PubMed Health⌕ Search

Biomedical subjects

D M Jacobowitz

Publications and source records attributed to D M Jacobowitz.

At least 127 records · Page 7Linked to original sources

Lack of effect of chronic carbamazepine on brain somatostatin in the rat.

We investigated the effects of chronic carbamazepine treatment in rats on brain somatostatin. Following 12 days of carbamazepine treatment, no changes in somatostatin levels were found in any of the brain areas examined which included: amygdala, hippocampus, caudate-putamen, median eminence, arcuate nucleus, nucleus accumbens, nucleus interstitialis of the stria terminalis, nucleus periventricularis, parietal cortex, and occipital cortex. Thus, carbamazepine in low doses does not affect basal levels of brain somatostatin in the rat, in contrast to the previous reports of decreased somatostatin in the cerebrospinal fluid of affectively ill patients.

Animals↗

Immunohistochemical localization of cytochrome P-450 in rat brain.

The presence of cytochrome P-450 in rat brain was studied by immunohistochemistry, using antibodies to cytochrome P-450 purified from livers of phenobarbital- or 3-methylcholanthrene-treated rats. Immunoreactive nerves were observed only in brain sections incubated with immunoglobulin-G to 3-methylcholanthrene-induced cytochrome P-450. This immunoreactivity was abolished by preabsorption of the antibody with highly purified rat liver cytochrome P-450c, the major cytochrome P-450 isozyme induced by 3-methylcholanthrene, but was not affected by other cytochrome P-450 isozymes induced by phenobarbital, isosafrole or pregnenolone-16 alpha-carbonitrile. The most abundant concentration of nerve fibers with cytochrome P-450 immunoreactivity was observed in the globus pallidus. Immunoreactive fibers were also observed in the caudate putamen, amygdala, septum, ventromedial nucleus of the hypothalamus, medial forebrain bundle, ansa lenticularis, and ventromedial portion of the internal capsule and crus cerebri. Cell bodies with cytochrome P-450 immunoreactivity were observed in the caudate putamen and in the perifornical area of the hypothalamus. The cytochrome P-450 immunoreactive fibers in the globus pallidus and caudate putamen do not appear to emanate from cell bodies in the substantia nigra, since there was no reduction in the density of these fibers after unilateral stereotaxic electrolytic destruction of the substantia nigra (zona compacta and reticulata). Our data suggest that these striatal nerve processes are derived from cell bodies within the caudate putamen itself. The present results indicate that rat brain contains a form of cytochrome P-450 with antigenic relatedness to the hepatic 3-methylcholanthrene-inducible cytochrome P-450c.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Incorporation of amino acids into proteins of the hypothalamus of prepuberal female rats after estradiol treatment.

The arcuate nucleus-median eminence complex (AM) undergoes major structural and functional changes during normal puberty or if exposed to a pulse of estradiol in the prepuberal period. Those changes are expressed by increased synaptogenesis and by a drastic alteration in the feedback control of anterior pituitary gland hormone release. In this study we investigated the effects of estradiol benzoate (EB) on specific proteins in this hypothalamic area. Prepuberal, 25-day-old female rats were administered 10 micrograms of EB s.c. in oil or sesame oil vehicle. The animals were decapitated either 17 or 42 h after treatment. The brains were removed, blocked and serially sections at 300 micron using a Vibratome. The AM was dissected out and incubated for 6 h in a medium containing 35S-methionine and 35S-cysteine. Proteins from the AM were separated by two-dimensional gel electrophoresis, and the gels were exposed to X-ray film. The resulting autofluorographs were analyzed by scanning densitometry. The results show that the incorporation of labeled amino acids was increased in 10 proteins and decreased in 2 proteins in rats killed 17 h after EB. At 42 h after EB, 6 proteins showed an increased incorporation of amino acids and two proteins showed a decrease. Our results suggest that one or several of these proteins might be involved in the neuroendocrine and structural changes observed in the AM during puberty.

