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Biomedical subjects

C Ferrarese

Publications and source records attributed to C Ferrarese.

At least 19 recordsLinked to original sources

Hepatic protoporphyria is associated with a decrease in ligand binding for the mitochondrial benzodiazepine receptors in the liver.

Protoporphyrin IX (PP) and N-methylprotoporphyrin IX (N-MePP) added in vitro to liver membranes reduced dose-dependently the affinity of [3H]PK 11195 for the mitochondrial benzodiazepine receptors (MBRs), the latter being about 20 times more potent (Ki 4.5 and 0.25 microM). Preincubation of these two porphyrins with liver homogenates for 120 min at 4 degrees resulted in significant inhibition of [3H]PK 11195 binding even after repeated washings of the membranes due to the residual presence in the membranes of about 35 and 5% of PP and N-MePP, respectively. Thus, the hypothesis that an in vivo increase in the hepatic porphyrin content modifies the binding of the isoquinoline PK 11195 to the MBRs was investigated in an experimental model of protoporphyria. PP and N-MePP were allowed to accumulate in vivo through treatment with 3,5-diethoxycarbonyl-1, 4-dihydrocollidine (DDC) (100 mg/kg i.p., once), and rats were killed 5 h after treatment when hepatic porphyrin accumulation was marked (10-fold increase), PP predominating. In the liver, treatment reduced the affinity (Kd) of [3H]PK 11195 for MBRs (from 3.56 to 15.37 nM, P < 0.01) and the maximum number of binding sites (Bmax) (55% decrease, P < 0.05); the affinity (Ki) of RO 5-4864 for [3H]PK 11195 binding sites was also reduced (from 23.9 to 72.99 nM, P < 0.05). No significant differences were found in the brain cortex. Liver and brain diazepam binding inhibitor levels and plasma corticosterone levels were unchanged. The reduction in [3H]PK 11195 binding to MBRs in the liver of DDC-treated rats thus appears to be attributable to a specific effect of the DDC-induced formation of the two protoporphyrins; this conclusion suggests that in hepatic protoporphyria processes modulated by MBRs may be altered.

5-Aminolevulinate Synthetase

Acute noise stress in rats increases the levels of diazepam binding inhibitor (DBI) in hippocampus and adrenal gland.

We investigated the effect of acute noise-induced stress on the concentrations of diazepam binding inhibitor (DBI) and its processing products in brain regions and adrenal glands of rats. DBI levels in hippocampus began to increase at 15 and 30 min and became significantly higher (+100%) at 90 and 120 min after stress; they returned to normal values at 360 min. While basal DBI levels were similar in the left and right hippocampus, the stress-induced increase of DBI levels was significantly higher in the left compared to the right side. A significant increase was also detected in the adrenals; here, the time course of DBI increase paralleled that of previously reported plasma corticosterone in stressed rats, being significantly higher 30 min after stress, and recovering to normal values at 60 and 90 min. After acute noise-induced stress, no significant change of DBI levels was detectable in cerebral cortex, striatum, hypothalamus and cerebellum. The present study reports for the first time the occurrence of a modification of DBI and its processing products (ODN-like immunoreactivity) in an experimental model of stress, and suggests a role for these neuropeptides in emotional responses.

Adrenal Glands

In vivo study of NMDA-sensitive glutamate receptor by fluorothienylcyclohexylpiperidine [correction of fluorothienylcycloexylpiperidine], a possible ligand for positron emission tomography.

As a preliminary to positron emission tomography (PET) studies of excitatory amino acid neurotransmission, N-methyl-D-aspartate (NMDA)-sensitive glutamate receptors of mice and rats were labelled in vivo with [3H]fluorothienylcyclohexylpiperidine [corrected] (FTCP), which binds to the phencyclidine site of the NMDA receptor. After intravenous injection, the half-life of clearance of authentic FTCP from blood was 4.2 min in mice, 12 min in rats and 45 min in a rhesus monkey. In rodent brain, the specific binding of [3H]FTCP, 10 min after intravenous injection, was 10-20% of the total binding and no regional differences were observed. However, if animals were treated with NMDA intraperitoneally (0.68 mmol/kg), 10 min before injection of [3H]FTCP, a three- to five-fold increase in specific binding was observed in hippocampus, cerebral cortex and striatum but not in cerebellum. Thus, specific binding of [3H]FTCP in vivo revealed the physiological status of the NMDA receptor; in fact, preliminary PET studies with [18F]FTCP in monkeys indicated increased binding after activation of NMDA receptors. These data suggest that PET with [18F]FTCP can be a tool to evaluate physiological or pathological modifications of the function of NMDA receptors.

