes in transmitter functions.

The effects of neonatal 6-hydroxydopamine (6-OH-DA) treatment (systemic administration) on noradrenaline (NA) metabolism, turn over, and receptor characteristics have been investigated in rat brain in the adult stage. This treatment is known to preferentially affect the locus coeruleus (LC) NA system leading to a marked NA denervation in the central cortex and hyperinnervation of NA nerve terminals in the pons and medulla oblongata without influencing the LC perikarya. The main NA metabolite, 3-methoxy-4-hydroxy-phenylglycol (MOPEG) was reduced by about 70% in the cerebral cortex after 6-OH-DA treatment at birth while the endogenous NA was almost completely depleted (-92%). The MOPEG levels were not significantly changed in the pons medulla after 6-OH-DA treatment in contrast to the 60% increase of the endogenous NA concentration. The relative reduction of NA in the cerebral cortex of 6-OH-DA treated rats increased in the cerebral cortex following administration of the tyrosine hydroxylase inhibitor alpha-methyl-p-tyrosine (H44/68) compared to the control, while the H44/68 induced depletion of NA was reduced in the pons medulla after 6-OH-DA. The steady-state level of endogenous NA and the effect of H44/68 were unchanged in the LC perikarya after 6-OH-DA treatment. These results indicate that the NA turn over in remaining NA nerve terminals in the cerebral cortex is increased after 6-OH-DA, while decreased in the pons-medulla, possible related to changes in the activation of presynaptic alpha-adrenoreceptors in both regions. NA-induced formation of cAMP in vitro was found to be markedly increased in the cerebral cortex after 6-OH-DA, whereas no consistent change was observed in the pons medulla. Measurements of alpha- and beta-receptor binding in vitro using radioligand techniques showed an increase of binding sites (20%--50%) for both receptors in the neocortex aster 6-OH-DA, whereas no changes were observed in the pons medulla. The 6-OH-DA induced changes in NA turnover, cAMP generating systems, and receptor density may all represent compensatory processes following the altered development of the NA neurons induced by 6-OH-DA.

Aging↗

Ibotenic acid-induced neuronal degeneration: a morphological and neurochemical study.

Possible neurotoxic actions of intracerebral injections of ibotenic acid, a conformationally restricted analogue of glutamic acid, have been evaluated in rat brain and compared with those of kainic acid. Light microscopical analysis revealed that ibotenic acid produced a marked disappearance of nerve cells in all areas studied, namely striatum, the hippocampal formation, substantia nigra and piriform cortex. Lesions in areas distant to the injection site were not seen. Axons of passage and nerve terminals of extrinsic origin did not seem to be damaged, since, e.g., no apparent degeneration of the dopaminergic terminals in the neostriatum was observed except for a small area surrounding the cannula. In the neostriatum, enkephalin immunoreactive neuronal cell bodies as well as nerve terminals disappeared after injection of ibotenic acid into this nucleus. After injection into the substantia nigra tyrosine hydroxylase immunoreactive cell bodies in the zona compacta disappeared, whereas no certain effect could be seen on the enkephalin immunoreactive nerve fibers. In vitro experiments, conducted with striatal synaptosomal and membrane preparations, showed that ibotenic acid differed from kainic acid by being devoid of a significant inhibitory effect on high affinity glutamate uptake and by having a low affinity for 3H-kainic acid binding sites. Furthermore, ibotenic acid did not interfere with the binding of a number of radioligands for other transmitter receptors. As compared to kainic acid, ibotenic acid has the advantage of being less toxic to the animals and of producing more discrete lesions, possibly due to faster metabolism and/or other fundamental biochemical differences. Because of these special features, ibotenic acid seems to represent a valuable new tool in the morphological and functional analysis of central neuronal systems.

Animals↗

Reevaluation of the indoleamine hypothesis of depression. Evidence for a reduction of functional activity of central 5-HT systems by antidepressant drugs.