Animals↗

Isolation of specific proteins affected by estradiol in the arcuate-median eminence of prepuberal female rats.

Prepuberal female rats (25 days of age) were injected with estradiol benzoate (EB 10 micrograms/rat, s.c. in oil) or oil vehicle. Forty-eight hours after treatment, all animals were decapitated, their brains removed and sectioned. The arcuate nucleus of the hypothalamus and median eminence were microdissected and processed for isoelectric focusing followed by slab gel electrophoresis. The resulting two-dimensional electrophoretic gels were analyzed to quantitate the specific proteins resolved using a scanning microdensitometric method. Out of 235 proteins measured, 8 proteins were found to be significantly increased and 4 were decreased by EB treatment. The proteins which increased in concentration ranged in molecular weight from 15 to 43 kDa and isoelectric points (pI) of 4.9 to 7.0. The 4 proteins decreased by the EB treatment were 44, 67, 74 and 80 kDa in molecular weight and their pI's ranged from 6.5 to 7.1. It is suggested that these proteins might be involved in some of the neuroendocrine effects that are induced by estradiol in this region of the brain.

Animals↗

Hemiparkinsonism in a monkey after unilateral internal carotid artery infusion of 1-methyl-4-phenyl-1,2,3,6-tetrahydropyridine (MPTP) is associated with regional ipsilateral changes in striatal dopamine D-2 receptor density.

Infusion of 1-Methyl-4-phenyl-1,2,3,6-tetrahydropyridine (MPTP) into the right internal carotid artery of a cynomologus monkey (Macaca fascicularis) induced an almost complete loss of the dopaminergic innervation of the right caudate-putamen and hemiparkinsonism. Digital subtraction autoradiography revealed that at 8 weeks postinjection, a major increase in [3H]spiroperidol binding to D-2 sites in the lateral regions of the right caudate nucleus and putamen occurred, without a significant change in the medial caudate nucleus and putamen. The 92-96% decrease in specific [3H]mazindol binding observed in the right striatum extended into the medial caudate nucleus and putamen and confirmed the extensive loss of dopamine inputs to this structure. The region of the increase in D-2 receptor density is innervated by somatosensory, motor and parietal cortex. This indicates that the increase in D-2 receptor density in this region of the striatum may play a particularly important role in the L-dihydroxyphenylanine-induced motoric recovery observed in such animals.

1-Methyl-4-phenyl-1,2,3,6-tetrahydropyridine↗

3H-nicotine and 125I-alpha-bungarotoxin-labeled nicotinic receptors in the interpeduncular nucleus of rats. I. Subnuclear distribution.

The distribution of nicotinic receptors within the interpeduncular nucleus (IPN) was determined in male rats following in vitro labeling with the cholinergic ligands 3H-nicotine and 125I-alpha-bungarotoxin (BTX). Autoradiographic images of two rostrocaudal levels of IPN were analyzed by computer-assisted densitometry and the optical density contributed by displaceable labeling was determined in the rostral, central, intermediate, and lateral subnuclei. 3H-nicotine labeling density within the four subnuclei differs significantly at both levels of IPN. The greatest density of labeling is localized in the rostral subnucleus, followed in order of diminishing density by the central, intermediate, and lateral subnuclei. Labeling within the rostral subnucleus is prominently localized within its central zone. In the central subnucleus, a dense concentration of binding sites is apparent in the middle region, adjacent to less dense vertically oriented columns; 3H-nicotine binding sites in the lateral subnuclei appear to be most concentrated medially, adjacent to the intermediate subnuclei. 125I-BTX labeling density within the four subnuclei also differs significantly at both levels of IPN. The greatest density of labeling is found in the rostral subnucleus, followed in order of decreasing density by the lateral, central, and intermediate subnuclei. The ovoid regions of the rostral subnucleus contain dense 125I-BTX labeling. In the lateral subnuclei, 125I-BTX binding appears to be predominantly along the lateral margins of the subnucleus. The present data indicate that the IPN contains two distinct populations of putative cholinergic nicotinic receptors identified, respectively, by 3H-nicotine and 125I-BTX labeling. Each population of labeled receptors is uniquely localized in patterns that suggest differences in density within and across subnuclei.

