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Biomedical subjects

I Appollonio

Publications and source records attributed to I Appollonio.

10 recordsLinked to original sources

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

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