Animals

Diazepam binding inhibitor (DBI) increases after acute stress in rat.

Diazepam binding inhibitor (DBI) acts in brain by binding to GABAA/benzodiazepine receptors (GBR) and to mitochondrial benzodiazepine receptors (MBR). Because DBI acting at MBR, has been shown to be an effector of ACTH-induced steroidogenesis and stress is known to change the level of GBR and MBR, the model of acute noise stress in rats was used to study modifications of DBI and GRB or the content of MBR in various areas of the brain and adrenal gland. It was found that, in the brain of stressed rats, DBI and its processing products (ODN-like immunoreactivity), increased selectively in the hippocampus. This increase in the content of DBI was preceded and followed by a net decrease of GBR and an increase of MBR. Similarly, in adrenal cortex, the content of DBI and MBR increased during the first hour, following acute stress and this increase paralleled the increase in plasma corticosterone. These data suggest that DBI, acting on MBR may regulate steroidogenic function in stress.

Adrenal Glands

Distribution and characterization of diazepam binding inhibitor (DBI) in peripheral tissues of rat.

We studied the expression and distribution of the polypeptide diazepam binding inhibitor (DBI) in rat peripheral organs by immunocytochemistry, radioimmunoassay, Northern blot analysis and binding assay. Variable amounts of the DBI peptide and DBI mRNA were found in all the tissues examined (liver, duodenum, testis, kidney, adrenal gland, heart, ovary, lung, skeletal muscle and spleen), with the highest level of expression in liver (220 pmol of DBI/mg protein) and the lowest in spleen (11 pmol of DBI/mg protein). A good correlation between DBI-like immunoreactivity (DBI-LI) and mRNA content was found in all tissues except the heart. The immunohistochemical analysis revealed discrete localization of DBI-LI in cell types with specialized functions: for example, the highest DBI-LI content was found in steroid-producing cells (glomerulosa and fasciculata cells of adrenal cortex, Leydig cells of testis); lower DBI-LI immunostaining was found in epithelial cells specialized for water and electrolyte transport (intestinal mucosa, distal convoluted tubules of kidney). Hepatic cells contained moderate immunoreactivity however the total content of DBI in liver is relatively high and is due to the diffuse presence of DBI in every hepatocyte. Cells with high expression of DBI have been shown to contain a high density of mitochondrial benzodiazepine (BZ) binding sites. This observation led us to perform a competitive binding assay between DBI and [3H]PK11195 (a ligand for the mitochondrial BZ binding sites) on mitochondrial membranes of adrenal cortical cells. In this experiment, DBI yielded an apparent competitive inhibition of the binding of PK11195 to the BZ binding sites. Our data support a possible role for DBI as endogenous regulator of intracellular metabolic functions, such as steroidogenesis, via the mitochondrial BZ receptors.

Animals

Characterization of peripheral benzodiazepine receptors in human blood mononuclear cells.

In the present study, peripheral-type benzodiazepine receptors in human circulating mononuclear cells were characterized, using [3H]PK 11195 as specific ligand. The specific binding was saturable, with a Bmax of 14 pmol/mg protein and a Kd of 7 nM. The pharmacological characterization, using different displacing drugs, indicated a mitochondrial type of peripheral benzodiazepine receptor since it was not coupled to the GABA receptor and was displaced by protoporphyrin IX. These data indicate that human circulating mononuclear cells possess benzodiazepine recognition sites, similar to non-neuronal receptors. The role of these receptors and possible modifications in different diseases need to be investigated.

Adult

Decreased density of benzodiazepine receptors in lymphocytes of anxious patients: reversal after chronic diazepam treatment.