Animals↗

3H-nicotine- and 125I-alpha-bungarotoxin-labeled nicotinic receptors in the interpeduncular nucleus of rats. II. Effects of habenular deafferentation.

The cholinergic innervation of the interpeduncular nucleus (IPN) is wholly extrinsic and is greatly attenuated by bilateral habenular destruction. We describe changes in the labeling of putative nicotinic receptors within this nucleus at 3, 5, or 11 days after bilateral habenular lesions. Adjacent tissue sections of the rat IPN were utilized for 3H-nicotine and 125I-alpha-bungarotoxin (125I-BTX) receptor autoradiography. Compared to sham-operated controls, habenular destruction significantly reduced autoradiographic 3H-nicotine labeling in rostral (-25%), intermediate (-13%), and lateral subnuclei (-36%). Labeling in the central subnucleus was unchanged. Loss of labeling was maximal at the shortest survival time (3 days) and did not change thereafter. In order to establish whether this loss was due to a reduction in the number or the affinity of 3H-nicotine-binding sites, a membrane assay was performed on microdissected IPN tissue from rats that had received surgery 3 days previously. Bilateral habenular lesions produced a 35% reduction of high-affinity 3H-nicotine-binding sites, with no change in binding affinity. Bilateral habenular lesions reduced 125I-BTX labeling in the intermediate subnuclei, and a slight increase occurred in the rostral subnucleus. In the lateral subnuclei, 125I-BTX labeling was significantly reduced (27%) at 3 days but not at later survival times. In view of the known synaptic morphology of the habenulointerpeduncular tract, it is concluded that a subpopulation of 3H-nicotine binding sites within the IPN is located on afferent axons and/or terminals. This subpopulation, located within rostral, intermediate, and lateral subnuclei, may correspond to presynaptic nicotinic cholinergic receptors. Sites that bind 125I-BTX may include a presynaptic subpopulation located in the lateral and possibly the intermediate subnuclei.

Afferent Pathways↗

Hemiparkinsonism in monkeys after unilateral internal carotid artery infusion of 1-methyl-4-phenyl-1,2,3,6-tetrahydropyridine (MPTP).

Infusion of MPTP (0.2-0.8 mg/kg) into the right internal carotid artery of monkeys produces toxin-induced injury to the right nigrostriatal pathway with sparing of other dopaminergic neurones on the infused side and with negligible or little injury to the opposite, untreated side. There are contralateral limb dystonic postures, rigidity, and bradykinesia, but the animals are able to eat and maintain health without drug treatment. Spontaneous motor activity is attended by circling towards the injured side, whereas treatment with L-DOPA/-carbidopa or apomorphine stimulates circling towards the intact side. Dopamine and dopamine metabolite levels are normal in the left caudate and putamen, but markedly depressed on the right (MPTP-treated) side. This animal hemiparkinsonian model will be useful in studies of volitional movement control, drug treatments of Parkinson's disease, and functional efficacy of brain tissue implants.

1-Methyl-4-phenyl-1,2,3,6-tetrahydropyridine↗

Distribution of immunoreactive melanin-concentrating hormone in the central nervous system of the rat.

