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Effects of amphetamine derivatives on brain dopamine and noradrenaline.

1. Intracisternally administered metaraminol, alpha-methyl-octopamine, alpha-methyl-m-tyramine, and alpha-methyl tyramine were found to lower brain noradrenaline without having an effect on brain dopamine.2. Amphetamine, mephentermine, and norephedrine had no effect on brain catecholamines after intracisternal injection.3. There was no reduction in brain dopamine content after intracisternal injection of alpha-methyl-m-tyramine, yet the resulting brain concentration of alpha-methyl-m-tyramine was several times higher than after intraperitoneal injection of alpha-methyl-m-tyrosine, which decreased brain dopamine.4. The decreased synthesis of labelled catecholamines from (14)C-tyrosine after alpha-methyl-m-tyrosine suggested that this compound inhibits tyrosine hydroxylase in addition to its action of displacing brain amines.

Amphetamine↗

Sympathomimetic effects of pancuronium bromide on the cardiovascular system of the pithed rat: a comparison with the effects of drugs blocking the neuronal uptake of noradrenaline.

1. The effects of pancuronium bromide on the cardiovascular system of the pithed rat were examined. Pancuronium had two effects, a short-lasting cardiovascular stimulation following injection and a longer-lasting potentiation of responses to sympathetic nerve stimulation. 2 The initial effect of pancuronium was compared with that of tyramine. The cardioaccelerator but not the pressor responses to both pancuronium and tyramine were significantly reduced following sympathectomy with 6-hydroxydopamine (6-OHDA). 3 The action of pancuronium in potentiating sympathetic nerve responses was compared with that of known blockers of the neuronal uptake of noradrenaline (NA). Pancuronium (1 mg/kg) and cocaine (0.5 mg/kg) potentiated cardioaccelerator and pressor responses to sympathetic stimulation. These effects of pancuronium could be obtained following adrenalectomy and during neuromuscular blockade with gallamine. Pancuronium and uptake blockers potentiated the cardioaccelerator response to NA, reduced the response to tyramine, but did not affect the response to isoprenaline. Pancuronium and uptake blockers potentiated the pressor response to NA, but did not affect the response to tyramine or clonidine. 4 Following sympathectomy with 6-OHDA, pancuronium failed to potentiate cardioaccelerator and pressor responses to NA. 5 These results are discussed in relation to two main cardiovascular effects of pancuronium; an indirect sympathomimetic action and blockade of the neuronal uptake of NA.

Adrenalectomy↗

Comparative lipophilicities of substrates of monoamine oxidase.

Oil/water partition coefficients of various substrates of monoamine oxidase (MAO) and kinetic parameters of MAO-A and -B of rat liver at two pH values, pH 7 and pH 9, were investigated. Octanol, heptane or benzene were chosen for the oil phases. The deamination of the biogenic amines 5-hydroxytryptamine (5-HT), tyramine, 2-phenethylamine (PEA) and benzylamine was studied at pH 7 and pH 9. Results indicated all four substrates were very hydrophilic, and the oil/water partition coefficients of benzylamine and PEA were higher than those of 5-HT and tyramine. The changes in Km and Vmax values at pH 7 and pH 9 indicated that the affinities of MAO-A towards 5-HT and tyramine slightly increased at pH 9 and those of MAO-B towards tyramine and benzylamine also increased at pH 9, while uncharged amines at pH 9 amounted to about a hundred times of those at pH 7. It is concluded that the mitochondrial MAO bound to the membrane may metabolize charged molecules as well as uncharged counterparts.

Animals↗

Aromatic amine dehydrogenase, a second tryptophan tryptophylquinone enzyme.

