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E C Azmitia

Publications and source records attributed to E C Azmitia.

At least 55 records · Page 3Linked to original sources

Glial-derived S100b protein selectively inhibits recombinant beta protein kinase C (PKC) phosphorylation of neuron-specific protein F1/GAP43.

Protein F1/GAP43 is neuron-specific, associated with neurite outgrowth during development and a substrate for PKC. This protein is present in high levels in serotonergic neurons which in culture sprout in response to the glial-derived S100b, the beta-beta homodimer. As an initial step in determining whether S100b acts on F1/GAP43 we studied the regulation by S100b of PKC phosphorylation of F1/GAP43. Either the S100b or a mixture of S100a and S100b, both from a brain glial cell source, inhibited in vitro phosphorylation of purified F1/GAP43 by purified PKC in a dose-dependent manner. Using recombinant PKC subtypes, purified S100b preferentially inhibited the F1/GAP43 phosphorylation by the beta subtype. The IC50 of S100b for beta I and beta II PKC was 8 microM while for alpha and gamma PKC it was 64 microM. S100b inhibition was thus subtype-selective. Histone III-S phosphorylation by the four PKC subtypes was not inhibited by S100b. S100b inhibition was thus substrate-selective. Moreover, the effect of S100b on phosphorylation could not be explained by a direct inhibition of kinase activity. Together with earlier studies implicating a role for S100 in synaptic plasticity and neurite outgrowth, the present results suggest that S100b may regulate such functions through its inhibition of neuron-specific PKC substrate (F1/GAP43) phosphorylation. The regulation of this neuron-specific substrate phosphorylation by glial S100 suggests the potential for a novel neuro-glial interaction. Finally, the location of S100 gene on chromosome 21, trisomic in Down's syndrome, and over-expressed in this disorder, as well as in Alzheimer's disease, suggests a link to cognitive impairments in human.

Animals↗

MDMA (ecstasy) inhibition of MAO type A and type B: comparisons with fenfluramine and fluoxetine (Prozac).

3,4-Methylenedioxymethamphetamine (MDMA), a serotonin (5-HT) neurotoxin, has been shown to promote the release of serotonin (5-HT) and block its reuptake. The increased buildup of extracellular 5-HT should normally be degraded by monoamine oxidase (MAO). The effects of both enantiomers of MDMA were examined on MAO-A and monoamine oxidase-B (MAO-B) activity in rat brain homogenates. Both enantiomers competitively inhibited 5-HT catabolism by rat brain MAO-A. The Ki of MDMA for MAO-A was 22 mumol/L. A mixed type of inhibition by MDMA was observed for phenethylamine catabolism by MAO-B for both optical antipodes. Logistical analysis of concentration response curves for MDMA inhibition of MAO-A and MAO-B show an IC50 of 44 mumol/L for inhibition of MAO-A by MDMA. The IC50 value of MDMA inhibition of MAO-B was 370 mumol/L, showing a selective potency for MAO-A inhibition. The MAO inhibitory properties of fenfluramine (FEN) and fluoxetine (FLUOX) were compared to those of MDMA. The rank order potency of these drugs for MAO-A inhibition was MDMA > FLUOX > FEN, whereas for MAO-B inhibition, FLUOX > MDMA > FEN. A combination of FLUOX and MDMA at their respective IC50 did not inhibit MAO activity more than either drug alone at equivalent concentrations. These results indicate that the actions of FEN do not appear to involve MAO inhibition. MDMA (ecstasy) produced a preferential inhibition of MAO-A (IC50 = 44 mumol/L), which should increase extracellular 5-HT.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Astroglial 5-HT1a receptors and S-100 beta in development and plasticity.

The work described in this article is concerned with the role of the 5-HT1a receptor in mediating the neurotrophic effects of serotonin, principally through the release of the substance S-100 beta from astroglial cells. These receptors are also present in astrocytes of the mature brain and may play a role in the synaptic plasticity necessary for certain experience-driven brain changes, such as memory or learning. The presence of these receptors on astroglial cells of the adult brain also has interesting implications for the mechanism of action of many psychotropic drugs acting through the serotonergic system.

Aging↗

Integrative transporter-mediated release from cytoplasmic and vesicular 5-hydroxytryptamine stores in cultured neurons.

