Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “TYRAMINE”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 199 records · Page 11Linked to original sources

Pressor effect of oral tyramine during treatment with befloxatone, a new reversible monoamine oxidase-A inhibitor, in healthy subjects.

The interaction between tyramine and befloxatone, a new selective, reversible monoamine oxidase-A (MAO-A) inhibitor, was studied in a single-blind, parallel-group study in 30 healthy male volunteers whose fasting tyramine 30 dose (Tyr30) was 400 or 600 mg. Each subject completed a placebo run-in period followed by a befloxatone period. Befloxatone was given in repeated doses according to one of three regimens: befloxatone 20 mg once daily at the end of a meal rich in tyramine or befloxatone 10 or 20 mg twice daily 2 hours before a meal rich in tyramine. Subjects were given increasing daily doses of tyramine mixed with the meal, until a systolic blood pressure increase of at least 30 mm Hg was achieved (Tyr30). The mean Tyr30 decreased from 1220 mg (range, 600-1800 mg) during placebo to 290 mg (range, 150-500 mg) during befloxatone 20 mg once daily, 250 mg (range, 100-300) during befloxatone 10 mg twice daily, and 155 mg (range, 100-250 mg) during befloxatone 20 mg twice daily; corresponding to a potentiation factor of 5.2-, 6.5-, and 7.9-fold, respectively. The extent and the duration of the systolic blood pressure increase did not significantly differ between the placebo and the befloxatone regimens, except for a longer duration with the 20-mg twice daily regimen. These results are similar to those reported with the therapeutic dosage of other selective MAO-A inhibitors. They suggest that there would be little risk of hypertensive crisis in patients treated in clinical studies with befloxatone, and thus dietary restrictions appear to be unnecessary when the drug is given in a regimen of up to 20-mg once daily after meals.

Adult↗

A reinterpretation of tyramine sympathomimetic effect and tachyphylaxis.

In this commentary, the indirect sympathomimetic effect of tyramine and the phenomenon of tyramine tachyphylaxis are reinterpreted in terms of carrier-mediated exchange processes. Extracellular tyramine would exchange with intraterminal noradrenaline and, upon repeated tyramine administration, with a mixture of noradrenaline and tyramine progressively more enriched in the pharmacologically inactive amine.

Adrenergic Fibers↗

Tyramine pressor sensitivity in healthy subjects during combined treatment with moclobemide and selegiline.

OBJECTIVE: The objectives of this double-blind study were to assess the tolerability and i.v. tyramine pressor response during combined treatment with moclobemide and selegiline. SUBJECTS: Two parallel groups of 12 healthy male and female subjects were treated with 200 mg moclobemide or 5 mg selegiline b.d. for 14 days. On Day 7, selegiline or moclobemide was added to the other treatment. IV tyramine pressor tests were conducted at baseline and at steady state during mono- and combined treatment. RESULTS: Treatment with moclobemide and selegiline alone was well tolerated, whereas combined treatment led to a slight increase in adverse events. Tyramine pressor sensitivity during moclobemide, selegiline and moclobemide + selegiline treatment was enhanced, on average, by 2.4-, 1.3- and 8.4-times, respectively. CONCLUSION: Although combined treatment with moclobemide and selegiline was well tolerated, the supra-additive potentiation of the tyramine pressor effects means that dietary restriction of tyramine intake will be necessary during such combination therapy.

Adrenergic Agents↗

Differences in the metabolic fate of noradrenaline released by electrical stimulation or by tyramine.

Strips of canine saphenous vein were loaded with 3H-noradrenaline (1.4 micrometer) and perifused with Krebs solution and either subjected to field stimulation or exposed to tyramine 40 micrometer. 3H, noradrenaline and its metabolites were determined in the perifusion fluid. Stimulation caused an increase predominantly in noradrenaline, followed by DOPEG, whereas tyramine release DOPEG in larger amounts than noradrenaline. Tyramine had more sustained effects than stimulation. Cocaine (1.6 micrometer) drastically reduced DOPEG efflux due to stimulation, but had no effects on the pattern of release by tyramine. It is concluded that tyramine releases noradrenaline which is deaminated before it reaches the synaptic gap, whereas after stimulation deamination of the transmitter occurs after re-uptake.

Animals↗

Moclobemide, a new reversible MAO inhibitor--interaction with tyramine and tricyclic antidepressants in healthy volunteers and depressive patients.