Aromatic amine dehydrogenase (AADH) catalyzes the oxidative deamination of aromatic amines including tyramine and dopamine. AADH is structurally similar to methylamine dehydrogenase (MADH) and possesses the same tryptophan tryptophylquinone (TTQ) prosthetic group. AADH exhibits an alpha 2 beta 2 structure with subunit molecular weights of 39,000 and 18,000 and with a quinone covalently attached to each beta subunit. Neither subunit cross-reacted immunologically with antibodies to the corresponding subunits of MADH, and the N-terminal amino acid sequence of the beta subunit of AADH exhibited no homology with the highly conserved beta subunits of MADH. The absorption spectra for the oxidized, semiquinone, and reduced forms of AADH have been characterized, and extinction coefficients for the absorption maxima of each redox form have been determined. These spectra are very similar to those for MADH, indicating the likelihood of a TTQ cofactor. This was verified by the near identity of the vibrational frequencies and intensities in the resonance Raman spectra for the oxidized forms of AADH and MADH. A stable semiquinone of AADH could be observed during a reductive titration with dithionite, whereas titration with tyramine proceeded directly from the oxidized to the reduced form. AADH was very stable against denaturation by heat and exposure to guanidine. The individual subunits could be separated by gel filtration after incubation in guanidine hydrochloride, and partial reconstitution of activity was observed on recombination of the subunits. Steady-state kinetic analysis of AADH yielded a Vmax of 17 mumol/min/mg and a Km for tyramine of 5.4 microM. Substrate inhibition by tyramine was observed. AADH was irreversibly inhibited by hydrazine, phenylhydrazine, hydroxylamine, semicarbazide, and aminoguanidine. Isonicotinic acid hydrazide (isoniazid) and isonicotinic acid 2-isopropyl hydrazide (iproniazid) were reversible noncompetitive inhibitors of AADH and exhibited K(i) values of 8 and 186 microM, respectively. The similarities and differences between AADH and other amine oxidizing enzymes are also discussed.

Alcaligenes↗

The effects of certain drugs on the uptake and release of [3H]noradrenaline in rat whole brain homogenates.

Twelve drugs were studied with respect to their effects on inhbition of neuronal uptake of [3H]noradrenaline ([3H]NA) and on release of this amine from presynaptic nerve terminals. An in vitro method, using a crude synaptosomal homogenate prepared from rat whole brain, was employed. All drugs tested were found to produce some release of [3H]NA although tyramine was by far the most potent drug in this respect; tripelennamine and cocaine were observed to produce the least release. Studies of inhibition of NA uptake again demonstrated tyramine to be the most potent of the 12 drugs although in this case it did not differ significantly from cocaine and tripelennaine. The remaining compounds also showed decreased accumulation of [3H]NA and all 12 drugs produced uptake inhibition at a lower dose than that required for release of the amine. A correlation between releasing potency and lipophilicity of the compounds indicated that tyramine seemed to be acting in a different manner from the remaining compounds. A correlation between inhibitory potency and lipophilicity could be demonstrated for only six of the drugs, with tyramine, tripelennamine and cocaine showing the greatest deviation from this relationship.

Animals↗

Prejunctional beta 1-adrenoceptors inhibit cholinergic transmission in canine bronchi.

The aim of the present study was to determine in canine bronchi the effects produced by norepinephrine (released from adrenergic nerve terminals) on cholinergic neurotransmission. Electrical stimulation of canine bronchi activates cholinergic and adrenergic nerve fibers. The adrenergic neuronal blocker, bretylium tosylate, inhibited the increase in [3H]norepinephrine overflow evoked by electrical stimulation but did not prevent that caused by the indirect sympathomimetic tyramine. During blockade of the exocytotic release of norepinephrine with bretylium, the pharmacological displacement of the sympathetic neurotransmitter by tyramine significantly decreased the contractions evoked by electrical stimulation but did not affect contractions caused by exogenous acetylcholine. Metoprolol, a beta 1-adrenergic antagonist, abolished and propranolol significantly reduced the effect of tyramine during electrical stimulation. alpha 2-Adrenergic blockade, beta 2-adrenergic blockade, or removal of the epithelium did not significantly affect the response to tyramine. These results suggest that norepinephrine when released from sympathetic nerve endings can activate prejunctional inhibitory beta 1-adrenoceptors to depress cholinergic neurotransmission in the bronchial wall.

Animals↗

Diarrhea in streptozocin-treated rats. Loss of adrenergic regulation of intestinal fluid and electrolyte transport.

Diarrhea was noted in rats with streptozocin-induced chronic diabetes. We have investigated the possibility that this diarrhea is a consequence of altered neuronal control of water and electrolyte absorption in the intestinal epithelium. In particular, we examined noradrenergic control because alpha-2-adrenergic agonists are known to stimulate intestinal fluid absorption. When compared with nondiabetic littermates, chronically diabetic rats exhibited significant impairment of fluid absorption by the ileum and colon, but not the jejunum. This impairment of intestinal fluid absorption was not found in either insulin-treated or untreated acutely diabetic (7 d) animals. Mucosal histology appeared normal in all of the above groups. Mucosal norepinephrine stores in the jejunum and ileum of chronically diabetic rats were estimated in vitro by the short-circuit current (Isc) response to tyramine, an agent that effectively releases stored norepinephrine. Pargyline was added to inhibit enzymatic destruction of the added tyramine. In chronically diabetic rats, the Isc response to tyramine was significantly decreased in ileum, but not in jejunum. However, when these responses were expressed as a fraction of the maximal Isc tissue response to exogenously added epinephrine, significant decreases were noted in both ileum and jejunum. In tissues from acutely diabetic rats, Isc responses to tyramine and epinephrine were no different from controls. When sympathetic denervation was produced in nondiabetic rats by treatment with 6-OH-dopamine, the pattern of impaired fluid absorption that developed was the same as that observed in chronically diabetic rats. We conclude that impaired intestinal mucosal absorption of fluid and electrolytes slowly develops in rats made diabetic with streptozocin and that this absorptive impairment is due to a loss of normally present noradrenergic innervation of enterocytes.