Peripheral-type benzodiazepine receptors were measured in human circulating lymphocytes using 3H-PK 11195 as specific ligand. In a group of outpatients with anxiety disorders a significant decrease of receptor density (-37%) was found compared with age-matched controls. In these patients long-term diazepam treatment restored binding density to normal levels: the effect persisted after drug withdrawal. Acute i.v. diazepam administration did not change receptor density. The observed receptor changes could reflect a down-regulation phenomenon and indicate that lymphocyte function reflect central nervous events.

Anxiety Disorders

Decrease in phorbol ester receptors in human brain tumors.

We have characterized the specific binding of [3H]-phorbol-12,13-dibutyrate in the white and gray matter of normal human brain and in cerebral tumors as an index of the availability of protein kinase C enzyme molecules. White matter has less than 50% phorbol-ester-binding capacity in comparison to gray matter. The binding is lower in tumors of glial origin when compared with normal white matter. Tumors of nonglial origin such as neurinoma and meningioma have a lower binding capacity than glial tumors. Metastatic tissues have the lowest binding capacity. The analysis of binding parameters in tumors and in the corresponding normal peritumoral tissues confirms the decreased binding capacity of neoplastic tissues in comparison to tissues not undergoing malignant transformation. These data suggest that brain glial tumors have a low availability of protein kinase C enzyme molecules and point to the potential involvement of this system in malignant transformation of human brain cells.

Adult

Cerebrospinal fluid levels of diazepam-binding inhibitor in neurodegenerative disorders with dementia.

We investigated CSF levels of diazepam-binding inhibitor (DBI), a recently discovered neuropeptide that allosterically modulates GABAergic transmission, in various neurodegenerative disorders with dementia (28 patients with Parkinson's disease, 10 with Alzheimer's disease, 7 with Huntington's chorea). We applied a battery of neuropsychological tests to determine the degree of dementia and to exclude the presence of mood alterations. CSF DBI levels were elevated in parkinsonian subjects with dementia and in patients with Alzheimer's disease, but decreased in Huntington's chorea patients. We hypothesize that modifications of CSF DBI levels may be related to a functional or structural alteration of the GABAergic system.

Adult

Benzodiazepine receptors and diazepam-binding inhibitor in human cerebral tumors.

Benzodiazepines can regulate neoplastic growth and immune response through specific peripheral benzodiazepine receptors. We investigated the presence of peripheral and classic central benzodiazepine receptors as well as diazepam-binding inhibitor, an endogenous ligand of both types of receptors, in different human cerebral tumors. Peripheral benzodiazepine receptors were present in all the tumor types studied, whereas central benzodiazepine receptors and diazepam-binding inhibitor were detectable in astrocytomas and glioblastomas and undetectable in meningiomas, neurinomas, and metastases. The role of diazepam-binding inhibitor and of the different benzodiazepine receptors in neoplastic cells is still to be defined.

Adolescent

Distribution of a putative endogenous modulator of the GABAergic system in human brain.

Diazepam binding inhibitor (DBI) is a novel neuropeptide purified from rat, cow, and human brain that allosterically modulates GABAergic transmission by binding to benzodiazepine (BDZ)-recognition sites. Using a specific radioimmunoassay for human DBI, we investigated the distribution of this peptide in different brain areas. We characterized with high-pressure liquid chromatography the DBI immunoreactivity in brain tissue obtained by biopsy and autopsy; we detected one molecular species of DBI in both instances. The regional distribution of DBI in the human brain is similar to that observed in rat brain: high concentrations in cortical and limbic areas, cerebellum, and brainstem, and low concentrations in the basal ganglia. These data suggest a modulatory role for DBI in human brain.

Brain

Alpidem, a novel anxiolytic drug. A double-blind, placebo-controlled study in anxious outpatients.