The distribution of melanin-concentrating hormone-like immunoreactivity (MCH-LI) in 41 microdissected brain and spinal cord regions was determined using radioimmunoassay with antibodies to salmon MCH. The highest concentration of MCH-LI was detected just ventral to the zona incerta (subzona incerta) (2923.2 fmol/mg protein). Very high concentrations of MCH-LI (greater than 1000 fmol/mg protein) were detected also in the nucleus of the diagonal band, medial forebrain bundle, posterior hypothalamic nucleus and medial mammillary nucleus. High concentrations of the peptide (between 500-1000 fmol/mg protein) were measured in 11 brain regions, including bed nucleus of stria terminalis, paraventricular nucleus, anterior hypothalamic nucleus, median eminence, parabrachial nucleus. Moderate concentrations of MCH-LI (between 250-500 fmol/mg protein) were measured in 16 brain regions, such as frontal cortex, central amygdaloid nucleus, medial septum, periventricular nucleus (preoptic) and nucleus of the solitary tract. Low concentrations of MCH-LI (less than 250 fmol/mg protein) were measured in 9 brain regions such as cortical areas, hippocampus, caudate nucleus and substantia nigra. Cervical spinal cord and neurointermediate lobe of the pituitary gland contain low concentrations of the peptide.

Animals↗

Subfornical organ: effects of salt loading and water deprivation on in vitro radioamino acid incorporation into individual proteins.

The subfornical organ of the brain has a role in the regulation of fluid balance in higher animals. In this study the effects of salt loading and water deprivation on specific proteins in this organ were investigated. For 4 days, 3 groups of rats were given an appropriate fluid diet (control, 2% NaCl and water deprived), with all groups having free access to food. Animals were killed by decapitation, and the subfornical organ was quickly dissected out and incubated for 6 h in a medium containing [35S]methionine and [35S]cysteine. Proteins from these organs were then separated by two-dimensional electrophoresis, and the resulting autofluorographs were analyzed by scanning densitometry. The results show that the incorporation of labeled amino acids into 8 proteins was changed due to the experimental manipulations.

Animals↗

Effect of 5,7-dihydroxytryptamine on the concentration of individual proteins in different areas of the rat brain.

Proteins which are apparently regulated in concentration in two different areas of the rat brain by the indole neurotransmitter serotonin were identified using two-dimensional gel electrophoresis combined with computerized scanning densitometry. Reduction in central serotonin levels produced a decrease in the concentration of 3 different proteins (2 in the parietal cortex, 1 in the hippocampus). Two proteins, both in the hippocampus, were elevated in concentration following serotonin depletion. These results demonstrate that there exist in the brain a limited number of proteins whose concentration is influenced by serotonin.

5,7-Dihydroxytryptamine↗

Effects of bilateral lesion of the locus coeruleus and of neonatal administration of 6-hydroxydopamine on the concentration of individual proteins in rat brain.

The role that norepinephrine plays in regulating the concentration of different proteins in the parietal cortex, hippocampus and cerebellum was assessed by investigating the effects of either a bilateral lesion of the locus coeruleus or neonatal administration of 6-hydroxydopamine. Two weeks after lesioning the locus coeruleus, the concentration of two different proteins was elevated in the hippocampus; a third protein was reduced in concentration in this brain area as a result of the lesion. Three proteins were affected in concentration in the cerebellum after the locus coeruleus lesion--two were elevated in concentration and one was reduced in concentration. No proteins were altered in concentration in the parietal cortex as a result of the lesion. Seventy days after neonatal treatment with 6-hydroxydopamine, a total of 6 proteins were found to be changed. Four of these (one in the hippocampus and 3 in the parietal cortex) were reduced in concentration while two proteins (both in the cerebellum) were elevated in concentration after neonatal treatment with the catecholamine neurotoxin. There was little overlap between those proteins affected in concentration by the bilateral lesion of the locus coeruleus and those changed by neonatal treatment with 6-hydroxydopamine. These results suggest that the concentration of a number of different proteins may, under normal physiological conditions, be regulated in vivo by norepinephrine in the brain.

Animals↗

Distribution of immunoreactive atrial natriuretic peptides in the central nervous system of the rat.