Animals↗

Enzymatic sulfation of polyphenols related to tannins by arylsulfotransferase.

This report discusses a novel type of arylsulfotransferase (AST) which was derived from human intestinal bacterium sulfated polyphenolic compounds when p-nitrophenyl sulfate (PNS) was taken as a donor substrate. (+)-Catechin, (+/-)-catechin, (-)-epicatechin and (-)-epicatechin gallate were better substrates than tyramine. (-)-Epigallocatechin and (-)-epigallocatechin gallate were slightly worse substrates than tyramine. Although gallic acid was a bad substrate, alkyl gallate esters were better substrates than tyramine. The degree of acceptor specificity increased in proportion to the length of the alkyl group up to the carbon number of five. Pedunculagin, geraniin and corilagin were less effective than tyramine. Rosmarinic acid and penta-O-galloyl-beta-D-glucose were similarly well sulfated. Two products, 4'-monosulfate and 4',5-disulfate of (+)-catechin, were detected at a two-fold molar excess of PNS over (+)-catechin. When (+)-catechin-4'-monosulfate as an acceptor was enzymatically sulfated with PNS as a donor, only the 4',5-disulfate was produced. Thus, arylsulfotransferase was useful for the convenient preparation of sulfate esters of polyphenols at their specific hydroxyl groups.

Arylsulfotransferase↗

Pharmacological features of vascular responses of isolated dog and monkey lingual arteries to vasoactive substances.

Using a perfusion technique of isolated vessels, vasoconstrictor responses to alpha-adrenoceptor agonists (norepinephrine [NE], phenylephrine [PE], clonidine, xylazine and tyramine) and KCl were investigated in isolated, perfused dog and monkey lingual arteries. A stainless steel cannula was inserted into the lingual artery segment and perfused with Krebs-Henseleit solution at a constant flow rate. In dog lingual arteries, the agonists induced vasoconstrictions with the following order of potency: NE greater than PE greater than tyramine much greater than clonidine greater than xylazine greater than KCl. In monkey preparations, the order was NE greater than PE much greater than clonidine greater than or equal to tyramine greater than xylazine greater than KCl. In both preparations, NE- and PE-induced constrictions were blocked by bunazosin (an alpha-1 adrenoceptor antagonist), but not influenced by midaglizole (a potent alpha-2 antagonist). Diltiazem (a Ca entry blocker) significantly attenuated NE-induced vasoconstrictions in dog lingual arteries, but did not significantly influence these in monkey preparations. These results suggest that: [1] these arteries contain mostly alpha-1 but scarcely any alpha-2 adrenoceptors; [2] in dog preparations, tyramine induced a marked vasoconstriction which may contribute to investigation on the mechanisms of catecholamine releases from sympathetic nerve terminals; and [3] different blocking effects of diltiazem may indicate that extracellular Ca++ influx may have varying degrees of importance in alpha-1 adrenoreceptor-mediated constrictions in different species, although participation of an intracellular mechanism might not be ruled out.

Adrenergic alpha-Agonists↗

The monoamine regulon including syntheses of arylsulfatase and monoamine oxidase in bacteria.

