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Identification of catecholamines in the immune system by electrospray ionization mass spectrometry.

The first evidence that catecholamines might be present in the immune system was provided by capillary electrophoresis combined with electrochemical detection. Here, we present the first structural characterization of the endogenous catecholamines isolated from human peripheral blood mononuclear cells. Dopamine, L-DOPA and norepinephrine were detected and were identified with electrospray ionization mass spectrometry by determination of the protonated molecular species of each catecholamine and their major fragments generated in the electrospray source with a nozzle-skimmer voltage method. This technique, in conjunction with accurate mass measurement, allowed us to identify in an unfractionated sample the content of catecholamines in extracted cells in a quantitative manner, with structure-specific methodology. The data unambiguously confirm our previous tentative findings, and also strengthen the importance of the regulatory function of catecholamines in the immune system and the existence of an autocrine loop, where lymphocytes may down-regulate their own activity.

3,4-Dihydroxyphenylacetic Acid↗

The assay of the catecholamine content of small volumes of human plasma.

Plasma catecholamines are routinely measured using high-performance liquid chromatography (HPLC) with electrochemical detection. Most of the present assays require sample volumes of at least 500 microL and are complex and labour-intensive procedures, or require large capital investment to reduce the sample size. This paper describes a liquid/liquid plasma catecholamine extraction procedure, HPLC separation and electrochemical detection method which is simple, sensitive and reproducible. The resting catecholamine concentration of 50 microL adult human plasma can be assayed using standard electrochemical detection. The limits of detection were 0.1 fmol injected onto the column for each catecholamine. This method allows the routine assay of plasma catecholamine concentrations within the normal adult ranges in both 500 and 50 microL samples. The within assay coefficient of variation (CV) for noradrenaline (NA) was 1.2% in 500 microL plasma and 1.9% for 50 microL plasma, corresponding values for adrenaline (A) were 8.5 and 6.6%. The between assay CVs were 3.9 and 7.8% for NA, and 9.9 and 5.7% for A.

Acids↗

Heart rate and catecholamine contribution to QT interval shortening on exercise.

BACKGROUND: QT interval shortens with exercise. Some of this shortening is due to an increase in heart rate, and some is due to other effects of exercise, probably mostly neuroendocrine effects. Data from subjects with cardiac transplants have suggested that non-heart rate-related changes in QT interval on exercise are due to the effects of circulating catecholamines. HYPOTHESIS: We sought to determine whether changes in plasma catecholamine levels with exercise are an important contributor to non-heart rate-related QT interval shortening. METHODS: Subjects with DDD pacemakers were recruited. Subjects had QT intervals measured at rest, during a low fixed level exercise test designed to increase heart rate to about 110 beats/min, and, after resting, during pacing at a heart rate of 110 beats/min. Catecholamine levels were measured at each stage of the study. RESULTS: QT interval at rest was 420 +/- 12 ms, during pacing 366 +/- 16 ms, and on exercise 325 +/- 14 ms. This then gave the proportion of QT interval shortening due to heart rate as 68.6 +/- 9.3% of total QT shortening, with the range between 35 and 95.6%. There was no proportionality between the degree of QT interval shortening on exercise that was not due to increases in heart rate and changes in plasma catecholamine levels. CONCLUSION: Two-thirds of exercise-induced QT interval shortening are due to an increase in heart rate, and one-third to other effects. Changes in plasma catecholamine levels on exercise were not closely related to changes in the QT interval on exercise.

Aged↗

Distribution of catecholamine-containing nerves on blood vessels of the rat trachea.