The distribution of immunoreactive (ir) atrial natriuretic peptides (ANPs) in 47 microdissected brain and spinal cord regions of the rat was determined by radioimmunoassay. The highest concentrations of ir-ANPs exist in the paraventricular nucleus and median preoptic nucleus (580.9 and 558.0 fmol/mg protein, respectively). High concentrations of ir-ANP (greater than 300 fmol/mg protein) are present in the interpeduncular nucleus, preoptic and hypothalamic periventricular nuclei, median eminence and organum vasculosum of the lamina terminalis. Moderate concentrations of ir-ANPs (between 100 and 300 fmol/mg protein) are found in 16 brain regions such as the bed nucleus of the stria terminalis, nucleus of the diagonal band, most of the hypothalamic nuclei, central gray, locus coeruleus and parabrachial nuclei. Low levels of ir-ANPs (less than 100 fmol/mg protein) exist in 22 brain regions including cortical areas, amygdala, caudate nucleus, nucleus accumbens, hippocampus, supraoptic nucleus, subfornical organ, medial mammillary nucleus, substantia nigra, dorsal raphe nucleus, cerebellum, nucleus of the solitary tract and others. Cervical spinal cord and neurointermediate lobe of pituitary gland contain low levels of ir-ANPs.

Animals↗

The beta subunit of the guanine nucleotide regulatory proteins: identification of its location on two-dimensional gels of brain tissue and its regional and subcellular distribution in brain.

The beta subunit of the guanine nucleotide regulatory proteins (also termed G proteins) has been examined in both rat and human brain. Proteins contained within samples of fresh rat and human brain tissue were separated by two-dimensional gel electrophoresis and either stained with silver or reacted with various antisera raised against the G proteins. In both rat and human brain, a single protein of molecular weight 36,000 daltons and pI 5.8 reacted the antisera. This protein also comigrated with one of the proteins present in a purified preparation of bovine brain G proteins. Based upon molecular weight, pI, and reaction with specific antisera, it was concluded that this protein is the beta subunit of the G proteins in brain. Using this information, the regional and subcellular distribution of the G protein beta subunit was studied in rat brain. Of 25 distinct neuroanatomical areas examined, cortical regions were generally found to contain the largest amount of this protein. The subcellular distribution of the G protein beta subunit revealed that large amounts are present in the synaptic membrane, crude synaptic vesicles, and microsomes. These studies serve to identify another protein visible on silver-stained two-dimensional electrophoretograms of rat and human brain. The regional and subcellular distribution of the G protein beta subunit correlate well with the proposed physiological function of this protein.

Animals↗

Effect of chronic treatment with clorgyline on the relative concentration of specific proteins in the hippocampus and parietal cortex of the rat.

The effect of the chronic administration of clorgyline, a type A inhibitor of monoamine oxidase, on the relative concentration of proteins from the brain of the rat was examined by analysis of two-dimensional electrophoretic gels. The results from this study showed that the administration of clorgyline for 3 weeks produced a significant elevation in the relative concentration of two proteins in the parietal cortex (mol. wt 23,000 and 30,000) and one protein in the hippocampus (mol. wt 25,000). In contrast, the relative concentration of three proteins (mol. wt 31,000, 42,000 and 45,000) was significantly reduced in the parietal cortex by chronic treatment with clorgyline. No protein in the hippocampus was found to be significantly reduced by treatment with clorgyline. Since a previous study has indicated that the relative concentration of three different proteins were significantly altered by the repeated administration of desipramine, the results from the present experiment indicate that different changes in proteins are produced by repeated treatment with the type A monoamine oxidase inhibitor, clorgyline, as compared to those produced by the tricyclic antidepressant, desipramine. These results support previous suggestions that different classes of antidepressant compounds may exert their effects through different mechanisms of action.

Animals↗

Immunocytochemical localization of atrial natriuretic factor, galanin and calcitonin gene-related peptide within the rat interpeduncular nucleus.