Bacterial cells respond to monoamine compounds, such as tyramine, dopamine, octopamine, or norepinephrine, and induce the syntheses of tyramine oxidase encoded by tynA and monoamine oxidase encoded by maoA. These monoamine compounds also derepress the synthesis of atsA-specified arylsulfatase that is repressed by sulfur compounds. These complex mechanisms of regulons regulated by monoamine and sulfur compounds has been analyzed by cloning and characterization of genes that are involved in the repression and derepression of the synthesis of arylsulfatase. The atsA gene forms an operon with the atsB gene, which encodes an activator of the expression of atsA. The negative regulator gene for arylsulfatase was found to code for dihydrofolate reductase (folA). The maoA gene forms an operon with the maoC gene, which has similarity to a dehydrogenase involved in the tyramine metabolism. The moaF gene encoding a 30-kDa protein, which is induced by tyramine, also forms an operon with the moaE gene. Finally, the moaR gene, which is induced by monoamine, was found to play a central role in the positive regulation of the expression of the monoamine regulon (moa) including the atsBA, maoCA, moaEF, and tyn operons. The moaR expression is subject to autogenous regulation and to cAMP-CRP control. The MoaR protein has a helix-turn-helix motif in its C terminus. Thus, the MoaR protein probably regulates the operons by binding to the regulatory region of the moa regulon.

Arylsulfatases↗

Monoamine oxidase activities in catfish (Parasilurus asotus) tissues.

The substrate- and inhibitor-related characteristics of monoamine oxidase (MAO) were studied for catfish brain and liver. The kinetic constants for MAO in both tissues were determined using 5-hydroxytryptamine (5-HT), tyramine and beta-phenylethylamine (PEA) as substrates. For both tissues, the Vmax values were highest with 5-HT and lowest with PEA. The Km value for the brain was highest with 5-HT, followed by tyramine and PEA; but for the liver its value was highest with PEA, followed by 5-HT and tyramine, although all values were in the same order of magnitude. The inhibition of MAO by clorgyline and deprenyl by use of 5-HT, tyramine and PEA as substrates showed that the MAO-A inhibitor clorgyline was more effective than the MAO-B inhibitor deprenyl for both catfish tissues; a single form was present since inhibition by clorgyline or deprenyl with 1000 microM PEA showed single phase sigmoid curves. It is concluded that catfish brain and liver contain a single form of MAO, relatively similar to mammalian MAO-A.

Animals↗

Growth of Carnobacterium divergens V41 and production of biogenic amines and divercin V41 in sterile cold-smoked salmon extract at varying temperatures, NaCl levels, and glucose concentrations.

A complete factorial design 2(3) was used to study some aspects of Carnobacterium divergens V41 metabolism (growth, biogenic amine production, and divercin V41 production) in sterile cold-smoked salmon extract (SSE) at varying temperatures (3 to 9 degrees C), NaCl levels (2.5 to 6.5%), and glucose concentrations (2 to 6 g liter(-1)). The results showed that temperature and NaCl content were the most influential factors on growth parameters in SSE. Predictive models are suggested for the assessment of C. divergens lag time (t(lag)) and maximum specific growth rate (micro(max)) Among the biogenic amines studied, only tyramine was found to be produced by C. divergens in SSE. Furthermore, we showed that temperature, NaCl, and glucose variations did not greatly affect tyramine and divercin V41 production by the bacteria under the experimental conditions used. Indeed, divercin V41, a bacteriocin from C. divergens V41 that is highly active against some Listeria strains, was produced in SSE even under harsh culture conditions. Similarly, tyramine production in SSE was delayed at 3 degrees C but reached 35 microg ml(-1) in all experiments after 27 days of storage. However, this final tyramine concentration in SSE is low compared with the threshold values of 100 to 800 microg g(-1) reported as the potentially toxic dose in foods. Thus, we have found that C. divergens V41 is a promising strain for the biopreservation of refrigerated cold-smoked salmon.

Animals↗

Substrates of semicarbazide-sensitive amine oxidase co-operate with vanadate to stimulate tyrosine phosphorylation of insulin-receptor-substrate proteins, phosphoinositide 3-kinase activity and GLUT4 translocation in adipose cells.

