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T Brannan

Publications and source records attributed to T Brannan.

At least 19 recordsLinked to original sources

Comparative effects of repeated administration of dopamine agonists on circling behavior in rats.

A paucity of studies are available concerning the comparative therapeutic effectiveness of presently available dopamine agonist agents in the control of Parkinson symptoms. To provide a basis for resolving this issue, we measured the circling response in unilaterally nigrotomized (6-OHDA) rats following the administration of ropinirole, pramipexole, pergolide, bromocriptine, and cabergoline. Cabergoline, and to a lesser extent pergolide, produced the most vigorous and longest lasting circling response. This response was sustained with administration of these agents over a nine day period. Bromocriptine, pramipexole and ropinirole were all less effective. These results suggest that dopamine agonists whose effect is primarily on D1 and D2 receptors are more effective than those whose actions do not include D1 activation.

Animals↗

Effects of repeated administration of l-DOPA and apomorphine on circling behavior and striatal dopamine formation.

We tested the circling response to l-DOPA and apomorphine administration in rats with unilateral 6-hydroxydopamine (6-OHDA) lesions of the substantia nigra. Rats demonstrated a progressively diminished circling response when l-DOPA-carbidopa was repeatedly administered at 120 min intervals. This decreasing response was not present when apomorphine was administered under the same conditions. We also perfused l-DOPA directly into the striatum in vivo of rats with an ipsilateral 6-OHDA nigrotomy at 60 min intervals and monitored striatal dopamine levels with the technique of brain microdialysis. Dopamine formation increased from the first to the fifth trial. This may be secondary to the decrease in uptake sites which accompanies the loss of striatal dopamine nerve terminals. We postulate that the continued presence of dopamine at striatal receptor sites conditions a short-term loss of dopamine receptor sensitivity and a consequent decreased circling response. The observation that desensitization (as measured by decreasing circling) was not present following repeated apomorphine administration may be attributable to its shorter duration of action. We also perfused l-DOPA into the striatum of normal rats and noted a progressive decrease in striatal dopamine levels from the first to the fifth trial. Since this occurred following direct administration of l-DOPA into the striatum, the decrease could not be accounted for by peripheral pharmacodynamics or bioavailability of l-DOPA in the striatum. Since this decrease in dopamine formation was seen only in the normal striatum, its relevance to the diminished behavioral response is unclear.

Animals↗

Sertraline induced parkinsonism. A case report and an in-vivo study of the effect of sertraline on dopamine metabolism.

We report a patient with a parkinsonian syndrome induced by sertraline (Zoloft), an SSRI antidepressant, whose symptoms resolved after the drug was discontinued. This case prompted us to investigate the effect of sertraline on dopamine metabolism in animals. Sertraline (30 mg/kg, i.p.) or placebo (vehicle) was administered to two groups of six normal, anesthetized rats and using cerebral microdyalisis extracellular striatal levels of dopamine, the dopamine metabolites (HVA and DOPAC), as well as the serotonin metabolite 5-HIIA were monitored. In animals pre-treated with sertraline, DOPAC, HVA, and 5-HIAA levels were significantly decreased compared to control animals (p < 0.01). These data indicate that sertraline has an effect on dopamine metabolism, which may alter function in the striatum and induce a parkinsonian syndrome.

1-Naphthylamine↗

Peripheral and central inhibitors of catechol-O-methyl transferase: effects on liver and brain COMT activity and L-DOPA metabolism.

Inhibitors of the enzyme catechol-O-methyl transferase (COMT) may be useful adjuncts to L-DOPA in the treatment of Parkinson's disease as they offer the possibility of increasing the availability of the amino acid. It is unknown whether a COMT inhibitor which penetrates the blood-brain barrier is preferable to one restricted to extra-cerebral inhibition. We measured liver and brain COMT activity two hours following administration of two COMT inhibitors: entacapone (ENT), mainly peripherally acting, and dinitrocatechol (DNC), peripheral and central acting. As expected, the full spectrum inhibitor DNC (30 mg/kg) induced a near total inhibition of liver and brain COMT activity. Unexpectedly, however, ENT, at 30 mg/kg, produced the same degree of liver and brain COMT inhibition as DNC; using 10mg/kg, ENT still inhibited both liver and brain COMT activity by 80%. Only at 2.5 and 5 mg/kg did ENT achieve a differential inhibition of liver (80% inhibition) versus brain (10-30% inhibition) COMT activity. In a second series of experiments, we administered ENT (2.5, 10, and 30 mg/kg) and DNC (30 mg/kg) to rats and monitored extracellular striatal dopamine and dopamine metabolite levels with cerebral microdialysis both under basal conditions and following L-DOPA/carbidopa administration. No compound modified basal striatal levels of dopamine. ENT at 30 mg/kg (but not 2.5 or 10 mg), as well as DNC, decreased striatal levels of the methylated dopamine metabolite homovanillic acid (HVA). When L-DOPA/carbidopa was administered, dopamine formation was greatest and HVA formation least in animals pretreated with DNC and 30 mg/kg ENT (but not 2.5 or 10 mg/kg ENT). The finding that ENT at doses relatively specific for peripheral enzyme inhibition did not promote dopamine or inhibit HVA formation is most likely due to the 20% residual liver COMT activity present when the inhibitor was used at less than full doses. Our data indicate that DNC and ENT both inhibit striatal HVA formation and increase dopamine formation from exogenously administered L-DOPA. The dopamine promoting effect of ENT is only present, however, at doses which inhibit central as well as peripheral COMT activity.