The direct effects of 3,4-methylenedioxymethamphetamine (MDMA) and p-chloroamphetamine (PCA) were studied in microculture of fetal 5-hydroxytryptamine (5-HT) neurons. Both MDMA and PCA released 5-HT with the potency of PCA > MDMA by a mechanism inhibited by fluoxetine, and inhibitor of the 5-HT transporter. The transporter-mediated release by MDMA and PCA reduced intracellular stores of 5-HT. Both MDMA and PCA inhibit MAO-A activities, which also contributes to the increase of extracellular 5-HT levels. Deprenyl (10(-7) M) increased the amount of intracellular 5-HT and potentiated the MDMA- or PCA-induced release of 5-HT. Conversely, reserpine (10(-9) M) reduced the intracellular 5-HT levels and attenuated the transporter-mediated release. In addition, MDMA- or PCA-mediated release was attenuated by nimodipine (10(-8) M), an L-type Ca2+ channel antagonist. Our results indicate that MDMA- or PCA-induced release of 5-HT occurs from the cytoplasm to the media through the 5-HT transporter, and that the release may incorporate 5-HT from the vesicular stores.

3,4-Methylenedioxyamphetamine↗

Intraocular co-grafts of fetal dorsal raphe nucleus and suprachiasmatic nucleus.

Serotonergic neurons in the fetal dorsal raphe nucleus were grafted together with fetal anterior hypothalamic tissue including the suprachiasmatic nucleus (SCN) to the anterior eye chamber of adult rats. After 6 weeks transplantation, the double grafts were immunocytochemically examined using antisera against serotonin, arginine vasopressin (AVP) and vasoactive intestinal polypeptide (VIP). The raphe grafts contained a large number of serotonin-immunoreactive neurons and fibers, but only a few AVP-immunoreactive fibers and VIP-immunoreactive neurons and fibers. On the other hand, numerous AVP- and VIP-immunoreactive neurons and fibers were found in the SCN of the anterior hypothalamic graft. Outgrowing serotonin-immunoreactive fibers from the raphe tissue were densely distributed in the anterior hypothalamic graft. In the SCN, however, only a few fibers were detected. The results demonstrate that the isolated anterior hypothalamic grafts can be innervated by the serotonergic neurons from the raphe grafts, but the innervation pattern of these fibers was quite different from the normal rat. The present results indicate that the isolated SCN has an inhibitory influence on the growth of serotonergic fibers.

Animals↗

Localization of 5-HT1A receptors to astroglial cells in adult rats: implications for neuronal-glial interactions and psychoactive drug mechanism of action.

Although tissue culture studies have shown a variety of neurotransmitter receptors on astroglial cells, verifying these observations in adult animals has been difficult and rarely accomplished. In the current study we have used double immunocytochemistry to localize 5-HT1a receptors to astroglial cells in fixed sections of adult rat brain. The astroglial cells were identified using an antibody raised against the astroglial-specific protein glial fibrillary acidic protein (GFAP). To label the 5-HT1a receptor, we used an antibody we recently raised against a unique peptide sequence occurring in the second extracellular loop of the receptor. Our results show that the 5-HT1a receptor occurs in relatively high abundance on astroglial cells. There is regional specificity, the receptor being much more commonly found in septum and hippocampus than striatum. There are also intraregional differences in that even within a single brain region one astrocyte may have very high levels of the receptor while an adjacent cell has none. We propose that the cellular localization of this receptor could have significance in understanding the mechanism of action of 5-HT1a receptor active drugs in alleviating anxiety and depression. The mechanism may be through the release of a neurotrophic agent, S-100 beta, from astrocytes. This factor may then cause regeneration or sprouting of neuronal terminals which have been lost due to a disease process.

Animals↗

Loss of 5-HT1A receptor mRNA in the dentate gyrus of the long-term adrenalectomized rats and rapid reversal by dexamethasone.

Two months after bilateral adrenalectomy, 5-HT1A receptor mRNA labelling was decreased in the granular cell layer of the dentate gyrus but not in the pyramidal cell layer of Ammon's horn. Two month adrenalectomized rats given dexamethasone (10 micrograms/ml saline) 24 or 72 h before perfusion showed a progressive recovery in 5-HT1A mRNA labelling in the dentate gyrus. 5-HT1A expression may underlie hippocampal neuronal plasticity after long-term adrenalectomy.

Adrenalectomy↗

Increase of tryptophan hydroxylase enzyme protein by dexamethasone in adrenalectomized rat midbrain.

