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Biomedical subjects

A Vaccari

Publications and source records attributed to A Vaccari.

At least 55 records · Page 3Linked to original sources

Selective effects of neonatal hypothyroidism on monoamine oxidase activities in the rat brain.

Hypothyroidism of mild intensity was obtained with prenatal and neonatal submission of Long-Evans rats to an iodide-rich diet. Chronic daily administration of methimazole to iodide-supplemented Long-Evans pups or to iodine-deprived Charles-River rats through the first 29-30 days of age provoked severe hypothyroidism. Monoamine oxidase type A (MAO-A) and not type B (MAO-B) activity was consistently, although slightly (by approximately 20%), increased in the hypothyroid brain. Triiodothyronine (T3)-induced hyperthyroidism did not affect MAO activity. Replacement therapy with T3 did not normalize MAO-A activity in hypothyroidism. Methimazole displayed a competitive and reversible in vitro inhibition of MAO-A but not MAO-B activity. Although this effect was obtained at concentrations far higher than those estimated to reach the brain after a single injection of the goiterogen, the occurrence of accumulation processes in the metabolism-deficient hypothyroid neonate rats cannot be excluded. Thus, MAO-A activity might be either directly depressed during the goiterogenic treatment, or increased as the result of some kind of rebound effect after interruption of methimazole administration.

Animals↗

Decreased central serotonin function in hypothyroidism.

Male rats born of mothers kept on an iodide-free diet from day 15 of pregnancy up to day 4 post-delivery, were rendered hypothyroid by a daily s.c. injection of methimazole, 20-25 mg/kg from day 1 up to day 30 of age. Two days after the last injection, euthyroid and hypothyroid rats were given 220 mg/kg i.p. of L-5-hydroxytryptophan (5-HTP). The resulting behavioral syndrome was much less intense in hypothyroids, compared to euthyroids, thus suggesting a state of serotonergic hypoactivity.

5-Hydroxytryptophan↗

Gonadal influences on the inhibition of monoamine oxidase type B activity.

Monoamine oxidase type B (MAO-B) was similarly active in the hypothalamus of 60-day-old male and female Charles River rats. A single, 2 mg/kg IP injection of deprenyl, however, resulted in a significantly greater inhibition of hypothalamic MAO-B in normal males than in normal females. Repeated administration of estrogen (estradiol valerate) to intact males postnatally, a treatment which disrupts the masculinization process, although not provoking true "feminization," decreased the inhibition of MAO-B, thus abolishing the sex-specific difference. The intensity of deprenyl-provoked hypothermia and ptosis in males exceeded that of females; neonatal and postnatal estrogenization of males resulted in diminution of these effects. Androgen administration to neonate females did little affect the biochemical and in vivo parameters of MAO inhibition. It is concluded that sex-specific, biochemical differences in MAO-B inhibition may have pharmacological correlates, and both facets of MAO inhibition are sensitive to neonatal exposure to estrogen.

Animals↗

Constancy of adult hypothalamic tyrosine hydroxylase after gonadal steroid treatment during development.

Tyrosine hydroxylase (TH) was studied in the entire hypothalamus of 60-day-old male and female rats, and its activity was similar in both sexes. Administration of estrogen or androgen to male or female pups soon after birth and during development did not affect the kinetic parameters of TH. It is, thus, suggested that sexual dimorphism in the levels and turnover of catecholamines (CA) and their sensitivity to fluctuations in gonadal steroids during development do not depend on corresponding sex-related or steroid-sensitive differences in the synthesis of hypothalamic CA.

Aging↗

Gonadal influences on the sexual differentiation of monoamine oxidase type A and B activities in the rat brain.