3,4-Dihydroxyphenylacetic Acid↗

Elevated striatal dopamine levels following administration of D-DOPA and its alpha-keto acid metabolite DHPPA: behavioral and physiological studies in vivo in the rat.

The D stereoisomer of dihydroxyphenylalanine (D-DOPA) and its alpha-keto acid metabolite 3,4-dihydroxyphenylpyruvic acid (DHPPA) when infused into the striatum, significantly increased in vivo extracellular dopamine levels. Following D-DOPA administration, the cumulative increase in dopamine levels was 30% of the increase following L-DOPA: following DHPPA it was 11% that of L-DOPA. Rats with unilateral 6-hydroxydopamine-induced lesions of the substantia nigra demonstrated brisk contralateral turning following each compound. The turning, however, was delayed by 10-20 min and total turning was 40% less following D-DOPA and 57% less following DHPPA than it was following L-DOPA. These data indicate that exogenously administered D-DOPA can be metabolized in vivo within the brain to dopamine and suggest this may occur via a transamination pathway in which DHPPA is an intermediary metabolite. The possible relevance of these findings to the treatment of Parkinson's disease is discussed.

Animals↗

An in vivo comparison of the capacity of striatal versus extrastriatal brain regions to form dopamine from exogenously administered L-dopa.

We used the technique of cerebral microdialysis to monitor the metabolism of exogenously administered L-dopa and compared dopamine and dopamine metabolite formation in the striatum (a site containing abundant dopamine nerve terminals and dopa-decarboxylase (DDC) activity) versus the cerebellum and occipital cortex (sites with limited dopaminergic innervation and DDC activity). The concentrations of dopamine and the major dopamine metabolites dihydroxyphenylacetic acid (DOPAC) and homovanillic acid (HVA) increased in each brain region following L-dopa perfusion; however, dopamine formation was 90% less in the occipital cortex as compared to the striatum and 95% less in the cerebellum. DOPAC formation was 57% less in the occipital cortex and 74% less in the cerebellum. HVA formation was 42% less in the occipital cortex and 70% less in the cerebellum. The levels of the L-dopa metabolite 3-O-methyldopa and the serotonin metabolite 5-hydroxyindoleacetic acid (5HIAA) were identical in the striatum, occipital cortex, and cerebellum both before and after L-dopa administration. We conclude that brain areas with marked reductions in dopamine nerve terminals and DDC activity have a diminished capacity to synthesize dopamine and also lack storage mechanisms to protect the newly synthesized dopamine from degradative metabolism. The relevance of these findings to the use of L-dopa in treating Parkinson's disease is discussed.

3,4-Dihydroxyphenylacetic Acid↗

Comparative study of selegiline plus L-dopa-carbidopa versus L-dopa-carbidopa alone in the treatment of Parkinson's disease.

The long-term effect of selegiline (L-deprenyl) in the treatment of Parkinson's disease has not been clearly delineated. We report on a group of patients whose treatment was initiated with selegiline (n = 43) and then subsequently included L-dopa-carbidopa (Sinemet) and in whom an extended period of observation was carried out; they are compared to a group of patients whose treatment consisted of L-dopa-carbidopa alone (n = 39). In each, serial observations of the parkinsonian state and the response to treatment on a yearly basis for a period of 5 years were performed. No significant difference in the Hoehn-Yahr stage or in the motor subscores of tremor, rigidity, bradykinesia, and gait-posture was found between the two groups, nor was there a significant difference in the incidence of fluctuating responses or dyskinesias. The group that received combination therapy required less L-dopa than did the group that received L-dopa-carbidopa alone during the first 3 years of treatment and a similar trend was evident in years 4 to 5. We conclude that minimal benefits accrued to the parkinsonian patients from long-term use of selegiline. No clinical evidence to support the claim of "neuroprotective" properties was found. Selegiline's major usefulness is to modify the fluctuating therapeutic response seen with L-dopa-carbidopa.

