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Biomedical subjects

K W Perry

Publications and source records attributed to K W Perry.

At least 55 records · Page 3Linked to original sources

p-Chloroamphetamine formation responsible for long-term depletion of brain serotonin after N-cyclopropyl-p-chloroamphetamine injection in rats.

After the injection of N-cyclopropyl-p-chloroamphetamine (N-cyclopropyl-PCA) into rats, p-chloroamphetamine (PCA) was identified in brain by high performance liquid chromatography with UV detection and was quantitated by that method and by spectrofluorometric analysis involving reaction with fluorescamine. The identity of PCA in brains of rats treated with N-cyclopropyl-PCA was confirmed by mass spectrometry. The peak concentrations of PCA in brain occurred 4 hrs after N-cyclopropyl-PCA injection. Brain concentrations of PCA and of N-cyclopropyl-PCA were measured at 1 or 4 hrs, respectively, after the injection of various doses of PCA or of N-cyclopropyl-PCA into rats. The depletion of brain serotonin and 5-hydroxyindoleacetic acid (5-HIAA) was measured 1 week after injection of those same doses of PCA or N-cyclopropyl-PCA. Comparing peak concentrations of PCA with the degree of depletion of brain serotonin supported the interpretation that PCA formed metabolically accounted for the long-term depletion of brain 5-hydroxyindoles after injection of N-cyclopropyl-PCA in rats.

Amphetamines

Brain anoxia releases striatal dopamine in rats.

Immediately following death resulting from discontinuance of artificial respiration in anesthetized rats, a large increase in electrochemically reactive materials in the extracellular fluid was detected by in vivo voltammetry with an electrode in the striatum. The use of in vivo brain dialysis permitted identification of the reactive material as dopamine. The release of dopamine occurred about 6 minutes after cessation of artificial respiration and death. A similar release of dopamine was found after intrastriatal ouabain administration. A large release of dopamine might result in irreversible tissue damage in certain pathological conditions such as stroke or anoxia.

3,4-Dihydroxyphenylacetic Acid

Noradrenergic innervation of the cerebellar cortex in normal and in Purkinje cell degeneration mutant mice: evidence for long term survival following loss of the two major cerebellar cortical neuronal populations.

Purkinje cell degeneration mutant mice were examined during the course of Purkinje cell death (26 and 35 days old) and at 3, 5, 9 and 12 months of age. Glyoxylic acid fluorescence histochemistry for catecholamines was used to investigate possible alterations or reorganization of the noradrenergic fibers from the coeruleo-cerebellar system in response to the degeneration of two major cell types in the cerebellar cortex, of which one, the Purkinje cell, is reported to be the major target neuron. In control mice, noradrenergic fibers traveled in linear and tortuous profiles through the granule cell layer, formed pericellular arrays alongside Purkinje cell somata, and branched profusely into both radially oriented and longitudinally oriented chains. The density of noradrenergic varicosities diminished in the molecular layer, there was with age. In the mutants, concomitant with the progressive shrinkage of the molecular layer, there was a progressive increase in the density of noradrenergic varicosities. This was most conspicuous at 9 and 12 months of age, at which time the molecular layer has been depleted not only of Purkinje cell dendrites, but also of parallel fibers. Noradrenergic fibers in these zones formed dense parallel bundles of varicose profiles whose density reached 621.3 +/- 122.8% (mean +/- SD, n = 4) at 9-12 months of age, compared with age-matched controls. Neurochemical measurement of norepinephrine content in whole cerebellum of the Purkinje cell degeneration mutants revealed no change compared with age-matched controls. We conclude that noradrenergic innervation persists in the cerebellar cortex despite the death of Purkinje cells and most of the granule cells. Although we found an increased density of varicosities in the molecular layer of mutant mice, progressing with age, we believe that this can be explained on the basis of the resultant geometry of the altered cerebellar cortex. It appears that the health of the environment surrounding the noradrenergic fibers in cerebellar cortex has little influence on their anatomical integrity.

Adrenergic Fibers

1-(1-Naphthyl)piperazine, a central serotonin agonist.

