PubMed HealthSearch

Biomedical subjects

K E Sabol

Publications and source records attributed to K E Sabol.

9 recordsLinked to original sources

Fluoxetine attenuates the DL-fenfluramine-induced increase in extracellular serotonin as measured by in vivo dialysis.

Rats with hippocampal dialysis probes were treated with DL-fenfluramine (FEN), fluoxetine, or FEN with fluoxetine pre-treatment. FEN (12.5 mg/kg) increased extracellular serotonin (5-HT) from 0.4 +/- 0.04 to 25.2 +/- 4.16 pg/10 microliters. Fluoxetine (10.0 mg/kg) increased extracellular 5-HT levels from 0.4 +/- 0.05 to 2.4 +/- 0.33 pg/10 microliters. FEN-induced increases in extracellular 5-HT were attenuated by 66% with fluoxetine pre-treatment. This result supports the view that the 5-HT releasing properties of FEN are mediated by the 5-HT uptake transporter.

Animals

The NMDA receptor antagonist MK-801 does not protect against serotonin depletions caused by high doses of DL-fenfluramine.

The non-competitive N-methyl-D-aspartate (NMDA) receptor antagonist dizocilpine (MK-801) has been shown to block methamphetamine (MA) induced damage to the dopamine (DA) and serotonin (5HT) systems of the brain. DL-Fenfluramine (FEN) is another potential neurotoxin but its long-term depletions are more selective to the 5HT system. To determine whether MK-801 protects against damage induced by FEN, we treated rats with FEN (4 injections of 12.5 mg/kg, at 1 h intervals) in conjunction with either saline or MK-801 (2 injections of 2.5 mg/kg, administered 15 min before and 90 min after the first FEN injection). Two weeks post-treatment, MK-801 alone caused a small but significant decrease in 5HT tissue concentrations in striatum and amygdala. FEN significantly reduced 5HT in all 8 brain regions studied. MK-801 + FEN did not protect against FEN-induced 5HT depletions in nucleus accumbens/olfactory tubercle, septum, frontal cortex, somatosensory cortex or hippocampus. MK-801 + FEN enhanced 5HT depletions in striatum, hypothalamus and amygdala. The differential protective effect of MK-801 between MA and FEN are discussed in terms of a possible dopaminergic mechanism.

Animals

Fenfluramine-induced increases in extracellular hippocampal serotonin are progressively attenuated in vivo during a four-day fenfluramine regimen in rats.

Rats were administered 8 injections of 12.5 mg/kg fenfluramine over a 4-day period. Extracellular hippocampal serotonin levels were monitored in vivo during the 4-day treatment period. Predrug baseline serotonin levels were 0.6 +/- 0.17 pg/5 microliters; 60 min after the first fenfluramine injection extracellular serotonin levels were increased to 28.06 +/- 5.2 pg/5 microliters. Fenfluramine-induced increases in serotonin were substantially reduced on the 2nd through 4th days of the regimen. Baseline serotonin levels were increased on days 2 through 4 of the treatment regimen. In a separate group of animals post-mortem tissue concentrations of serotonin were measured 2 weeks after 1,2,4, or 8 injections of 12.5 mg/kg fenfluramine. There were decreases in serotonin tissue concentrations which were related to the number of fenfluramine injections administered. The in vivo dialysis and post-mortem tissue assay results are consistent with the view that fenfluramine is neurotoxic.

Animals

Conditioned rotation: a behavioral analysis.

Rats trained to turn in circles have been used by a number of investigators to study brain dopamine metabolism. We report the results of a behavioral analysis of conditioned rotation and describe the apparatus used in our laboratory to train rats and monitor their performance. A novel discrimination procedure was used which required each rat to turn left in one training chamber with one set of stimulus conditions and right in a different chamber. Water-deprived animals were trained to circle for a water reward. Initial acquisition of this task required 11 days of training. At the end of acquisition, a discrimination test indicated that turning in the left and right directions was under stimulus control of the chamber environment. We found that trained turning had a highly stereotyped temporal organization with a rapid movement component during which the rat executed the turn, and a longer pause time component during which the rat consumed the water reinforcer.