Aged↗

In vivo comparison of the effects of inhibition of MAO-A versus MAO-B on striatal L-DOPA and dopamine metabolism.

Utilizing the cerebral microdialysis technique, we have compared in vivo the effects of selective MAO-A, MAO-B, and nonselective MAO inhibitors on striatal extracellular levels of dopamine (DA) and DA metabolites (DOPAC and HVA). The measurements were made in rats both under basal conditions and following L-DOPA administration. Extracellular levels of dopamine were enhanced and DA metabolite levels strongly inhibited both under basal conditions and following L-DOPA administration by pretreatment with the nonselective MAO inhibitor pargyline and the MAO-A selective inhibitors clorgyline and Ro 41-1049. The MAO-B inhibitor deprenyl had no effect on basal DA, HVA, or DOPAC levels. Nevertheless, deprenyl significantly increased DA and decreased DOPAC levels following exogenous L-DOPA administration, a finding compatible with a significant glial metabolism of DA formed from exogenous L-DOPA. We conclude that DA metabolism under basal conditions is primarily mediated by MAO-A. In contrast, both MAO-A and MAO-B mediate DA formation when L-DOPA is administered exogenously. The efficacy of newer, reversible agents which lack the "cheese effect" such as Ro 41-1049 are comparable to the irreversible MAO-A inhibitor clorgyline. The possible relevance of these findings for the treatment of Parkinson's disease is discussed.

3,4-Dihydroxyphenylacetic Acid↗

Nitric oxide modulates dopamine release during global temporary cerebral ischemia.

Dopamine (DA) is released in large quantities from the striatum during cerebral ischemia. Along with excitatory neurotransmitters, DA plays a role in cellular neuronal ischemic injury. In this study we examined the role of nitric oxide (NO) in the ischemia-induced release of DA. A microdialysis probe was stereotactically placed into the corpus striatum of 16 Sprague-Dawley rats for DA, 3,4-dihydroxyphenylacetic acid (DOPAC), and homovanillic acid (HVA) level determinations. After probe stabilization, the animals received either NG-nitro-L-arginine-methyl ester (L-NAME), a NO synthase inhibitor, or vehicle through the microdialysis probe. Temporary global forebrain ischemia was induced using bilateral carotid artery ligature tightening and controlled hemorrhagic hypotension for 15 min. L-NAME administration caused a reduction in ischemic estimated extraneuronal DA concentration by 60% (P < 0.005) compared with control. There was an increase in both DOPAC and HVA concentrations during the recovery period compared to baseline values in the control group (P < 0.05). L-NAME also caused a reduction in HVA concentration compared to vehicle administration during the latter part of recovery (P < 0.05). These data support the concept that ischemic dopamine release may be mediated by NO. This NO-modulated DA release may contribute to the previously reported deleterious neurotoxic effects of NO during ischemia.

3,4-Dihydroxyphenylacetic Acid↗

Effect of a selective MAO-A inhibitor (Ro 41-1049) on striatal L-dopa and dopamine metabolism: an in vivo study.

We administered Ro 41-1049, an inhibitor of the enzyme monoamine oxidase type A (MAO-A) to rats and monitored extracellular catecholamine levels in the corpus striatum before and after the intraperitoneal (IP) administration of a bolus of L-dopa. Acute administration of Ro 41-1049 (1-50 mg/kg IP) produced a dose-dependent decrease in basal levels of the dopamine metabolites 3,4-dihydroxyphenylacetic acid (DOPAC) and homovanillic acid (HVA) and an increase in basal levels of dopamine. In rats treated with Ro 41-1049 (20 mg/kg IP), L-dopa administration (100 mg/kg IP) produced a greater increase in striatal levels of dopamine than it did in controls, while DOPAC and HVA formation was attenuated. We conclude that inhibition of central MAO-A activity promotes synaptic accumulation of dopamine following administration of pharmacological doses of L-dopa.

3,4-Dihydroxyphenylacetic Acid↗

Dystonic storms: a practical management problem.

On rare occasions, torsion dystonia can rapidly worsen and produce life-threatening symptoms. We present reports on two children who had generalized dystonia and who demonstrate the management difficulties of "dystonic storms."

Child↗

Effect of repeated electroconvulsive shock on striatal L-dopa and dopamine metabolism: an in vivo study.

