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R L Patrick

Publications and source records attributed to R L Patrick.

At least 37 records · Page 2Linked to original sources

Effects of in vivo amphetamine administration on dopamine synthesis regulation in rat brain striatal synaptosomes.

The stimulation of dopamine synthesis in rat brain striatal synaptosomes produced by the depolarizing agent veratridine was markedly reduced by prior in vivo amphetamine administration. This effect did not appear to be due to an interference with the depolarization process, per se, since veratridine-induced inhibition of tyrosine uptake, a biochemical correlate of depolarization, was unaffected by amphetamine. Antagonism of veratridine-induced synthesis stimulation was not duplicated by in vivo treatment with pargyline, apomorphine, gamma-butyrolactone or haloperidol, suggesting that this effect may be due to a direct cellular action of amphetamine. In contrast to the inhibition of veratridine-induced synthesis stimulation produced by in vivo amphetamine administration, the synthesis stimulation produced by in vitro amphetamine treatment was not reduced. However, this stimulation was altered in character and was no longer calcium-dependent. A similar loss of calcium-dependency for amphetamine-induced synthesis stimulation was also observed after in vivo reserpine treatment. These results suggest that in vivo amphetamine administration can markedly alter the interactions between tyrosine hydroxylase and synaptosomal dopamine pools that may be involved in the regulation of catecholamine formation.

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Amphetamine- and phenylethylamine-induced alterations in dopamine synthesis regulation in rat brain striatal synaptosomes.

Amphetamine and phenylethylamine stimulate dopamine synthesis in rat brain striatal synaptosomes via a calcium- and tyrosine-dependent mechanism. The similarity of this stimulation to that produced by depolarizing concentrations of veratridine, along with the non-additivity of maximally stimulating concentrations of amphetamine and veratridine, suggests that these treatments may all share a common locus of action. Differences in exact modes of action can be seen, however, in the blockade only of the stimulation of veratridine by tetrodotoxin, and by the lack of effect of amphetamine or phenylethylamine on tyrosine uptake. At high concentrations, amphetamine and phenylethylamine lose their ability to stimulate dopamine synthesis and produce an antagonism of veratridine-induced synthesis stimulation.

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Dopamine synthesis in rat brain striatal synaptosomes. I. Correlations between veratridine-induced synthesis stimulation and endogenous dopamine release.

The effects of depolarizing concentrations of veratridine were studied to determine the degree to which dopamine synthesis stimulation was correlated with stimulated endogenous dopamine release in rat brain striatal synaptosomes. Incubations included cocaine and pargyline to prevent dopamine reuptake and metabolism, respectively. Veratridine produced a 44% increase in dopamine release in 10 minutes and a similar increase in synthesis rate. Preincubation with tetrodotoxin prevented the increase in both release and synthesis, while incubation in a calcium-free medium antagonized both responses approximately 50%. Addition of 1 mM ethylene glycol bis(beta-aminoethylether)-N, N'-tetraacetic acid to the calcium-free incubation medium further inhibited the release response, but not the synthesis stimulation. These results indicate that, in general, the degree of synthesis stimulation produced by depolarizing agents such as veratridine can be correlated with their stimulation of dopamine release, suggesting either 1)that transmitter release itself is a signal for synthesis stimulation, possibly by removal of feedback inhibition of tyrosine hydroxylase or 2) that depolarizing agents increase synthesis through a secondary metabolic change that is either caused by, or at least accompanied by, transmitter release.

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Dopamine synthesis in rat brain striatal synaptosomes. II. Dibutyryl cyclic adenosine 3':5'-monophosphoric acid and 6-methyltetrahydropterine-induced synthesis increases without an increase in endogenous dopamine release.

The effects of N6, O2'-dibutyryl cyclic adenosine 3':5'-monophosphoric acid (dibutyryl cyclic AMP), DL-6-methyl-5, 6, 7, 8-tetrahydropterine (6-MPH4) and tyramine on dopamine synthesis and endogenous dopamine release in rat brain striatal synaptosomes have been examined. Dibutyryl cyclic AMP (1 mM) produced a 100% increase in dopamine synthesis but had no effect on endogenous dopamine release. Veratridine (75 muM) did not further stimulate dibutyryl cyclic AMP-treated tissue. 6-MPH4 (0.1 mM) also stimulated synthesis without stimulating dopamine release. The stimulation produced by 6-MPH4 was additive to the stimulations produced by either dibutyryl cyclic AMP or veratridine. Tyramine (10(-4) M) inhibited synthesis, while increasing dopamine release. These data suggest that 1) dopamine-releasing agents may have differential effects upon dopamine synthesis, depending on their mechanism of release, 2) dopamine synthesis can be stimulated independently of endogenous dopamine release and 3) the pteridine cofactor necessary for tyrosine hydroxylation is not normally present at saturating levels.

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Stimulation of rat striatal tyrosine hydroxylase by phospholipids and adenosine-3',5'-monophosphate.

Rat striatal tyrosine hydroxylase is stimulated in vitro by various phospholipids. This stimulation was produced by a 3- to 4-fold increase in affinity for pteridine cofactor. No change in the Km for tyrosine was observed, The sedimentation pattern of tyrosine hydroxylase on linear sucrose gradients showed no indication of enzyme dissociation in the presence of lysolecithin at maximal stimulatory concentration. Crude striatal tyrosine hydroxylase is also activated by a combination of ATP, Mg++, EGTA and cAMP. After removing these agents by Sephadex G-25 chromatography, the activated form of the enzyme can be further stimulated by lysolecithin. These results suggest a possible role for phospholipids in the regulation of striatal dopamine synthesis.

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