Moclobemide is a new, short-acting, reversible MAOI, preferentially affecting type A MAO. We have studied the interaction of moclobemide with tyramine and tricyclic antidepressants in healthy volunteers and depressive patients. Neither tyramine capsules (50 mg) nor cheese and wine meals (65 mg tyramine) produced a significant change in blood pressure and heart rate after single or repeated doses of moclobemide in volunteers. In contrast, after 1 weeks' treatment with tranylcypromine pressure response to cheese and wine meals was severe. Blood pressure sensitivity to IV tyramine was slightly increased (1.5-2 fold; P less than 0.05 versus predrug) during moclobemide treatment in patients and volunteers. This increase was neutralised by concomitant administration of desipramine in volunteers. Amitriptyline was well tolerated when given to patients after or together with moclobemide. In conclusion, moclobemide appears relatively safe with respect to tyramine sensitivity and interaction with tricyclics.

Adult↗

Responses of rabbit aorta to tyramine in relation to the surface of drug entry.

The contraction elicited by submaximally effective concentrations of tyramine in the rabbit aortic strip occurs after a shorter latency and increases at a higher initial velocity to a greater steady-state level when drug entry is limited to the adventitial than when it is limited to the intimal surface. The reverse was true for noradrenaline. Both amines elicited equal maximum responses with independence of the surface of entry into the vascular wall. Differences between steady-state contractions disappear when the intramural disposition pathways of tyramine are blocked pharmacologically by a combination of pargyline and semicarbazide. Incubation with cocaine and pretreatment with reserpine resulted in a reversal of the surface of entry related differences between steady-state contractions to tyramine related to differences of the surface of entry. This reflected the unmasking of the direct component of the action of tyramine. Thus, the technique of limited drug entry into the vascular wall together with blockade of disposition pathways allows us to characterize the pre- and postsynaptic components of the action of tyramine.

Animals↗

The concentration of p- and m-tyramine in the rat mesolimbic system: its regional distribution and effect of monoamine oxidase inhibition.

The concentrations of p-tyramine and m-tyramine have been determined in 6 brain areas from the mesolimbic system by a specific and sensitive mass spectrometric technique. p- and m-Tyramine are unevenly distributed amongst these nuclei. The highest concentrations of p-tyramine were measured in the olfactory tubercle followed by the nucleus accumbens and septal nuclei while for m-tyramine the concentrations decreased in the following order: olfactory tubercle, nucleus accumbens, amygdala, septal nuclei and nucleus tractus diagonalis.

Animals↗

Synthesis and characterization of tyramine-derivatized (1-->4)-linked alpha-D-oligogalacturonides.

The reducing end C-1 of (1-->4)-linked alpha-D-oligogalacturonides (oligogalacturonides), with degrees of polymerization (dp) 3 and 13, was coupled to tyramine via reductive amination in the presence of sodium cyanoborohydride. These derivatives were purified in milligram quantities and structurally characterized. Tyramination of trigalacturonic acid proceeded to completion. The yield of apparently homogeneous tyraminated trigalacturonic acid after desalting was 35%. Derivatization of tridecagalacturonide with tyramine was incomplete. The tyraminated tridecagalacturonide was purified to apparent homogeneity using semipreparative high-performance anion-exchange chromatography (HPAEC) with a yield of 30%. The structures of the derivatized oligogalacturonides were established by 1H NMR spectroscopy and electrospray mass spectrometry.

Carbohydrate Conformation↗

Methylphenidate-like stimulants in vitro release [3H]tyramines but not [14C]dopamine.

The effects of methylphenidate, cocaine, nomifensine and amfonelic acid on the simultaneous uptake and release of [14C]dopamine and [3H]p-tyramine or [3H]m-tyramine were examined in rat striatal slices. While the uptake of each amine was inhibited equally by each drug, only [3H]tyramines were released. The d-amphetamine-induced release of [14C]dopamine and [3H]p-tyramine was antagonized by these drugs. These findings suggest that the tyramines can be transported independently from dopamine.

Animals↗

The role of catecholamines, 5-hydroxytryptamine and m-tyramine in the behavioural effects of m-tyrosine in the rat.

The behavioural and neurochemical effects of m-tyrosine and a monoamine oxidase inhibitor in the rat are described. Systemic injections of m-tyrosine (50-150 mg/kg) 30 min after the administration of pargyline (75 mg/kg) produced intense behavioural stimulation which was not evident after injection of either compound alone. The behavioural syndrome induced consisted of forepaw padding, headweaving, backward walking, splayed hindlimbs, wet dog shakes, hyperactivity and hyperreactivity. m-Tyrosine alone or in combination with pargyline caused a significant increase in brain m-tyramine levels and a significant depletion of catecholamines. 5-Hydroxytryptamine (5-HT) levels, however, were unaffected by the administration of m-tyrosine at most of the times studied. The increase in levels of m-tyramine produced by m-tyrosine plus pargyline was 10 times greater than that produced by m-tyrosine alone, whereas the depletion in levels of the more abundant amines was not potentiated by pargyline pretreatment. The biochemical results suggest that an increased formation of m-tyramine may have been responsible for the observed behavioural stimulation and that a threshold level of m-tyramine in the brain appears to be necessary to produce an overt behavioural effect. The behavioural components observed indicate that m-tyramine could act by releasing newly synthesized catecholamines or 5-HT. Alternatively, m-tyrosine may function as a direct agonist at 5-HT or dopamine receptors, although an action on a specific tyraminergic receptor cannot be ruled out at present.