It has been shown that the combination of benzylamine or tyramine and low concentrations of vanadate markedly stimulates glucose transport in rat adipocytes by a mechanism that requires semicarbazide-sensitive amine oxidase (SSAO) activity and H(2)O(2) formation. Here we have further analysed the insulin-like effects of the combination of SSAO substrates and vanadate and we have studied the signal-transduction pathway activated in rat adipocytes. We found that several SSAO substrates (benzylamine, tyramine, methylamine, n-decylamine, histamine, tryptamine or beta-phenylethylamine), in combination with low concentrations of vanadate, stimulate glucose transport in isolated rat adipocytes. Furthermore, SSAO substrates together with vanadate stimulated the recruitment of GLUT4 to the cell surface in isolated rat adipocytes. Benzylamine plus vanadate also stimulated glucose transport and GLUT4 translocation in 3T3-L1 adipocytes. Benzylamine or tyramine in combination with vanadate potently stimulated the tyrosine phosphorylation of both insulin receptor substrate (IRS)-1 and IRS-3. In contrast, benzylamine and vanadate caused only a weak stimulation of insulin receptor kinase. Benzylamine or tyramine in combination with vanadate also stimulated phosphoinositide 3-kinase activity; wortmannin abolished the stimulatory effect of benzylamine and vanadate on glucose transport in adipose cells. Furthermore, the administration of benzylamine and vanadate in vivo caused a rapid lowering of plasma glucose levels, which took place in the absence of alterations in plasma insulin. On the basis of these results we propose that SSAO activity regulates glucose transport in adipocytes. SSAO oxidative activity stimulates glucose transport via the translocation of GLUT4 carriers to the cell surface, resulting from a potent tyrosine phosphorylation of IRS-1 and IRS-3 and phosphoinositide 3-kinase activation. Our results also indicate that substrates of SSAO might regulate glucose disposal in vivo.

3T3 Cells↗

Vascular responses of isolated canine and simian femoral arteries and veins to alpha-adrenoceptor agonists.

Using isolated, perfused canine and simian femoral veins and arteries, vasoconstrictor responses to 6 alpha-adrenoceptor agonists and to potassium chloride were compared. The order of potencies of alpha-adrenoceptor agonists for inducing constriction was in canine arteries: epinephrine greater than norepinephrine = phenylephrine much greater than clonidine much greater than tyramine much greater than xylazine, in simian arteries: epinephrine greater than norepinephrine greater than phenylephrine greater than clonidine much greater than tyramine greater than or equal to xylazine, in canine veins: epinephrine greater than norepinephrine greater than phenylephrine greater than clonidine greater than or equal to xylazine much greater than tyramine, and in simian veins: norepinephrine = epinephrine greater than phenylephrine greater than clonidine greater than xylazine much greater than tyramine. A selective alpha 2-agonist, xylazine, did not induce any significant constrictor response in canine arteries, indicating a lack of alpha 2-adrenoceptors, but it induced significant constriction in 3 other vessels. In simian femoral arteries and veins dose-response curves to each agonist were steeper than in canine vessels and potassium chloride induced much greater vasoconstriction than in canine vessels, indicating high sensitivity to extracellular calcium concentrations in simian vessels. The cannula inserting method would be useful for investigating pharmacological responses of isolated arteries and veins.

Adrenergic alpha-Agonists↗

Constriction of canine prenodal lymphatic vessels following the intra-arterial injection of vasoactive agents and hemorrhage.

In the forelimbs of anesthetized dogs, perfused at constant arterial inflow, we measured the pressure in a prenodal lymphatic vessel before and following arterial hemorrhage to a mean systemic arterial pressure of approximately 55 mmHg. We also made bolus intra-arterial injections of 1 microgram epinephrine and arginine vasopressin or 20 micrograms dopamine, prostaglandin F2 alpha and tyramine. Hemorrhage and all vasoactive substances significantly increased forelimb perfusion pressure and skin small artery pressure. Skin small vein pressure was significantly decreased by hemorrhage or injection of epinephrine, dopamine or tyramine, but was not significantly altered by arginine vasopressin or prostaglandin F2 alpha. Mean systemic arterial pressure was decreased by hemorrhage, increased by arginine vasopressin, tyramine and prostaglandin F2 alpha but remained unchanged following the injection of either epinephrine or dopamine. Lymphatic pressure was significantly increased following hemorrhage or the injection of all vasoactive agents. The increase seen with tyramine was small but consistent and thus statistically significant. These data indicate that the prenodal lymphatic vessels of the canine forelimb actively constrict in response to the neural and/or hormonal consequences of arterial hemorrhage or the introduction of exogenous vasoactive substances into the arterial blood supply to the forelimb. The results of the current study support the possibility that lymphatic function, through activation of lymphatic smooth muscle, is subject to neural and/or hormonal regulation in certain physiological and/or pathophysiological states.

Animals↗

[Multiplicity of monoamine oxidase: inhibition of mitochondrial monoamine oxidase activity by isopropylhydrazide of D,L-serine].