1-(1-Naphthyl)piperazine (1-NP) had high affinity for tritiated serotonin, tritiated LSD (lysergic acid diethylamide) and tritiated spiperone binding sites in rat brain cortex in vitro. 1-NP at doses of 3-30 mg/kg i.p. decreased 5-hydroxyindoleacetic acid (5-HIAA) concentration in whole brain of rats in vivo. The 30 mg/kg dose caused a significant increase in serum corticosterone concentration. At doses of 3-30 mg/kg i.p., 1-NP reduced the accumulation of 5-hydroxytryptophan following decarboxylase inhibition by NSD 1015 in rat hypothalamus and striatum. Reduced serotonin turnover and elevated serum corticosterone concentrations are interpreted as evidence of central serotonin receptor activation by compounds of this structural class. 1-NP has previously been reported to antagonize vascular serotonin receptors, suggesting that it, like 1-(m-trifluoromethylphenyl)piperazine, behaves as an antagonist at peripheral (vascular) serotonin receptors despite being an agonist at central serotonin receptors.

Animals

Measurement of acetylcholine and choline in brain by HPLC with electrochemical detection.

A simple and rapid method for measuring acetylcholine and choline using high performance liquid chromatography (HPLC) with electrochemical detection is presented. Acetylcholine and choline were first separated using reverse-phase chromatography; acetylcholine was then hydrolyzed post-column to choline by acetylcholinesterase. Choline was oxidized enzymatically by choline oxidase to betaine and hydrogen peroxide, and the peroxide was detected electrochemically. Changes in methodology from previous procedures include a different mobile phase, controlled heating of chromatography column and post-column reaction coil, and a different extraction method for quaternary amines. The changes resulted in less inhibition of derivatizing enzymes by mobile phase, narrow and consistent elution of peaks, and a rapid and efficient extraction of quaternary amines. Measurement of acetylcholine and choline in brain tissue was found to be replicable, and the levels agreed with literature values.

Acetylcholine

Pergolide elevation of MHPG sulphate concentration in rat hypothalamus blocked by spiperone and mimicked by other dopamine agonists.

Pergolide increased the concentration of MHPG sulphate (3-methoxy-4-hydroxy-phenylethylene glycol sulphate) in rat hypothalamus, and the increase was prevented by pretreatment with spiperone, a dopamine antagonist. An increase in hypothalamic MHPG sulphate concentration similar to that caused by pergolide was found after injection of quinpirole, a 'partial ergoline' that is a selective D2 agonist not affecting alpha-adrenoceptors, and by (-)-N-propylnorapomorphine, a dopamine agonist not related to the ergolines. Although the increase in MHPG sulphate concentration produced by pergolide had earlier been assumed to result from blockage of alpha-adrenoceptors, the present data indicate that it is an effect produced by dopamine D2 receptor stimulation.

3,4-Dihydroxyphenylacetic Acid

Comparison of spontaneous and retinoic acid stimulated rabbit articular cartilage degradation in vitro.

The in vitro degradation of rabbit articular cartilage explants was evaluated with and without the addition of retinoic acid under various experimental conditions. Retinoic acid at nontoxic concentrations ranging from 1 X 10(-7) to 1 X 10(-5) M significantly increased cartilage degradation. The addition of phenanthroline or cycloheximide, but not pepstatin, significantly inhibited spontaneous and retinoic-acid-stimulated cartilage degradation at pH 7. When the pH was reduced to 5, only pepstatin inhibited spontaneous and retinoic-acid-stimulated cartilage degradation. No chondroitin sulphate release was observed when the temperature was reduced to 4 degrees C. The different inhibitory profiles observed at pH 7 and pH 5 suggest that cartilage degradation at pH 7 is associated with the presence and synthesis of a neutral metalloproteinase.

Animals

Tropolone antagonism of the L-dopa-induced elevation of S-adenosylhomocysteine: S-adenosylmethionine ratio but not depletion of adrenaline in rat hypothalamus.

Tropolone, an inhibitor of catechol O-methyl transferase, largely prevented the increase in SAH : SAMe ratio in rat hypothalamus following L-dopa injection. Tropolone did not prevent but instead enhanced the decrease produced by L-dopa of adrenaline concentration in rat hypothalamus. The results imply that the decrease in hypothalamic adrenaline concentration following L-dopa injection was not caused by the increase in SAH : SAMe ratio.

Animals

Effect of a stereospecific D2-dopamine agonist on acetylcholine concentration in corpus striatum of rat brain.