The anxiolytic activity of alpidem (150 mg/day) and its effects on psychomotor performances were compared with placebo in 60 outpatients. The trial was a double-blind, parallel group, and the two treatments were administered orally in three divided doses for 3 weeks. Eighteen male and 42 female patients (mean age, 39.6 years) suffering from generalized anxiety or adjustment disorder with anxious mood of at least 1-month duration entered the trial at the end of a 1-week placebo run-in period designed to exclude early placebo responders. Efficacy was assessed with the Hamilton rating scale for anxiety (HRSA), the state-trait anxiety inventory (STAI x 1: anxiety as state), a visual analogue scale (VAS), and clinical global impression (CGI). Psychomotor performance was assessed by the digit symbol substitution test (DSST). Alpidem was significantly more effective than placebo in decreasing the severity of anxiety, both in the physician's judgment [total HRSA (p = 0.007), psychic symptoms (p = 0.0040), somatic symptoms (p = 0.0002)] and in the patients' evaluation [STAI x 1 (p = 0.0001) and VAS (p = 0.0003)]. Psychomotor performance was improved by both treatments; there was no difference between results with alpidem and placebo at the DSST (p = 0.2801), but the improvement was almost twofold on alpidem. Side effects were negligible with both treatments and the efficacy index, obtained from the CGI, was significantly better with alpidem than with placebo after day 7 (at least p less than 0.03).

Adult

Subsets of GABAergic neurons in dissociated cell cultures of neonatal rat cerebral cortex show co-localization with specific modulator peptides.

The GABAergic properties of dissociated neurons from cerebral cortex of neonatal rats were studied in primary culture using electrophysiological, biochemical and immunohistochemical methods. Cultured neurons had a resting potential of -50 to -60 mV and exhibited spontaneous excitatory and inhibitory synaptic currents. Non-spontaneous (elicited) ionic currents were produced by direct application of GABA and glutamate. Cultures contained measurable amounts of GABA from the first day in culture; GABA content reached a plateau around the 10th day of culture, and continued, nearly unchanged, until the 21st day of culture. Immunohistochemistry showed that 45% of the total cells in culture contained glutamic acid decarboxylase (GAD). Octadecaneuropeptide (ODN), a putative neuroregulatory peptide for benzodiazepine recognition sites, was present in approximately 28% of all neurons. Ninety-three percent of ODN-positive cells demonstrated GABAergic properties as well by displaying GAD-immunoreactivity. The peptide GABA-modulin (GM), a putative GABA receptor modulator, was found in about 75% of all neurons, with a further 65% of these cells exhibiting GAD-immunoreactivity. Cells immunopositive for neuropeptide Y (NPY), somatostatin (SRIF), and cholecystokinin-octapeptide (CCK), were found at much lower incidence (1-4%). Double-labelling studies showed that 90-97% of the cells positive for NPY, SRIF and CCK were also positive for GAD. Cells immunoreactive with serotonin or tyrosine hydroxylase were not detected. We suggest that primary cultures of neonatal cortical neurons may provide a useful experimental model to investigate the function and the modulation of GABAergic neurotransmission in the cerebral cortex.

Animals

Co-localization and co-release of GABA and putative allosteric modulators of GABA receptor.

Diazepam binding inhibitor (DBI) belongs to a family of newly discovered neuropeptides that, when acting on the benzodiazepine/beta-carboline recognition site, provide an allosteric modulation of the function of GABAA receptor. The molecular size of DBI (10K Da) and its amino acid sequence characteristics are compatible with the view that this polypeptide can function as a precursor of smaller biologically active neuropeptides. In neurons of the cerebral cortex of the neonatal rat, in primary culture, DBI coexists with at least 4 different processing products. These peptides immunoreact with an antiserum directed against a biologically active octadecaneuropeptide (ODN) amino acid sequence of which (QATVGDVNTDRPGLLDLK) is included in the middle portion of the amino acid sequence of DBI. One of the immunoreactive peptides extracted from neurons has a retention time in high pressure liquid chromatography (HPLC) identical to that of synthetic ODN. Double immunofluorescence staining of the cultured neurons with glutamic acid decarboxylase (GAD) and antibodies for ODN indicates that ODN and ODN-like peptides are localized with GABA in 58% of the GAD-positive neurons. Moreover, the proportion of the neuronal stores of GABA, ODN, DBI-like peptides and DBI that are released together following depolarization with veratridine is similar. These experiments provide evidence to suggest that ODN, ODN-like peptides derived from DBI, might participate as putative neuromodulators of physiological significance in changing the probability that a quantum of GABA opens specific chloride (Cl-) channels located on post-synaptic cell membranes.