Using two specific anti-peptide antibodies (WH-66 and WH-412) against tryptophan hydroxylase (TPH or WH), a single principle band from the midbrain raphe area was seen (approximately 49 kDa) in immunoblots. Densitometric comparison of the immunoreactivity of the 49 kDa band was greater (50-75%) in immunoblots of midbrain raphe samples from adrenalectomized (ADX) rats given dexamethasone (DEX) in their drinking water (10 mg/liter) for 12-96 hr. No difference from ADX brains was seen in the 49 kDa band after only 4 hr of exposure to DEX in the drinking water. Immunocytochemical staining with WH-66 of sections from rat brainstem showed specific cellular staining in all of the serotonergic raphe nuclei but not in substantia nigra or locus coeruleus. More cellular staining of WH-66-immunoreactive (WH-66-IR) cells was observed in the dorsal and median raphe nuclei in ADX rats given DEX for 72 hr, especially in the perikarya and in the primary dendrites. Quantification of staining per cell soma with an automatic image analyzer indicates that amount of WH-66-IR in neurons from both the lateral wing subdivision of the dorsal raphe nucleus and in the supralemniscal nucleus, B-9, was 80% higher in the ADX+DEX compared to ADX animals. Interestingly, morphometric analysis of these same cells showed a corresponding increase of 37-80% in somal area. It is suggested that a part of the increase in TPH/WH staining may be a consequence of cellular hypertrophy due to DEX treatment of the ADX rats.

Adrenal Glands↗

The substituted amphetamines 3,4-methylenedioxymethamphetamine, methamphetamine, p-chloroamphetamine and fenfluramine induce 5-hydroxytryptamine release via a common mechanism blocked by fluoxetine and cocaine.

The abilities of the substituted amphetamines 3,4-methylenedioxymethamphetamine (MDMA), methamphetamine, p-chloroamphetamine (PCA) and fenfluramine to induce synaptosomal [3H]serotonin (5-HT) release were compared using a novel microassay system. The rank order of release potencies was found to be (+/-)PCA congruent to (+)-fenfluramine greater than (+)-MDMA much greater than (+)-methamphetamine. Combination of two drugs at their EC50 did not cause more release than either drug alone at an equivalent concentration. In addition, the 5-HT uptake blockers fluoxetine and cocaine inhibited the release induced by MDMA, methamphetamine, PCA and fenfluramine to the same percentage. However, threshold concentrations of the substituted amphetamines known to inhibit uptake did not attenuate the release caused by higher concentrations of these compounds. These results suggests that MDMA, methamphetamine, PCA and fenfluramine cause 5-HT release via a common mechanism. Furthermore, these results indicate that the 5-HT uptake blockade induced by these substituted amphetamines in vitro is different from that induced by either fluoxetine or cocaine.

3,4-Methylenedioxyamphetamine↗

Increased tyrosine hydroxylase immunoreactivity in the rat cortex following prenatal cocaine exposure.

Cocaine has been found to be a neurobehavioral teratogen in both animals and humans. In this study the effects of cocaine on the developing catecholamine systems were examined. Rats were treated gestationally with cocaine (40 mg/kg s.c.) or saline from gestational day 13 until parturition. On postnatal day 28, tyrosine hydroxylase immunocytochemistry was performed. Increases in catecholamine fiber densities were observed in the hippocampus, anterior cingulate cortex, and parietal cortex in cocaine-treated animals. These findings may explain some of the behavioral alterations seen following prenatal cocaine exposure.

Animals↗

Prenatal cocaine exposure disrupts the development of the serotonergic system.

Prenatal cocaine exposure has been found to result in a number of neurobehavioral abnormalities in both clinical and laboratory studies. We have previously shown that cocaine inhibits the growth of developing serotonin neurons in culture. This study examines the effects of cocaine on the developing serotonin system in vivo. Pregnant rats were injected with cocaine (40 mg/kg s.c.) from gestational day 13 to parturition. One group of rats was additionally injected on postnatal days 1-5 with cocaine (10 mg/kg s.c.). [3H]Paroxetine, a selective ligand for the serotonin uptake carrier, was used to quantify serotonin terminal fiber density at one day, one week, and four weeks postnatal. Cocaine exposure was found to significantly decrease [3H]paroxetine-labelled sites and thus the density of serotonin fibers in the cortex and hippocampus at one day and one week postnatal. By four weeks postnatal, no significant effect was observed, indicating that a recovery had occurred. Serotonin immunocytochemistry performed at one month revealed normal fiber distribution in the cortex but a loss of fibers in the CA1 and CA2 hippocampal fields. Postnatal treatment alleviated the effects of prenatal cocaine exposure, resulting in [3H]paroxetine binding levels at one week which were comparable to and, in the cortex, even higher than those of saline controls. We conclude that cocaine delays the maturation of the serotonin system when administered prenatally but may accelerate maturation when administered both pre- and postnatally.

Animals↗

Ethanol stimulates [3H]5-HT high-affinity uptake by rat forebrain synaptosomes: role of 5-HT receptors and voltage channel blockers.