Animals↗

Displacement of in vivo binding of [3H]brofaromine to rat intestinal monoamine oxidase A by orally administered tyramine.

The reversibility of the interaction of inhibitors with monoamine oxidase (MAO) is thought to provide a safety valve with respect to tyramine potentiation. We sought experimental evidence for this concept by studying the binding of orally administered [3H]brofaromine to the A-form of MAO in the rat ileum. Specific binding, defined by pretreatment with 10 mg/kg clorgyline p.o., amounted to 70-90% of total binding between 30 min and 6 h after administration of the radioligand. Brofaromine and clorgyline dose dependently displaced [3H]brofaromine with ED50 values of about 0.2 mg/kg when administered orally after the radioligand; so did orally administered tyramine in doses relevant for tyramine potentiation in the rat. It was also found that tyramine was relatively more effective in partially MAO-inhibited rats. The data suggest that the concept of reversibility functioning as a safety valve with respect to the potentially hazardous effects of tyramine ingestion is realistic.

Administration, Oral↗

Tyrosine's pressor effect in hypotensive rats is not mediated by tyramine.

Tyrosine, the amino acid precursor of catecholamines, increases blood pressure (BP) in hemorrhaged hypotensive rats. Since tyrosine may also be decarboxylated to form tyramine, which releases norepinephrine from sympathetic terminals, we tested the hypothesis that tyramine formation might mediate tyrosine's ability to increase BP. Three lines of evidence indicate that tyrosine does not act via this mechanism: pretreatment with reserpine blocked tyramine's but not tyrosine's pressor activity; pretreatment with hexamethonium left tyramine's effect intact but blocked the pressor response to tyrosine; and plasma tyramine did not increase after an hemodynamically-active dose of tyrosine (100 mg/kg).

Animals↗

The effect of age on release of norepinephrine by tyramine from rat heart.

The effect of age on the capacity of tyramine to promote the release of norepinephrine (NE) at the cardiac adrenergic neuroeffector junction was investigated in isolated hearts of rats, 6, 12 and 24 months of age. Hearts were perfused by the method of Langendorff and tyramine was administered in increasing doses as a bolus injection. There was no age-related difference in the effect of tyramine on NE release nor on the relationship between the amount of NE released and chronotropic response induced by the released NE. These findings indicate that there is no difference in the effectiveness of tyramine in promoting the release of NE from the tyramine-sensitive pool as a function of age.

Aging↗

Acute cytogenetic effects of tyramine, MTCAs, NaCl and soy sauce on rat bone marrow cells in vivo.

The acute cytogenetic effects of tyramine and MTCAs, precursors of the mutagen present in soy sauce, were studied with the in vivo chromosome aberration test in rat bone marrow cells. The chemicals were administered intraperitoneally. Statistically significant positive results were obtained with tyramine at a dose of 5 mmole/kg (686 mg/kg) body weight and with MTCAs at doses over 0.50 mmole/kg (115 mg/kg) body weight, respectively. Chromosome aberrations (CA) induced by L-proline co-administered with either tyramine or MTCAs were significantly lower than those induced by each chemical alone. These data suggest that L-proline, after endogenous nitrosation, became nitrosoproline and suppressed CA, and that, as a result of in vivo nitrosation of tyramine and MTCAs, they became mutagenic nitroso compounds showing positive results. Statistically significant positive results were obtained by administration of 40 mmole NaCl/kg body weight (2338 mg/kg). The cocarcinogenic role of NaCl with tyramine was suggested because soy sauce contains about 18% NaCl.

Animals↗

Contrasting monoamine oxidase activity and tyramine induced catecholamine release in PC12 and chromaffin cells.

PC12 (phaeochromocytoma derived) cells possess the catecholamine synthesizing enzymes as well as the ability to store and release the catecholamines in response to K+. However, their monoamine oxidase activity and catecholamine release in response to tyramine has not been examined previously. PC12 cells have monoamine oxidase activity which oxidizes type A (noradrenaline and serotonin) and type A-B (dopamine, tyramine and kynuramine) substrates, and is selectively inhibited by clorgyline (IC50 approximately 10(-6) M). In contrast, PC12 cell monoamine oxidase hardly oxidizes phenylethylamine a type B substrate, and is relatively insensitive to inhibition by the selective monoamine oxidase type B inhibitor, 1-deprenyl (IC50 approximately 10(-6) M). By the above criteria it is apparent that the monoamine oxidase in PC12 is solely type A. The kinetics of the oxidase are similar to those of monoamine oxidase type A reported in other tissues including the adrenergic neuron, having apparent Km values of 400, 280, 170 and 227 microM for noradrenaline, dopamine, serotonin and tyramine. The apparent Km value for phenylethylamine is 235 microM. On the other hand, isolated chromaffin cells have the B form of monoamine oxidase with high affinity (Km approximately 25 microM) for phenylethylamine and low affinities for noradrenaline (Km approximately 1100 microM) and adrenaline (Km approximately 1700 microM). This enzyme form is selectively inactivated by the monoamine oxidase type B inhibitor, 1-deprenyl. In similar fashion to peripheral adrenergic neurons, PC12 cells share the capacity to express a tyramine releasable pool of catecholamines, a property entirely lacking in mature cultured chromaffin cells, even though the latter cells are capable of taking up tyramine by a cocaine sensitive process.(ABSTRACT TRUNCATED AT 250 WORDS)