Amino Acid Sequence

Protracted treatment with diazepam increases the turnover of putative endogenous ligands for the benzodiazepine/beta-carboline recognition site.

DBI (diazepam-binding inhibitor) is a putative neuromodulatory peptide isolated from rat brain that acts on gamma-aminobutyric acid-benzodiazepine-Cl- ionophore receptor complex inducing beta-carboline-like effects. We used a cDNA probe complementary to DBI mRNA and a specific antibody for rat DBI to study in rat brain how the dynamic state of DBI can be affected after protracted (three times a day for 10 days) treatment with diazepam and chlordiazepoxide by oral gavage. Both the content of DBI and DBI mRNA increased in the cerebellum and cerebral cortex but failed to change in the hippocampus and striatum of rats receiving this protracted benzodiazepine treatment. Acute treatment with diazepam did not affect the dynamic state of brain DBI. An antibody was raised against a biologically active octadecaneuropeptide (Gln-Ala-Thr-Val-Gly-Asp-Val-Asn-Thr-Asp-Arg-Pro-Gly-Leu-Leu-Asp-Leu-Lys ) derived from the tryptic digestion of DBI. The combined HPLC/RIA analysis of rat cerebellar extracts carried out with this antibody showed that multiple molecular forms of the octadecaneuropeptide-like reactivity are present and all of them are increased in rats receiving repeated daily injections of diazepam. It is inferred that tolerance to benzodiazepines is associated with an increase in the turnover rate of DBI, which may be responsible for the gamma-aminobutyric acid receptor desensitization that occurs after protracted benzodiazepine administration.

Animals

Subcellular location and neuronal release of diazepam binding inhibitor.

Diazepam binding inhibitor (DBI), a peptide located in CNS neurons, blocks the binding of benzodiazepines and beta-carbolines to the allosteric modulatory sites of gamma-aminobutyric acid (GABAA) receptors. Subcellular fractionation studies of rat brain indicate that DBI is compartmentalized. DBI-like immunoreactivity is highly enriched in synaptosomes obtained by differential centrifugation in isotonic sucrose followed by a Percoll gradient. In synaptosomal lysate, DBI-like immunoreactivity is primarily associated with synaptic vesicles partially purified by differential centrifugation and continuous sucrose gradient. Depolarization induced by high K+ levels (50 mM) or veratridine (50 microM) released DBI stored in neurons of superfused slices of hypothalamus, hippocampus, striatum, and cerebral cortex. The high K+ level-induced release is Ca2+ dependent, and the release induced by veratridine is blocked by 1.7 microM tetrodotoxin. Depolarization released GABA and Met5-enkephalin-Arg6-Phe7 together with DBI. DBI is also released by veratridine depolarization, in a tetrodotoxin-sensitive fashion, from primary cultures of cerebral cortical neurons, but not from cortical astrocytes. Depolarization fails to release DBI from slices of liver and other peripheral organs. These data support the view that DBI may be released as a putative neuromodulatory substance from rat brain neurons.

Animals

Peripheral and central origin of Phe-Met-Arg-Phe-amide immunoreactivity in rat spinal cord.

Phe-Met-Arg-Phe-amide immunoreactivity (FMRF-NH2-IR) is highly concentrated in the dorsal horn of rat spinal cord, and particularly in nerve terminals of lamina I. In order to establish the location of the cell bodies of the lamina I terminals containing FMRF-NH2-IR, we measured by radioimmunoassay the FMRF-NH2-IR in sensory ganglia and in spinal roots. FMRF-NH2-IR was found in both tissues, and reverse-phase HPLC analysis revealed that both tissues contain the same molecular forms that are also present in the spinal cord. Lumbo-sacral rhizotomy induced a 50% decrease of FMRF-NH2-IR in the lumbar segment of the spinal cord suggesting that at least a portion of the FMRF-NH2-IR present in this tissue is of peripheral origin. Transection of the spinal cord at the midthoracic level induced a 20-50% decrease of FMRF-NH2-IR in the lumbar segment of the spinal cord suggesting also the presence of FMRF-NH2-IR in descending pathways.

Animals