We examined ethanol's interactions with serotonin (5-HT) receptor-mediated [3H]5-HT high-affinity uptake by adult rat forebrain synaptosomes. The serotonergic transport mechanism was chosen because ethanol consumption patterns can be manipulated by serotonin receptors and uptake blockers. We report that a dose of ethanol which causes general anesthesia in humans (54 mM) applied in vitro enhanced rat synaptosomal [3H]5-HT uptake after 5 min at 37 degrees C. Similar levels of stimulation by 54 mM ethanol were seen in hippocampal, cerebral cortex and brainstem synaptosomes. Significant inhibition of uptake was not detected until concentrations of ethanol reached 2.1 M, which is lethal in vivo. Ryanodine and the 5-HT2 agonist, DOI, are believed to cause an increase in intracellular Ca2+ levels. We observed that they also caused an elevation of [3H]5-HT uptake, and this stimulation was less than additive with the ethanol-induced increase. Inhibition of the 5-HT3, receptor-mediated Na+ channel with the antagonist ICS 205930, partially reversed ethanol's stimulatory effects on [3H]5-HT uptake. Blockade of voltage-dependent Na+ flux with tetrodotoxin and lidocaine, however, had no effect on the stimulation by ethanol. But tetraethylammonium, which blocks voltage-dependent K+ channels, partially counteracted ethanol's action on [3H]5-HT uptake. These compounds had no effect on uptake by themselves. These results indicate that ethanol's stimulation of [3H]5-HT uptake involves a rise in [Ca2+]i which is sensitive to voltage-dependent K+ flux and 5-HT3 receptor-mediated Na+ flux, and would decrease the availability of synaptic 5-HT.

Animals↗

Dose-related effects of prenatal 5-methoxytryptamine (5-MT) on development of serotonin terminal density and behavior.

Our previous studies with a tissue culture model of neuronal development have shown that the development of serotonin neurons is dependent, at least in part, on the stimulation of high affinity serotonin receptors. One receptor inhibits the outgrowth of neurons, while the other promotes it. The present study was therefore undertaken to replicate these findings in a whole animal model system. Pregnant Sprague-Dawley rats were treated from gestational day 12 until birth with 0.1, 1.0 or 3.0 mg/kg 5-methoxytryptamine (5-MT). The pups were assessed for serotonin outgrowth by the selective synaptosomal uptake of [3H]serotonin at postnatal days 1, 15 and 30 (D1, D15, D30). In addition, the pups were tested behaviorally for the neonatal serotonin syndrome at D5 (induced by quipazine), spontaneous alternation and open field activity at day 15 and lick suppression at day 30. At 1.0 mg/kg, the terminal outgrowth of serotonin neurons was inhibited, while the highest dose, 3.0 mg/kg, showed stimulation of outgrowth. The highest dose caused behavioral alterations which had abated by 30 days, while the intermediate dose (1.0 mg/kg) showed behavioral changes throughout. Interestingly, the lowest dose, 0.1 mg/kg, showed changes in uptake only at D1 and behavioral changes only at later timepoints, principally at D30. This suggests that serotonin not only plays a role in regulating the development of the neurons which produce it, but that it may also play a role in neurochemical imprinting--that is, changes in behavior in the adult may be due to changes in neurochemistry during development, even though that neurochemistry may have been corrected by the time the animal becomes an adult.

5-Methoxytryptamine↗

Activity of hippocampal extract on development of [3H]5-HT high-affinity uptake in dissociated microcultures.

Specific and localized lesions of the 5-HT fibers in the hippocampus induce homotypic collateral sprouting and enhance serotonergic fiber outgrowth from adult neurons and transplanted fetal tissue. In this study, hippocampal extracts were prepared and applied to primary cultures of fetal serotonergic neurons. The effects of plating density and serum additives were examined. The growth of the serotonergic neurons in the rostral brainstem dissociated cultures were estimated by measuring the specific uptake of [3H]5-HT. The results indicate the presence of a trypsin-sensitive factor which is active when prepared fresh at dilutions up to 1/10,000. The factor is higher in hippocampus than cerebellum. Young male tissue contained more activity than either female or aged hippocampus. Although both positive and negative effects are described, higher dilutions of factor (1/1,000) were generally stimulatory in high density cultures while lower dilutions (1/10) were inhibitory in low density cultures. Specific removal of 5-HT hippocampal afferents with fornix-fimbria microinjections of 5,7-dihydroxytryptamine resulted in an initial loss of activity (2 days and 2 weeks) followed by an enhanced activity (2 months) compared to normal hippocampal extract. Several possibilities are discussed as to the identity of the serotonergic growth factor from hippocampal supernatant.

5,7-Dihydroxytryptamine↗