This study was performed to determine the distribution of catecholamine-containing sympathetic nerves on blood vessels of the rat trachea. The glyoxylic acid method was used to visualize catecholamine-containing axons in tracheal whole mounts, and silicone vascular casts were used to elucidate the architecture of the vasculature. We also examined the relationship of these axons to the trachea's plexus of cholinergic nerves and ganglia, using tracheal whole mounts stained for acetylcholinesterase activity. We found that most catecholamine-containing axons were associated with arterioles located between cartilaginous rings or in the posterior membrane. In both regions, catecholamine-containing nerves were most abundant at the origin of terminal arterioles, which supplied the airway mucosa and smooth muscle. At the origin of these vessels, the fluorescent axons changed their orientation from longitudinal to circumferential. Few fluorescent axons were present beyond this region of the terminal arterioles, and none was found on capillaries or venules or on smooth muscle cells of the posterior membrane. Fluorescent axons were present in some tracheal ganglia but non enveloped neuronal cell bodies or had varicosities, and no ganglion cells had glyoxylic acid-induced fluorescence. Catecholamine-fluorescence was also present in clusters of small intensely fluorescent (SIF) cells, which were located in the adventitia of the posterior membrane and in the longitudinal nerve trunks which ran the length of the trachea. Pargyline pretreatment increased the fluorescence of axons and SIF cells but did not reveal a different distribution of these structures.(ABSTRACT TRUNCATED AT 250 WORDS)

Acetylcholinesterase↗

Catecholamine-induced oligodendrocyte cell death in culture is developmentally regulated and involves free radical generation and differential activation of caspase-3.

Oligodendrocyte cultures were used to study the toxic effects of catecholamines. Our results showed that catecholamine-induced toxicity was dependent on the dose of dopamine or norepinephrine used and on the developmental stage of the cultures, with oligodendrocyte progenitors being more vulnerable. A role for oxidative stress and apoptosis on the mechanism of action of catecholamines on oligodendrocyte cell death was next assessed. Catecholamines caused a reduction in intracellular glutathione levels, an accumulation in reactive oxygen species and in heme oxygenase-1, the 32 kDa stress-induced protein. All these changes were prevented by N-acetyl-L-cysteine, a thiocompound with antioxidant activity and a precursor of glutathione, and were more pronounced in progenitors than mature cells, which could contribute to their higher susceptibility. Apoptotic cell death, as assessed by activation of caspase-9 and -3 and cleavage of poly(ADP-ribose) polymerase (a substrate of caspase-3), was only observed in oligodendrocyte progenitors. Pretreatment with zVAD, a general caspase inhibitor, prevented activation of caspase-9 and -3, DNA fragmentation, and decreased progenitors cell death. Furthermore, the expression levels of procaspase-3 and the ratio of the proapoptotic protein bax to antiapoptotic protein bcl-xl were several folds higher in immature than mature oligodendrocytes. Taken together, these results strongly suggest that the catecholamine-induced cytotoxicity in oligodendrocytes is developmentally regulated, mediated by oxidative stress, and have characteristics of apoptosis in progenitor cells.

Acetylcysteine↗

Effect of pharmacological agents on human keratinocyte mitosis in vitro. II. Inhibition by catecholamines.

Catecholamines produce mitotic inhibition in primary cell cultures of human keratinocytes probably via a block in the G2 part of the cell cycle. Epinephrine produced significant mitotic inhibition (49%) at a concentration as low as 4.5 X 10(-10) M, while its analog, isoproterenol, produced 47% inhibition at 1 X 10(-10) M. Norepinephrine elicited a 49% inhibitory response at 1 X 10(-8) M. One other catecholamine, dopamine, caused a 53% decrease in mitosis at 1 X 10(-6) M. Other structurally related amines to exhibit mitotic inhibition were phenylephrine, 58% at 1 X 10(-7) M; octopamine, 47% at 1 X 10(-5) M; and tyramine, 52% at 1 X 10(-4) M. Serotonin showed no mitotic inhibition at 1 X 10(-4) M. Various alpha and beta adrenergic blocking agents were added to the cell system. The alpha blocking agent, phentolamine, had no effect on mitosis. When added in conjunction with epinephrine or norepinephrine, no reduction of the catecholamine-induced mitotic inhibition was observed. The beta blocking agent, propranolol, by itself showed slight mitotic inhibition at 1 X 10(-6) M. When added along with epinephrine or noreinephrine, propranolol reduced the catecholamine-induced mitotic inhibition approximately 65%. In addition, propranolol blocked mitotic inhibition caused by phenylephrine, an alpha adrenergic agent. However, another beta blocking agent, dichloroisoproterenol, showed strong mitotic inhibition (53%) when added to the cultures at a concentration of 1 X 10(-8) M. The effect was reduced to zero in the presence of propranolol. These data suggest that while beta receptors may be involved in the catecholamine-induced mitotic inhibition of human keratinocytes in vitro, the nature of the receptor-molecule interaction may be complex.