Animals

In vivo dialysis measurements of dopamine and DOPAC in rats trained to turn on a circular treadmill.

In vivo dialysis was used to measure extracellular fluid concentrations of dopamine and dihydroxyphenylacetic acid (DOPAC) in rats which were trained to run on a circular disk treadmill for water reinforcement. Turning resulted in bilateral increases in DOPAC in lateral striatum as well as nucleus accumbens/medial striatum. Dopamine release showed small but not significant increases at both sites. Changes in DOPAC release were not lateralized. Free drinking without circling also resulted in significant increases in DOPAC in these two brain areas. During free drinking, dopamine release was significantly increased in lateral striatum but not in nucleus/medial striatum. These experiments indicate that dopamine metabolism is increased in rat striatum and nucleus accumbens in animals running on circular treadmills as well as by free drinking.

3,4-Dihydroxyphenylacetic Acid

Unilateral dopamine depletion causes bilateral deficits in conditioned rotation in rats.

Rats were trained to rotate for a water reward using a procedure which required each rat to turn in both the left and right directions. The rats were then lesioned with unilateral injections of 6-hydroxydopamine in the nigrostriatal bundle to produce unilateral dopamine depletion. Rats which had greater than 95% depletion had significant deficits in turning both ipsilateral and contralateral to the depleted side. Circling contralateral to the lesion was more impaired than circling ipsilateral to the lesion. All animals showed deficits in both the initiation of movement and in speed of turning. In addition, the rats displayed a chronic turning bias in the ipsilateral direction 16 weeks postlesion. These results indicate that unilateral dopamine depletion causes a variety of impairments in trained circling behavior. Although contralateral circling is most impaired, there is a significant decrease in ipsilateral performance. We conclude that normal conditioned circling behavior requires bilateral dopamine innervation.

Animals

Brain acetaminophen measurement by in vivo dialysis, in vivo electrochemistry and tissue assay: a study of the dialysis technique in the rat.

After peripheral injections of the electrochemically active drug acetaminophen, striatal levels of the drug were measured in 3 different ways: in vivo electrochemistry, in vivo dialysis, and tissue assay. The time course of the acetaminophen concentrations measured by in vivo dialysis paralleled the in vivo electrochemistry curve and lagged behind the peak tissue concentration. This result suggests that dialysis and electrochemistry provide equivalent measurements of extracellular fluid acetaminophen. In vitro, dialysis recovery of acetaminophen was 28% of the beaker concentration.

Acetaminophen

Striatal dopamine activity and unilateral barpressing in rats.

A micro-punch tissue assay was used to measure changes in dopamine content at twenty-six sites within the striatum of rats trained to barpress exclusively with one forepaw for food pellets. Analysis of dopamine (DA) and its metabolite, 3,4-dihydroxyphenylacetic acid (DOPAC), was carried out using HPLC with electrochemical detection. The barpress group had a significantly higher DOPAC/DA ratio in both the contralateral and ipsilateral hemispheres when compared to feeding and homecage controls. The DOPAC/DA ratio is considered to be a measure of dopaminergic neuronal activity, thus suggesting a bilateral activation of the neostriatal dopaminergic afferents as a result of the motor performance. Topographical analysis within the barpress group revealed an anterior-posterior, medial-lateral gradient of dopaminergic activity with the posterior and lateral sites showing the greatest increases over the controls. The results of this experiment indicate that localized changes in neuronal activity can be monitored with the micro-punch assay-HPLC/EC technique and that voluntary motor behavior produces an activation of the striatal dopamine system.

3,4-Dihydroxyphenylacetic Acid

Dopamine depletion in a striatal subregion disrupts performance of a skilled motor task in the rat.

Unilateral 6-hydroxydopamine injections into the lateral neostriatum disrupted the ability of rats to retrieve small food pellets with the contralateral forepaw. Similar injections into the medial striatum did not interfere with performance accuracy. Dopamine assays indicated that of the 5 striatal subregions analyzed, the lateral striatum at the level of the anterior commissure was most directly related to the behavioral deficit. The behavioral results are interpreted as providing evidence in support of a sensory role for the lateral striatal dopamine system.

Animals