The immunocytochemical localization of atrial natriuretic factor (ANF), galanin (GAL), and calcitonin gene-related peptide (CGRP) in specific subnuclei of the interpeduncular nucleus (IPN) was determined by immunocytochemistry in rats with and without intraventricular colchicine injection. ANF-positive processes were present within the ovoid regions of the rostral subnucleus, the dorsal lateral subnuclei, and were densely concentrated along the medial aspects of the lateral subnuclei in the caudal half of the IPN. GAL-positive processes were concentrated within the lateral subnuclei, in a narrow band extending over the central and intermediate subnuclei, and within the central subnuclei. GAL-positive cell bodies were present in a narrow band ventral to the rostral subnucleus, and in the ventrolateral corners of the caudal IPN. CGRP-positive processes were primarily localized within the dorsal lateral subnuclei and dorsal aspects of the lateral subnuclei. The presence of ANF, GAL and CGRP peptides within the IPN in patterns similar to previously described localizations of substance P, vasoactive intestinal peptide, serotonin and Leu-enkephalin provides a morphologic basis for modulation of complex physiological actions yet to be elucidated.

Animals↗

Melanin-concentrating hormone: unique peptide neuronal system in the rat brain and pituitary gland.

A unique neuronal system was detected in the rat central nervous system by immunohistochemistry and radioimmunoassay with antibodies to salmon melanin-concentrating hormone (MCH). MCH-like immunoreactive (MCH-LI) cell bodies were confined to the hypothalamus. MCH-LI fibers were found throughout the brain but were most prevalent in hypothalamus, mesencephalon, and pons-medulla regions. High concentrations of MCH-LI were measured in the hypothalamic medial forebrain bundle (MFB), posterior hypothalamic nucleus, and nucleus of the diagonal band. Reversed-phase high-performance liquid chromatography of MFB extracts from rat brain indicate that MCH-like peptide from the rat has a different retention time than that of the salmon MCH. An osmotic stimulus (2% NaCl as drinking water for 120 hr) caused a marked increase in MCH-LI concentrations in the lateral hypothalamus and neurointermediate lobe. The present studies establish the presence of MCH-like peptide in the rat brain. The MCH-LI neuronal system is well situated to coordinate complex functions such as regulation of water intake.

Animals↗

Distribution of corticotropin-releasing factor receptors in primate brain.

The distribution and properties of receptors for corticotropin-releasing factor (CRF) were analyzed in the brain of cynomolgus monkeys. Binding of [125I]tyrosine-labeled ovine CRF to frontal cortex and amygdala membrane-rich fractions was saturable, specific, and time- and temperature-dependent, reaching equilibrium in 30 min at 23 degrees C. Scatchard analysis of the binding data indicated one class of high-affinity sites with a Kd of 1 nM and a concentration of 125 fmol/mg (approximately equal to 30% of the receptor number in monkey anterior pituitary membranes). As in the rat pituitary and brain, CRF receptors in monkey cerebral cortex and amygdala were coupled to adenylate cyclase. Autoradiographic analysis of specific CRF binding in brain sections revealed that the receptors were widely distributed in the cerebral cortex and limbic system. Receptor density was highest in the pars tuberalis of the pituitary and throughout the cerebral cortex, specifically in the prefrontal, frontal, orbital, cingulate, insular, and temporal areas, and in the cerebellar cortex. A very high binding density was also present in the hippocampus, mainly in the dentate gyrus, and in the arcuate nucleus and nucleus tuberis lateralis. A high binding density was present in the amygdaloid complex and mamillary bodies, olfactory tubercle, and medial portion of the dorsomedial nucleus of the thalamus. A moderate binding density was found in the nucleus accumbens, claustrum, caudate-putamen, paraventricular and posterior lateral nuclei of the thalamus, inferior colliculus, and dorsal parabrachial nucleus. A low binding density was present in the superior colliculus, locus coeruleus, substantia gelatinosa, preoptic area, septal area, and bed nucleus of the stria terminalis. These data demonstrate that receptors for CRF are present within the primate brain at areas related to the central control of visceral function and behavior, suggesting that brain CRF may serve as a neurotransmitter in the coordination of endocrine and neural mechanisms involved in the response to stress.

Adenylyl Cyclases↗