Catecholamines↗

Biosynthesis of catecholamines in organotypic cultures of peripheral autonomic nervous system: modifications by biopterin and other agents.

Organotypic cultures of chick-embryo sympathetic ganglion chains maintained in vitro for 3-4 weeks rapidly synthesized catecholamines, as demonstrated by the conversion of L-[U-14C]tyrosine to catechol derivatives and by histofluorescence assay. The biosynthesis of catechols from radioactive L-tyrosine leveled off at 6 hr of incubation and dropped slightly at 10 hr. The addition of DL-alpha-methyl-p-tyrosine to the culture medium did not affect protein synthesis, but produced a complete block in the synthesis of catecholamines from L-tyrosine, with consequent loss of fluorescence in the bodies and proximal processes of adrenergic neurons in 2 hr, and essentially complete loss in 6 hr. Our observations suggest that a major portion of the catecholamines were synthesized in the perikarya and transported via neuronal processes to their terminals. The addition of monoamine oxidase inhibitors to the incubation medium produced a moderate to pronounced increase in fluorescence; reserpine caused a rapid and profound loss of catecholamines. When added to the culture medium, crude biopterin produced an increase in the synthesis of catechol derivatives from radioactive L-tyrosine and a marked increase in fluorescence, beginning in the neuronal perikarya. This effect was completely blocked by DL-alpha-methyl-p-tyrosine. The mechanism of biopterin's action in the synthesis of catecholamines in cultures of sympathetic ganglia is not completely elucidated from these studies, but may be related to the role it plays as cofactor for tyrosine hydrocylase.

Animals↗

Inhibition of the catechol-O-methyltransferase-catalyzed O-methylation of 2- and 4-hydroxyestradiol by catecholamine: implications for the mechanism of estrogen-induced carcinogenesis.

Catechol estrogens have been postulated to mediate estrogen-induced carcinogenesis. As part of our examination of this hypothesis, we studied the catechol-O-methyltransferase-catalyzed O-methylation of 2- and 4-hydroxyestradiol and the inhibition of this reaction by catecholamines. Epinephrine, norepinephrine, or dopamine (2 microM) inhibited the methylation of 2- and 4-hydroxyestradiol (20 mM) catalyzed by porcine liver catechol-O-methyltransferase by approximately 28-46% and 37-57%, respectively. One millimolar concentrations of catecholamines also inhibited the methylation of 5 microM 2- and 4-hydroxyestradiol by hamster kidney cytosol catechol-O-methyltransferase by approximately 27-31% and 19-33%, respectively. At a 15 microM 4-hydroxyestradiol concentration, the IC50 values for epinephrine and for dopamine were approximately 1200 and 3000 microM, respectively. Kinetic analyses of the methylation of 4-hydroxyestradiol in the presence of epinephrine, norepinephrine, or dopamine all revealed a competitive mechanism of inhibition. In contrast, the methylation of 160 microM 2-hydroxyestradiol was enhanced by approximately 75% in the presence of 1600 microM epinephrine or 2400 microM norepinephrine, likely due to a strong positive allosteric effect. An analysis of the substrate concentration dependence of O-methylation of 2-hydroxyestradiol revealed that at low concentrations (< 15 microM) this reaction was inhibited by epinephrine or norepinephrine, whereas it was significantly increased by approximately 50-100% at high substrate concentrations (50-200 microM). In contrast, dopamine competitively inhibited the methylation of all concentrations of 2-hydroxyestradiol (5-160 microM) tested. High levels of catecholamines were measured in hamster kidney or mouse uterus (1041 +/- 204 or 882 +/- 214 ng norepinephrine/g wet tissue, respectively) and in Fisher 344 rat pituitary (9.4 +/- 1.6 ng dopamine/mg protein), target organs of estrogen-induced carcinogenesis. Values were much lower in other organs of the same animals or in kidney, uterus, or pituitary of other rodent strains or species, which do not develop tumors under these conditions. High levels of catecholamines in target organs of hormonal cancer, the inhibition of O-methylation of 4-hydroxyestradiol, and the differential regulation of O-methylation of 2-hydroxyestradiol by catecholamines all support a role of 4-hydroxyestrogen metabolites in estrogen-induced carcinogenesis.