The enantiomers of LY141865, trans(+/-)-4,4a,5,6,7,8a,9-octahydro-5-propyl-2H-pyrazolo[3,4-g]qu inoline, were compared as dopamine D2 agonists by determining their abilities to elevate acetylcholine concentrations in rat corpus striatum. The levorotatory isomer, LY156258, increased striatal acetylcholine concentration at doses of 0.1-1 mg/kg i.p., whereas the dextrorotatory isomer had no effect even at doses as high as 30 mg/kg. The levorotatory isomer also decreased striatal concentrations of the dopamine metabolites, 3,4-dihydroxyphenylacetic acid and homovanillic acid, but did not significantly alter dopamine or 5-hydroxyindoleacetic acid concentration. The dextrorotatory isomer had no effect on any of these substances alone and did not alter the effects of the levorotatory isomer. The elevation of striatal acetylcholine levels by LY156258 was mimicked by pergolide, a dopamine agonist, and was totally prevented by pretreatment with haloperidol, a dopamine antagonist. The elevation of striatal acetylcholine concentration by LY157258 was maximal at 0.5 hour and declined thereafter, following a time course similar to that of pergolide. Neither LY141865 nor LY156258 shared with peroglide and dopamine the ability to activate striatal adenylate cyclase in vitro, an effect mediated by D1 receptors. LY141865 and LY156258 (but not the dextrorotatory isomer) inhibited the binding of tritiated apomorphine and spiperone to striatal membrane receptors, but were not as potent as pergolide, they also had less effect, or no effect, on the binding of other tritiated ligands (dopamine, WB4101, clonidine, dihydroalprenolol, pyrilamine or quinuclidinyl benzilate) to their membrane receptors. These results indicate that LY156258 stereospecifically activates dopamine D2 receptors and the studies are the first evidence of sterospecificity of dopamine receptors mediating an increase in striatal acetylcholine concentration.

Acetylcholine

Fluoxetine increases long-lasting neostriatal dopamine depletion after administration of d-methamphetamine and d-amphetamine.

Repeated administration of large doses of d-methamphetamine produce long-lasting depletion of brain dopamine (DA) and serotonin (5-HT), as well as persistent decreases in the activity of their respective biosynthetic enzymes, tyrosine hydroxylase (TH) and tryptophan hydroxylase (TPH). The present results indicate that the inhibitor of 5-HT uptake fluoxetine, prevented the long-term depletion of 5-HT produced by large doses of methamphetamine (15 mg/kg X 5, 6 hr apart) in the neostriatum and hippocampus, while simultaneously augmenting the depletion of DA produced by this drug in the neostriatum. Fluoxetine also enhanced the prolonged neostriatal depletion of DA produced by a comparable regimen of d-amphetamine. In these doses (15 mg/kg X 5,6 hr apart), d-amphetamine did not produce long-lasting depletion of 5-HT in either the neostriatum or hippocampus. Larger depletion of DA after the amphetamines had been administered in the fluoxetine pretreated animal were associated with a transient increase in the brain levels of methamphetamine and amphetamine. This suggests that fluoxetine may inhibit the metabolism of amphetamines.

Animals

Dopamine accumulation after dopamine beta-hydroxylase inhibition in rat heart as an index of norepinephrine turnover.

Dopamine concentration in rat heart is normally very low, only a few percent of the concentration of norepinephrine. After treatment of rats with a dopamine beta-hydroxylase inhibitor, 1-cyclohexyl-2-mercapto-imidazole (CHMI), there was a rapid increase in dopamine concentration even before norepinephrine concentration had decreased perceptibility. This accumulation of dopamine was readily measured by liquid chromatography with electrochemical detection. Since the percentage change in dopamine was much greater than the percentage change in norepinephrine, especially at early times, measurement of dopamine accumulation rather than norepinephrine decline was considered as a useful measure of norepinephrine turnover. Drugs that act on noradrenergic receptors and are known to alter norepinephrine turnover were found to alter the rate of dopamine accumulation. Clonidine and guanabenz decreased dopamine accumulation after CHMI, whereas piperoxan (but not prazosin) increased dopamine accumulation after CHMI. Pergolide, a dopamine agonist whose lowering of blood pressure and cardiac rate has been suggested to be due to suppression of neurogenic release or norepinephrine, also decreased dopamine accumulation after CHMI. The results suggest that measuring dopamine accumulation may have advantages over measuring norepinephrine disappearance after dopamine beta-hydroxylase inhibition as an indicator of norepinephrine turnover in heart.