Adrenal Gland Neoplasms↗

Tyramine functions as a toxin in honey bee larvae during Varroa-transmitted infection by Melissococcus pluton.

From wounds of honey bee pupae, caused by the mite Varroa destructor, coccoid bacteria were isolated and identified as Melissococcus pluton. The bacterial isolate was grown anaerobically in sorbitol medium to produce a toxic compound that was purified on XAD columns, gelfiltration and preparative HPLC. The toxic agent was identified by GC-MS and FTICR-MS as tyramine. The toxicity of the isolated tyramine was tested by a novel mobility test using the protozoon Stylonychia lemnae. A concentration of 0.2 mg/ml led to immediate inhibition of mobility. In addition the toxicity was studied on honey bee larvae by feeding tyramine/water mixtures added to the larval jelly. The lethal dosis of tyramine on 4-5 days old bee larvae was determined as 0.3 mg/larvae when added as a volume of 20 microl to the larval food in brood cells. Several other biogenic amines, such as phenylethylamine, histamine, spermine, cadaverine, putrescine and trimethylamine, were tested as their hydrochloric salts for comparison and were found to be inhibitory in the Stylonychia mobility test at similar concentrations. A quantitative hemolysis test with human red blood cells revealed that tyramine and histamine showed the highest membranolytic activity, followed by the phenylethylamine, trimethylamine and spermine, while the linear diamines, cadaverine and putrescine, showed a significantly lower hemolysis when calculated on a molar amine basis. The results indicate that tyramine which is a characteristic amine produced by M. pluton in culture, is the causative agent of the observed toxic symptoms in bee larvae. Thus this disease, known as European foulbrood, is possibly an infection transmitted by the Varroa destructor mite.

Animals↗

Octopamine and tyramine influence the behavioral profile of locomotor activity in the honey bee (Apis mellifera).

The biogenic amines octopamine and tyramine are believed to play a number of important roles in the behavior of invertebrates including the regulation of motor function. To investigate the role of octopamine and tyramine in locomotor behavior in honey bees, subjects were injected with a range of concentrations of octopamine, tyramine, mianserin or yohimbine. Continuous observation of freely moving worker bees was used to examine the effects of these treatments on the amount of time honey bees spent engaged in different locomotor behaviors such as walking, grooming, fanning and flying. All treatments produced significant shifts in behavior. Decreases in time spent walking and increases in grooming or stopped behavior were observed for every drug. However, the pattern of the shift depended on drug, time after injection and concentration. Flying behavior was differentially affected with increases in flying seen in octopamine treated bees, whereas those receiving tyramine showed a decrease in flying. Taken together, these data provide evidence that octopamine and tyramine modulate motor function in the honey bee perhaps via interaction with central pattern generators or through effects on sensory perception.

Animals↗

A multifactorial design for studying factors influencing growth and tyramine production of the lactic acid bacteria Lactobacillus brevis CECT 4669 and Enterococcus faecium BIFI-58.

A central composite face design was used to study growth and tyramine production of two strains of lactic acid bacteria, Lactobacillus brevis CECT 4669 and Enterococcus faecium BIFI-58. The effects of five physicochemical factors (incubation temperature and time, environmental pH, added tyrosine concentration, and pyridoxal-5-phosphate (PLP) supplementation) on cell growth and tyramine production were analyzed under aerobic and anaerobic conditions. The parameters of the quadratic model for each response variable were estimated by multiple linear regression (MLR), and statistical analysis of the results led to the elucidation of mathematical models capable of predicting the behavior of the responses as a function of the main variables involved in the process. Incubation time was found to be the most important variable influencing growth in L. brevis, while pH showed the highest contribution in E. faecium. The production of tyramine was dependent on the added tyrosine concentration and incubation time. The proposed MLR model predicted the optimum conditions that gave maximum responses for L. brevis and E. faecium growth and tyramine production. In both strains, this model predicted that the anaerobic condition at acidic pH (4.4) in the presence of a high tyrosine concentration favors tyramine production.

Culture Media↗