Animals↗

Catecholamines decrease lymphocyte adhesion to cytokine-activated endothelial cells.

Numerous studies have shown that catecholamines can modulate lymphocyte migration. This effect may be mediated in part by modulation of lymphocyte-endothelial cell interactions, which is dependent on adhesion molecules expressed on both of these cells. Our results show that catecholamines decreased T-cell binding to IL-1 activated endothelial cells in vitro. The decrease in adhesion was not mediated by a change in adhesion molecule expression as LFA-1 and VLA-4 expression on T-cells and ICAM-1 and VCAM-1 expression on endothelial cells were not changed by catecholamine stimulation. T-cells flatten and enlarge the area of surface contact as they adhere to endothelial cells. Image analysis of the number of T-cells bound and the amount of cell spreading over several time points suggests that catecholamines alter the kinetics of T-cell-endothelial cell adhesion. These results support the hypothesis that catecholamines can alter lymphocyte-endothelial interactions in vivo, which in turn would affect lymphocyte migration.

Catecholamines↗

Stage-dependent changes in adrenal steroids and catecholamines during development in Xenopus laevis.

Changes in adrenal hormones during the complete developmental cycle from egg to juvenile were investigated in the amphibian Xenopus laevis. Whole-body concentrations of the adrenal steroids corticosterone (B), and aldosterone (Aldo) were determined by radioimmunoassay and those of the adrenal catecholamines epinephrine (E), norepinephrine (NE), and dopamine (D) were determined by HPLC. In addition, the catecholamine-synthesizing enzymes tyrosine hydroxylase, dopamine beta-hydroxylase, and phenylethanolamine N-methyltransferase were immunocytochemically localized for the characterization of chromaffin adrenal cells. B and Aldo were not detectable in the whole body before hatching. B levels rose earlier than Aldo levels from stage 36 onward. B had already peaked at stage 46, whereas the largest amounts of Aldo were found at stage 54. After peaking, both steroids decreased gradually to 2.7 +/- 0.62 (B) and 0.4 +/- 0.1 (Aldo) ng/g body wt (mean +/- SEM, n = 10) in juvenile animals. E, NE, and D were detected just after hatching, when E and D showed an early peak at stage 40. E and NE increased moderately during development and demonstrated a sharp increase at the end of metamorphosis from stages 62 onward to 14.4 +/- 1.7 (E) and 34.1 +/- 4.67 (NE) ng/g body wt (mean +/- SEM, n = 6). Interestingly, D levels had a distinct pattern, because concentrations of D remained lower than those of NE and E over nearly the complete development, but showed a dramatic rise during the latest stages, reaching 707 +/- 54 ng/g body wt in juveniles. This dramatic shift in catecholamine levels was confirmed by immunocytochemistry in parallel. A large increase in chromaffin cells labeled with tyrosine hydroxylase immunoreactivity occurred in the latest developmental stages. The catabolic rates for all catecholamines in vivo were similar, which indicates that the different levels are due to various rates of synthesis. Thus, adrenal corticosteroids as well as catecholamines may have regulatory effects during premetamorphosis and metamorphic climax.

Adrenal Cortex Hormones↗

Antagonism of ethanol's central stimulation by catecholamine receptor agonists.

The effect of ethanol (2 g/kg) on brain catecholamine neurons in the rat as well as its interaction with catecholamine receptor agonists was studied utilizing single unit recording techniques. Identified dopamine (DA) neurons of the zona compacta, substantia nigra as well as noradrenaline (NA) neurons of the locus coeruleus showed no alterations in firing rate at ethanol administration. Also the function of their presynaptic DA and NA receptors, respectively, appeared normal judging from the unaltered inhibitory response to systemically or microiontophoretically applied receptor agonists, apomorphine and clonidine, respectively, when applied in small doses. In contrast, the catecholamine releasing agent amphetamine caused inhibition of firing of the central catecholamine neurons in the same anesthetized preparation. The rate of tryosine hydroxylation in vivo in central DA and NA neurons measured as the amount of Dopa accumulated in various brain regions following inhibition of aromatic l-amino acid decarboxylase by NSD 1015, 150 md/kg i.p., was significantly increased by ethanol in anesthetized rats. Consequently, the present data do not support the hypothesis derived largely from behavioural evidence that ethanol causes inactivation of central DA and NA neurons. The antagonism by catecholamine receptor agonists, apomorphine and clonidine of ethanol's behaviourally stimulant action may thus be of unspecific character. The results indicate that alterations in tyrosine hydroxylase activity, when measured as Dopa formation after decarboxylase inhibition, can occur without concomitantly altered impulse activity in central DA or NA neurons. At present the action of ethanol on brain DA and NA neurons remains unclear and necessitates further studies.