Isopropylhydrazide of D,L-serine (IHS) inhibits by 50% (at 37 degrees for 10 min) deamination of serotonin or beta-phenylethylamine by monoamine oxidases from bovine brain stem mitochondrial membranes at the 2.6 X X 10(-5) M or 9 X 10(-5) M, respectively. In order to inhibit by 50% the deamination of tyramine under the same conditions a considerably lower (2.5 X X 10(-6) M) concentration of IHS is required. Kinetic studies of inhibition of enzymatic deamination of all the three biogenic monoamines by IHS showed that the irreversible blocking of the monoamine oxidase activity is preceeded by formation of dissociating enzyme-inhibitor complexes. Values of the dissociation constants of these complexes measured (at 37 degrees) with serotonin, phenylethylamine or tyramine as substrates for estimation of the residual monoamine oxidase activity are 0.47; 0.13 or 0.023 mM, respectively. Significant differences are also found between thermodynamic and activation parameters characterizing both both steps of interaction between IHS and the monoamine oxidases of mitochondrial membranes in the experiments with serotonin, phenylethylamine or tyramine as substrates. The data obtained suggest the existence of different monoamine oxidases (or their active sites) catalyzing oxidative deamination of serotonin, phenylethylamine or tyramine in the fragments of mitochondrial membranes from bovine brain stem.

Animals↗

Effect of lignocaine on monoamine oxidase activity of brain and liver.

In vivo administration of a single dose (100-150 mg/kg, i.p.) of lignocaine produces no change in MAO activity, while long-term treatment (50 mg/kg/day for 15 and 30 consecutive days, i.p.) produces a slight but appreciable inhibition of MAO activity with tyramine or serotonin but not with benzylamine as substrate in both rat brain and liver mitochondria. Lignocaine (2-20 mM) inhibits (in vitro) both brain and liver mitochondrial MAO activity, using tyramine, serotonin and benzylamine as substrates, in a concentration-dependent manner. Furthermore, lignocaine produces a marked in vitro inhibition of serotonin and tyramine oxidation in MAO-A and not in MAO-B preparation of rat brain. Ackermann-Potter plots of MAO indicate that lignocaine-induced inhibition of MAO activity is reversible in nature. Lineweaver-Burk plots show that lignocaine (2-10 mM) produces a significant increase in Km and decrease in Vmax of MAO for tyramine and serotonin in both brain and liver. Similarly Km and Vmax values are changed using benzylamine as substrate in the presence of relatively higher concentrations of lignocaine (5-20 mM). These results suggest that lignocaine-induced inhibition of mitochondrial membrane-bound MAO activity of both neuronal and non-neuronal tissues is associated with its conformational change.

Animals↗

[Effect of solubilization by methylethylketone of rat liver mitochondrial monoamine oxidase on inhibition by clorgyline and deprenyl of the enzyme activity].

A comparative study of the inhibitory effect of clorgyline and deprenyl on serotonin, beta-phenylethylamine and tyramine deamination by intact mitochondria as well as by solubilized with methylethylketone and partially purified monoamine oxidase (MAO) from rat liver was carried out. The effect of 4-ethylpyridine on this process was investigated. After solubilization of MAO by methylethylketone 7% of mitochondrial activity passes into solution and the rate of deamination of serotonin, tyramine and beta-phenylethylamine by soluble MAO preparation is selectively decreased. The corresponding residual activities are equal to 29, 63, 86 and 92%. The inhibitory effect of clorgyline on serotonin deamination by soluble MAO preparations is considerably lower than that by mitochondrial suspensions at the concentrations of the inhibitor from 1 x 10(-4) to 1 x 10(-7) M, while the inhibitory action of clorgyline on tyramine deamination after MAO solubilization by methylethylketone is increased at 10(-4) and 10(-5) M, but decreased insignificantly at 10(-6) and 10(-7) M. When solubilized MAO preparations are used, 4-ethylpyridine introduced into the sample before or after preincubation of the enzyme with clorgyline (30 min, 23 degrees) eliminates the inhibitory action of the latter on serotonin and tyramine deamination, thus suggesting the reversibility of the inhibitory effect of clorgyline. In similar experiments with mitochondrial suspensions the inhibition by clorgyline of deamination of these amines is irreversible. Similar experiments on mitochondrial suspensions showed that clorgyline irreversibly inhibits the deamination of these amines. The rate of inhibition by deprenyl of beta-phenylethylamine oxidation due to MAO solubilization by methylethylketone is not changed. 4-Ethylpyridine added to the samples before or after preincubation of deprenyl with the enzyme (30 min, 23 degrees) abolishes the inhibiting effect of the former both in soluble MOA and in mitochondrial suspensions. This suggests that under the given experimental conditions the inhibiting effect of deprenyl is reversible. Possible nature of MAO forms A and B is discussed.

Animals↗