The effects of antidepressant drugs on central 5-HT receptor activity were studied in rats and mice. Antidepressant drugs were evaluated for their ability to displace 3H-5-HT and 3H-d-LSD from membrane binding sites in the dorsal neocortex of rats in vitro and for their ability to block 5-HTP and d-LSD induced behavioral effects in mice. The degree of blockade of head-twitches in mice produced by the antidepressants was highly correlated with their affinity for 3H-d-LSD binding sites. A number of antidepressant drugs such as amitriptyline, nortriptyline, mianserine, doxepine, nomifensine and dibenzepine appear to possess marked 5-HT receptor blocking activity at some type of 5-HT receptors in brain. New antidepressant drugs such as zimelidine, which specifically inhibit 5-HT reuptake and do not block 5-HT receptor sites, may after chronic treatment also reduce the functional activity of 5-HT systems by producing adaptive changes in postsynaptic 5-HT mechanisms. Thus, a new indoleamine hypothesis of depression is presented: the therapeutic action of antidepressant drugs may in part be due to a reduced functional acitivity of some central 5-HT systems.

Animals↗

Occlusion, arch dimensions, and craniofacial morphology after palatal surgery in a group of children with clefts in the secondary palate.

A mixed longitudinal study of the occlusion and arch dimensions from 4 to 11 years of age was made on fifty-five children with solitary palatal clefts. A cephalometric study was also made on thirty of these patients when they were approximately 10 years of age. The palatal closure was made by means of a modified von Langenbeck procedure at a mean age of 1 year 9 months. The frequency of cross-bite in the deciduous dentition was comparable with that in children without clefts. As in other studies, an impairment of the occlusion was seen with increasing age. The children showed retrognathic faces and the difference between the cleft children and the noncleft children was of the same magnitude as in other studies. It was found that the arch dimensions and the craniofacial morphology were influenced by the size of the cleft, while the occlusion was not. The craniofacial morphology in the present investigation was comparable to that in other studies where a push-back technique had been used, but the frequency of cross-bite was lower. Thus, it would appear that the type of surgery influences the occlusion more than it affects the craniofacial morphology.

Cephalometry↗

Catecholamine turnover changes in hypothalamus and dorsal midline area of the caudal medulla oblongata of spontaneously hypertensive rats.

The central noradrenaline (NA) and adrenaline (A) turnover in 15--16-week-old stroke prone, spontaneously hypertensive (sp-SH) female rats in an advanced stage of hypertension was found to differ from that of normotensive Wistar-Kyoto (WKy) control rats. The catecholamine (CA) levels were measured after inhibition of dopamine-beta-hydroxylase (DBH) or phenylethanolamine-N-methyltransferase (PNMT). in the hypertensive rats the dopamine (DA) and NA levels and the NA turnover were reduced in the hypothalamus, while in the dorsal part of the caudal medulla oblongata NA levels and A turnover were reduced. Changes in hypothalamic DA and NA mechanisms and in A mechanisms in medulla oblongata may therefore be of importance in the blood pressure regulation of sp-SH rats.

Animals↗

Catecholamines and hemorrhagic shock in awake and anesthetized rats.

Catecholamines in plasma and tissue were determined during hemorrhagic shock in the rat. Two groups of rats were compared. 1. Awake rats bled to 70 mm Hg for 4 hours. 2. Anesthetized rats (pentobarbital sodium 60 mg/kg) bled to 35 mm Hg for 4 hours. The mortality rate was similar in both groups. The bled volume was also similar. The awake rats responded with tachycardia upon bleeding while the anesthetized rats responded with bradycardia. The basal plasma levels of noradrenaline (NA), adrenaline (A) and dopamine (DA) in the awake rats were 2.87, 4.09, and 0.51 nmol/l respectively and in the anesthetized rats 0.97, 0.54, and 0.56 nmol/l respectively. At the onset of bleeding there was a more rapid increase of plasma A and NA in the awake rats than in the anesthetized rats. In the awake rats plasma A reached its peak value (70 nmol/l) at 1 hour and then decreased, while NA showed a slow continuous rise to 17 nmol/l at 4 hours. In the anesthetized rats plasma A remained at a high level (about 60 nmol/l) between 1 and 4 hours, while there was a continuous rise of NA to 17 nmol/l at 4 hours. In these rats a very high DA level (17 nmol/l) was also found at 4 hours. The tissue content of NA was not significantly decreased in the heart while a significant decrease was seen in the skeletal muscle after bleeding for 4 hours. In the heart there was a substantial increase of A after bleeding. The A content of the adrenals decreased to about 25% of the initial value in the awake animals. The results show that barbiturate anesthesia considerably depresses the initial sympatho-adrenal response to bleeding.

Adrenal Glands↗