Animals↗

Monoamine oxidase and catecholamine metabolism.

The enzyme which has come to be known as monoamine oxidase was discovered in liver over 60 years ago as tyramine oxidase (Hare, 1928). Almost 10 years later, Blaschko et al. (1957a,b) established that epinephrine, norepinephrine and dopamine were also substrates for this enzyme. Zeller (1938) distinguished monoamine oxidase as different from several other amine oxidases, such as diamine oxidase. Although it was generally assumed that catecholamines were metabolized by MAO, this was not established until isotopically labelled epinephrine and an MAO inhibitor became available. Schayer (1951) found that after administration of N-methyl-14C-epinephrine, only about 50% of the radioactivity appeared in the urine, whereas when the 14C label was incorporated into the beta-position on the side chain, almost all of the radioactivity could be recovered. One year later, Zeller et al. (1952) discovered that isonicotinic acid hydrazide (iproniazid) inhibited MAO. When animals pretreated with the MAO inhibitor were administered N-methyl-14C-epinephrine, almost all of the radioactivity was recovered (Schayer et al., 1955), indicating that the enzyme was responsible for the metabolism of about half of the administered catecholamine. Schayer et al. (1952, 1953) had found that five urinary metabolite products of beta-labelled-14C-norepinephrine could be separated by paper chromatography, but the chemical structures of these compounds were not known. Armstrong et al. (1957) showed that 3-methoxy-4-hydroxymandelic acid (vanillyl mandelic acid, VMA) was the major metabolite of norepinephrine and Shaw et al. (1957) demonstrated that large amounts of homovanillic acid (HVA) were excreted in urine after administration of 3,4-dihydroxy-phenylalanine (DOPA). These observations led Axelrod to examine the possibility that O-methylation might precede deamination and to his discovery of catechol-O-methyl transferase (Axelrod, 1957, 1959). At that time it became apparent that there were two possible routes for metabolism of norepinephrine to VMA--either deamination followed by O-methylation or O-methylation and subsequent deamination. The relative roles of these two pathways in terminating the physiological actions of catecholamines then became a focus of attention. Biochemical methods were used to access directly the relative importance of the two metabolic pathways. Physiological methods, based on the effects of drugs which alter metabolism of the catecholamine, were used to examine the role of MAO and COMT in terminating the actions of administered or endogenously released catecholamines.

Animals↗

Effects of acute continuous exposure of the rat to cigarette smoke on amine levels and utilization in discrete hypothalamic catecholamine nerve terminal systems and on neuroendocrine function.

The effects of acute continuous exposure to the smoke from 1-4 cigarettes have been studied in the male rat in terms of hypothalamic catecholamine levels and utilization as well as the secretion of anterior pituitary hormones. Catecholamine levels in discrete hypothalamic catecholamine nerve terminal systems were studied by quantitative histofluorimetry. Catecholamine utilization was studied by means of the tyrosine hydroxylase inhibition method using alpha-methyl-(+/-)-p-tyrosine methyl ester. The serum hormone levels of adenohypophyseal hormones and of corticosterone were measured by the use of radioimmunoassay procedures. The results show that acute continuous exposure to unfiltered but not to filtered (Cambridge glass fibre filters) cigarette smoke leads to small but dose-dependent reductions of amine levels in most of the hypothalamic noradrenaline and dopamine nerve terminal system. These effects were associated with an enhancement of regional hypothalamic noradrenaline utilization but not of dopamine utilization in the median eminence. Furthermore, a reduction of TSH and prolactin serum levels was noted as well as increases in ACTH secretion. These results are partly different from those previously obtained with rats acutely exposed to intermittent unfiltered cigarette smoke. This difference is suggested to be due to a temporary blockade of catecholamine release following acute continuous exposure to cigarette smoke.