Animals

Depletion of epinephrine in rat hypothalamus by a dopamine agonist, pergolide.

The i.p. injection of pergolide mesylate, a dopamine agonist, at doses of 0.3-0.6 mg/kg led to a decrease in epinephrine concentration in rat hypothalamus. After a 0.6 mg/kg dose of pergolide mesylate, epinephrine concentration in hypothalamus decreased within 2 hr, reached a minimum concentration at about 8 hrs, and then returned toward control values. Norepinephrine N-methyltransferase activity was not decreased after pergolide injection in vivo nor was it inhibited by pergolide added in vitro at concentrations as high as 10(-3) M. Higher i.p. doses of less potent dopamine agonists, apomorphine (10 mg/kg) and lergotrile (3 mg/kg), also decreased epinephrine concentration in hypothalamus. The pergolide-induced decrease in hypothalamic epinephrine concentration was prevented by pretreatment with haloperidol or spiperone, antagonists of dopamine receptors. Activation of dopamine receptors appears to result in a decrease in epinephrine concentration in rat brain, possibly due to enhanced release of epinephrine.

Animals

Dopamine deficiency in the weaver mutant mouse.

The dopamine system in weaver mutant mice (B6CBA-Aw-J/A background) was studied. Dopamine was 27% lower in the olfactory tubercle, 77% lower in the frontal cortex, and 75% lower in the striatum of 6-month-old weaver mice compared to control mice of the same age. Norepinephrine and serotonin were not lower in these brain areas. Tyrosine hydroxylase activity in the striatum was measured with a radiometric assay and was 70% lower in weaver mice. Examination of mice from 11 to 180 days of age revealed that the dopamine system failed to develop in weaver mice. Motor activity in individual animals was assessed using circular photocell activity cages with minimal illumination. Apomorphine and pergolide, direct dopamine agonists, increased activity more in weaver mice than in normal littermates. Amphetamine, which releases endogenous stores of dopamine, was less active in mutant mice. These findings provide suggestive evidence that postsynaptic dopamine receptors in weaver mutants might have become supersensitive as a result of lower levels of dopamine in motor areas of the brain. Anatomical evidence of dopamine system abnormalities was found in weaver mice by examination of serial sections cut from the midbrain of mutant and normal mice. The pars compacta of the substantia nigra in weaver mice appeared hypocellular when compared with the corresponding sections from controls. Fewer large neurons were seen in the affected animals. This study illustrates that weaver mice have specific deficiencies in the dopamine system. The weaver mouse might provide a way of examining the biochemical and behavioral effects of long term dopamine deficiency and a way to examine drugs to treat dopamine-deficient states in vivo.

Animals

Effects of L-dopa on epinephrine concentration in rat brain: possible role of inhibition of norepinephrine N-methyltransferase by S-adenosylhomocysteine.

L-Dopa injected at 200 mg/kg i.p. into rats caused a slight reduction in hypothalamic concentration of epinephrine and completely prevented the accumulation of epinephrine after monoamine oxidase inhibition. The lowering of epinephrine concentration was greater with L-dopa than with D-dopa, was dose-related over a dosage range of 50 to 200 mg/kg of L-dopa and was not prevented by a dopamine receptor antagonist. Hypothalamic norepinephrine N-methyltransferase activity measured in vitro was not altered in rats treated with L-dopa. L-Dopa injection decreased S-adenosylmethionine (SAMe) concentration and increased S-adenosylhomocysteine (SAH) concentration in hypothalamus, probably a result of extensive O-methylation of L-dopa and its metabolites. The decrease in SAMe and epinephrine concentration and the increase in SAH concentration occurred at lower doses of L-dopa in carbidopa-pretreated rats than in control rats. Norepinephrine N-Methyl-transferase activity assayed in vitro was markedly inhibited by SAH; the inhibition was competitive with SAMe as the variable substrate and the Ki for SAH was 1.9 x 10(-5) M. Increasing the SAH/SAMe ratio in in vitro experiments sharply reduced norepinephrine N-methyltransferase activity. The apparent inhibition of hypothalamic epinephrine synthesis in vivo after L-dopa injection is suggested to be a consequence of the increased SAH/SAMe ratio.

Animals