The sex-dependent differentiation of monoamine oxidase (MAO) in the hypothalamus of 60-day-old, Charles River rats was found to involve only type A (MAO-A), and not type B (MAO-B) enzyme. In vivo inhibition of type A by clorgyline, and type B by (--)deprenyl, however, tended to decrease the specific activity of both types of MAO to a smaller extent in the female than in the male hypothalamus. When masculinization was prevented by neonatal administration of estradiol (E) to males, hypothalamic MAO-A and MAO-B activities increased in both control and MAO-inhibited rats. Androgenization of females, however, had little effect on the MAO activity. Whereas the effects of neonatal estrogenization were attributable neither to a direct influence of E nor to a sexual difference in the peripheral clearance of the MAO-inhibitor used, single, high doses of steroids to adult, but not to newborn rats, did acutely affect the kinetics of MAO-A. The activity of MAO-A was also decreased by high concentrations of E or TS in vitro. The imprinting for patterns of hypothalamic MAO-A and MAO-B in the two sexes results, probably, from genetic predetermination. Neonatal changes in the homeostasis of gonadal hormones may result in type-MAO nonspecific effects in adulthood, whereas the short-term effects of high concentrations of steroids may be selective for the A form.

Animals↗

Developmental profiles of catecholaminergic enzymes in adrenals of perinatal rats: effect of a hypoxic environment.

Fetal and early neonatal development of adrenal catecholaminergic enzymes was studied in rats maintained under normal (normoxic) and high-altitude, 3800 m, 13% PO2 (hypoxic) conditions. In adrenals of normoxic fetuses, tyrosinehydroxylase (TH), DOPA-decarboxylase (DDC), phenylethanolamine-N-methyltransferase (PNMT), catechol-O-methyltransferase (COMT) and monoamine oxidase (MAO) showed rapid increases in activity from day 19 to day 21 of gestation. The activities of all enzymes but TH were higher at day 1 postpartum compared to fetal values: TH was equiactive just before and after birth. In animals conceived, born and raised at high altitude, several changes indicative of impaired adrenal development occurred. The activities of the synthesizing enzymes, TH, DDC and PNMT, were variably affected at some time during the perinatal period. The activities of the catabolizing enzymes, MAO and COMT, at high altitude were increased on the last days of gestation but depressed after birth, compared to control levels. Catecholamine content in high-altitude adrenals was altered on day 19 of gestation when epinephrine was lower, and again on day 1 postpartum when both norepinephrine and epinephrine were higher than in control adrenals at sea level. Normal developmental changes and high-altitude-induced disturbances in adrenal catecholaminergic enzymes are discussed with reference to differences observed in adrenal cortical function between sea-level and high-altitude animals.

Adrenal Glands↗

Adaptive changes induced by high altitude in the development of brain monoamine enzymes.

Exposure to high altitude (HA) affects neurotransmitter levels in the adult brain and induces a number of neurologic and behavioral disturbances. The present work was undertaken to investigate the effects of chronic exposure to a moderate hypoxic environment (natural altitude of 3800 m, 12.8% O2 in inspired air) on the development from birth until adulthood of brain monoamine enzymes in rats. The activity of synthesizing (tyrosine and tryptophan hydroxylase) and catabolizing (catechol-O-methyl transferase and monoamine oxidase) enzymes were studied in discrete brain areas (cerebral cortex, cerebellum, mesodiencephalon, hypothalamus, corpus striatum, and pons medulla) and was shown to be selectively affected by HA, depending on the age of the animal and the brain region. In general, enzyme activity was less susceptible to HA during the first week after birth than at later ages, some brain areas such as the hypothalamus showing significant alterations in some enzymes throughout development, and in all enzymes at adulthood. Furthermore, in all brain areas and at all ages, tyrosine and tryptophan hydroxylase were more affected by HA than the catabolizing enzymes, and their activity was increased in some areas (e.g., cerebral cortex and cerebellum) but decreased in other areas (e.g., hypothalamus, mesodiencephalon, corpus striatum). These enzymatic changes and the corresponding alterations in precursor amino acids, particularly tryptophan, seem to be due more to the direct effect of hypoxia on oxygen-dependent enzymes, than to the stress. It appears that an hypoxic environment may provoke both early and long-term alterations in catecholamine and serotonin metabolism, thus neurotransmitter imbalances may explain some of the alterations in neurologic and endocrine development characteristic of the hypoxic animal.

Acclimatization↗