Animals↗

Association of spinal lamina I projections with brainstem catecholamine neurons in the monkey.

In addition to giving primary projections to the parabrachial and periaqueductal gray regions, ascending lamina I projections course through and terminate in brainstem regions known to contain catecholaminergic cells. For this reason, double-labeling experiments were designed for analysis with light and electron microscopy. The lamina I projections in the Cynomolgus monkey were anterogradely labeled with Phaseolus vulgaris leucoagglutinin (PHA-L) and catecholamine-containing neurons were labeled immunocytochemically for tyrosine hydroxylase (TH). Light level double-labeling experiments revealed that the terminations of the lamina I ascending projections through the medulla and pons strongly overlap with the localization of catecholamine cells in: the entire rostrocaudal extent of the ventrolateral medulla (A1 caudally, C1 rostrally); the solitary nucleus and the dorsomedial medullary reticular formation (A2 caudally, C2 rostrally); the ventrolateral pons (A5); the locus coeruleus (A6); and the subcoerulear region, the Kölliker-Fuse nucleus, and the medial and lateral parabrachial nuclei (A7). At the light microscopic level, close appositions between PHA-L-labeled lamina I terminal varicosities and TH-positive dendrites and somata were observed, particularly in the A1, A5 and the A7 cell groups on the contralateral side. At the electron microscopic level, examples of lamina I terminals were found synapsing on cells of the ventrolateral catecholamine cell groups in preliminary studies. The afferent input relayed by these lamina I projections could provide information about pain, temperature, and metabolic state as described previously. Lamina I input could impact interactions of the catecholamine system with higher brain centers modulating complex autonomic, endocrine, sensory, motor, limbic and cortical functions such as memory and learning. Nociceptive lamina I input to catecholamine cell regions with projections back to the spinal cord could form a feedback loop for control of spinal sensory, autonomic and motor activity.

Animals↗

Catecholamines and related o-diphenols in cockroach hemolymph and cuticle during sclerotization and melanization: comparative studies on the order Dictyoptera.

Catecholamines and related o-diphenols extracted from the cuticle and hemolymph of adult cockroaches during sclerotization and pigmentation of the cuticle were analyzed by reverse phase HPLC with electrochemical detection. At ecdysis, dopamine (DA) o-conjugates predominated in the hemolymph of Periplaneta americana, P. australasiae, P. fuliginosa, P. brunnea, and Blatta orientalis (Blattidae); Blattella germanica (Blattellidae); and Gromphadorhina portentosa and Blaberus craniifer (Blaberidae). N-Acetyldopamine (NADA) conjugates were second in abundance in these species, but were major in the hemolymph of the other blaberoid species, Leucophaea maderae and Nauphoeta cinerea. After ecdysis NADA became the major hemolymph catecholamine in all species as DA decreased rapidly. N-beta-Alanyldopamine (NBAD) concentrations in the hemolymph remained low in all species, although NBAD and its metabolite, N-beta-alanylnorepinephrine (NBANE), were generally the major catecholamines in tanning cuticle. Catechol (1,2-dihydroxybenzene) occurred mainly as a conjugate(s) at high levels in the hemolymph of nymphs and adults of all blattid species. Only trace amounts were detected in B. germanica and Cryptocercus punctulatus (Cryptocercidae), and none was found in any of the blaberoid species. High concentrations of NBANE and NBAD accumulated in tanning cuticle of B. germanica, G. portentosa, and all blattid species, whereas NADA and DA predominated in cuticle from the other blaberoid species, particularly L. maderae and N. cinerea. However, cockroaches as a group appear to utilize both the N-acetyl and N-beta-alanyl catecholamines for stabilization of the exoskeleton. The Blattidae differed most from the other families in having considerably higher concentrations of catecholamines in hemolymph and cuticle, as well as the large amounts of catechol conjugates in the hemolymph.

Animals↗

Corticosterone stimulates the development of preoptic catecholamine neurons in tadpoles Bufo bufo japonicus.