A course of treatments with electroconvulsive shock (ECS) has been reported to reestablish L-dopa efficacy in patients with advanced Parkinson's disease. We wished to determine if ECS could modify L-dopa and dopamine metabolism in an animal model of Parkinson's disease. Therefore, we administered repeated ECS (8 ECS at 48 hr intervals) to rats with partial destruction of the nigrostriatal dopamine pathway and used the cerebral microdialysis technique to monitor extracellular concentrations of dopamine and dopamine metabolites (DOPAC and HVA) in the corpus striatum. The control group of animals received sham-ECS treatments. Basal dopamine levels were decreased by 20% in animals receiving repeated-ECS versus sham-ECS. DOPAC levels, on the other hand, were increased by 84% in animals receiving repeated-ECS. HVA levels were equal in the two groups. Following L-dopa administration, dopamine and HVA levels increased equally in control animals and animals which had previously received repeated-ECS. DOPAC concentrations were uniformly greater in rats receiving repeated-ECS. When ECS was administered acutely, dopamine levels increased 390% and returned to baseline values in 75 minutes, DOPAC and HVA were unchanged, and 5HIAA levels decreased 30%. We conclude that 1) acute ECS administration produces a transient, marked release of striatal dopamine and 2) repeated ECS can reset the level of basal dopamine release, a finding compatible with ECS-induced dopamine receptor supersensitivity, and 3) neither single nor repeated administration of ECS has a major effect on the formation of dopamine or HVA from exogenously administered L-dopa although there was a strong tendency for increased DOPAC formation. ECS may exert its putative antiparkinsonian effect by enhancing dopamine receptor sensitivity.

3,4-Dihydroxyphenylacetic Acid↗

Low and high dose bromocriptine have different effects on striatal dopamine release: an in vivo study.

We wished to determine if low and high doses of bromocriptine produce distinct patterns of dopamine release and metabolism. Accordingly, we administered bromocriptine (0, 2.5, 5, and 10 mg/kg, IP) to rats and monitored extracellular concentrations of dopamine and dopamine metabolites in the corpus striatum with the technique of cerebral microdialysis. Extracellular dopamine levels increased following administration of 2.5 and 5 mg/kg bromocriptine. In contrast, dopamine levels decreased following 10 mg/kg bromocriptine. Dopamine metabolite levels decreased 45 minutes following all doses of bromocriptine. Bromocriptine administration had no effect on the levels of 5HIAA, the major serotonin metabolite. These findings with high dose bromocriptine fit the predicted profile of a dopamine D2 receptor agonist. The delayed decrease in dopamine metabolites at all bromocriptine doses is consistent with the known dopamine synthesis inhibiting action of bromocriptine. In contrast, the increased dopamine release observed following low and medium doses of bromocriptine is not readily explainable by current theories of bromocriptine action which predict decreased dopamine release and therefore decreased striatal extracellular dopamine levels with both high and low-doses of bromocriptine. Our findings indicate that bromocriptine has a complex pharmacological action that extends beyond simple agonism at dopamine D2 receptors.

3,4-Dihydroxyphenylacetic Acid↗

Parkinsonian syndrome in childhood after sodium valproate administration.

Among the side effects attributed to sodium valproate administration, the production of a parkinsonian syndrome is very uncommon, particularly in children. We report a 12-year-old girl with secondary epilepsy; 7 days after the initiation of valproate therapy she developed parkinsonism that disappeared completely when valproate was replaced by carbamazepine. We discuss the possible role of alterations in GABAergic neurotransmission in the extrapyramidal syndrome that developed.

Child↗

Changes in body temperature markedly affect striatal dopamine release and metabolism: an in vivo study.

Dopamine release and metabolism in the corpus striatum increased markedly when the core body temperature of anesthetized rats was increased from 35 degrees to 41 degrees C while temperatures below 34 degrees were associated with a marked attenuation of dopamine release. These observations may have clinical relevance in cases where alterations in body temperature are associated with extrapyramidal dysfunction.

3,4-Dihydroxyphenylacetic Acid↗

Catechol-O-methyltransferase inhibition increases striatal L-dopa and dopamine: an in vivo study in rats.

We administered Ro 40-7592, an inhibitor of the enzyme catechol-O-methyltransferase (COMT) that crosses the blood-brain barrier, to rats and monitored extracellular catecholamine levels in the corpus striatum before and after the intraperitoneal administration of a bolus of l-dopa. Acute administration of Ro 40-7592 increased basal levels of l-dopa and dihydroxyphenylacetic acid (DOPAC) and decreased basal homovanillic acid (HVA) levels, but did not affect basal dopamine levels. In rats treated with Ro 40-7592, l-dopa administration produced a greater increase in striatal levels of l-dopa, dopamine, and DOPAC than it did in controls, while HVA formation was attenuated. We conclude that inhibition of COMT activity promotes central dopamine synthesis and release following administration of pharmacologic doses of l-dopa.

3,4-Dihydroxyphenylacetic Acid↗