In Bufo bufo japonicus catecholamine neurons in the preoptic recess organ (PRO) became detectable at the metamorphic climax by formaldehyde-induced fluorescence (Falck-Hillarp technique). In hypophysectomized tadpoles metamorphosis was inhibited and no fluorescent neurons appeared in the PRO. Implantation of a pituitary graft to the hypophysectomized tadpoles induced metamorphosis and development of PRO catecholamine neurons. Administration of corticosterone to hypophysectomized tadpoles resulted in the development of PRO catecholamine neurons in spite of the unmetamorphosed state. On the other hand, prolactin administration had no effect on the PRO neurons of hypophysectomized tadpoles. From these results, in conjunction with our previous results indicating that thyroxine treatment induces development of the PRO catecholamine neurons in thyroidectomized animals but not in hypophysectomized animals, it is concluded that corticosterone is a primary hormone for the development of PRO catecholamine neurons in toad tadpoles.

Animals↗

Capillary-venous differences of free plasma catecholamines at rest and during graded exercise.

Levels of free plasma catecholamines were simultaneously determined in 10 cyclists using capillary blood from one ear lobe and venous blood from one cubital vein. Catecholamine concentrations were higher in the ear lobe blood than in the venous blood at rest and during graded exercise. Average differences amounted to 1.7 nmol X 1(-1) (dopamine), 2.1 nmol X 1(-1) (noradrenaline) and 1.9 nmol X 1(-1) (adrenaline) at rest and increased only to 8.8 nmol X 1(-1) for noradrenaline during exercise. We assume that higher concentrations of dopamine and adrenaline in the capillary blood point to a significant neuronal release of these catecholamines, similar to noradrenaline. Catecholamine concentrations in capillary blood may better reflect sympathetic drive and delivery of catecholamines to the circulation than the concentrations in venous blood.

Adult↗

Inhibition of the in vivo biosynthesis and changes of catecholamine levels in rat brain after alpha-methyl-p-tyrosine; time- and dose-response relationships.

Male Sprague-Dawley rats were given 0.407 mmoles/kg of D,L-alpha-methyl-p-tyrosine methylester HCl (H44/68; alpha-MT) at eleven time-points between 0--24 h, or 8 doses between 0.013--1.628 mmoles/kg of the drug at 1 h before i.v. injection of 160 micronCi tyrosine-2,6-3H. The rats were killed 15 min after tyrosine-3H and brain alpha-MT, tyrosine and catecholamines (endogenous and labelled), and plasma alpha-MT and tyrosine (--3H) were chromatographically isolated before being assayed spectrophotofluorimetrically (endogenous) or by liquid scintillation methods (labelled compounds). A delayed penetration of alpha-MT from plasma into brain, different elimination rates of alpha-MT in plasma and brain, and decreasing brain/plasma drug concentration on increasing alpha-MT dosages, indicated, that alpha-MT in brain and plasma belong to different pharmacokinetic compartments. The endogenous levels of catecholamines in the time-response experiments, declined to a minimum 4 h after alpha-MT administration, where the dopamine level was 38% and the noradrenaline level 51% of the saline controls. Kinetic data of the catecholamine elimination is given. In the dose-response experiment the decrease in the endogenous catecholamine levels was dose-related up to 0.407 mmoles/kg of alpha-MT, with no further decline on higher doses. The maximal inhibition of brain catecholamine synthesis occurred within 30 min after alpha-MT administration and the inhibition correlated better with the brain than with plasma alpha-MT content. The inhibition was dose-related with a maximal synthesis inhibition of 95% for dopamine and 80% for noradrenaline at the highest dose of alpha-MT. The duration of synthesis inhibition and storage depletion were shorter for noradrenaline (12 h) than for dopamine (16 h). Further, the ED50 for synthesis inhibition of dopamine (0.057 mmoles/kg) was half of the ED50 for synthesis inhibition of noradrenaline (0.117 mmoles/kg). This might suggest different sensitivities towards alpha-MT or different availabilities of alpha-MT in the two neuron populations. At the three highest doses of alpha-MT there were signs of interference with the uptake process for tyrosine from plasma into the brain. This was indicated by increased plasma levels and decreased brain levels of tyrosine (--3H).

Animals↗