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Biomedical subjects

J C Troncoso

Publications and source records attributed to J C Troncoso.

At least 19 recordsLinked to original sources

A new series of trpE vectors that enable high expression of nonfusion proteins in bacteria.

Expression of recombinant proteins in bacteria has facilitated the characterization of many gene products. However, the biochemical characterization of recombinant proteins is limited since the bacterially expressed proteins are often synthesized as fusion polypeptides. The presence of bacterial sequences in fusion proteins further limits the use of these proteins for generating antibodies since the bacterial sequences are also antigenic. We describe two new bacterial expression vectors based on the pATH series of plasmids. These vectors were made by precisely deleting all of the trpE coding sequences found in pATH. The new vectors have enabled us to express eukaryotic genes as nonfusion polypeptides. These altered plasmids can be used to insert any DNA sequence of interest through a multiple cloning site located just 3' of an ATG start codon. Protein expression is still under the control of the trp operon and is carried out at great efficiency when the bacteria are tryptophan deprived. Studies presented here test the expression system with neurofilament subunits, NF-L and NF-H. Large amounts of recombinant nonfusion proteins were produced. Also, a time course of induction shows that the production of the nonfusion proteins was under the control of the trp operon which is readily inducible after tryptophan starvation and addition of indoleacrylic acid. These vectors may be useful for the overexpression of many proteins in a form closely approximating their native state.

Amino Acid Sequence

Aluminum-induced neurofilamentous changes in cultured rat dorsal root ganglia explants.

Intrathecal administration of aluminum (AI) salts to susceptible species causes prominent accumulations of neurofilaments (NFs) in neurons of the CNS. Involved nerve cells display abnormal phosphorylation of perikaryal NFs, impaired axonal transport of NFs, and reduced levels of mRNA for NF proteins. Further understanding of the pathogenesis of AI toxicity has been limited by difficulties inherent in the available in vivo systems. For this reason, we have developed a model to study the effects of AI on cultured sensory neurons. Explant cultures of rat dorsal root ganglia (DRG) were exposed to 1 mM aluminum lactate for 1 d, 3 d, or 7 d and then examined morphologically. Accumulations of NFs were noted as early as 1 d after exposure, and prominent masses of NFs were seen at 3 and 7 d. Northern analysis of mRNA extracted from the cultured ganglia showed that high, medium, and low molecular weight NF protein mRNA levels were markedly reduced compared to control values by 1 d of exposure. Class II beta-tubulin mRNA was also moderately decreased. Reversibility of toxicity was assessed by removing the aluminum lactate from the medium after a 3 d exposure and examining the cultures 1 week later. The perikaryal masses of NFs dispersed and the levels of mRNA coding for the NF proteins and class II beta-tubulin increased. The neurotoxic effects of AI on cultured DRG recapitulates the effects of intrathecal administration of AI on animals; this model produces similar changes in neuronal morphology with neurofilamentous masses and similar modifications of NF gene expression.(ABSTRACT TRUNCATED AT 250 WORDS)

Aluminum

Altered excitatory and inhibitory amino acid receptor binding in hippocampus of patients with temporal lobe epilepsy.

We examined binding to excitatory amino acid and inhibitory amino acid receptors in frozen hippocampal sections prepared from surgical specimens resected from 8 individuals with medically refractory temporal lobe epilepsy. The excitatory receptors studied included N-methyl-D-aspartate (NMDA), strychnine-insensitive glycine, phencyclidine, and quisqualate. The inhibitory receptors studied were gamma-aminobutyric acid type A (GABAA) and benzodiazepine. Excitatory and inhibitory amino acid receptor binding were differentially altered in the patients with temporal lobe epilepsy in comparison to 8 age-comparable autopsy control subjects, and changes in receptor binding were regionally selective in four areas. Binding to phencyclidine receptors associated with the NMDA channel was reduced by 35 to 70% in all regions in the hippocampi of the patients. In contrast, binding to the NMDA recognition site and its associated glycine modulatory site was elevated by 20 to 110% in the cornu ammonis (CA) 1 area and dentate gyrus of the hippocampus of the patients. Binding to these sites was unaffected in area CA4. Binding to the quisqualate-type excitatory amino acid receptor was unchanged in all regions except the stratum lacunosum moleculare CA1, where it was increased by 63%. GABAA and benzodiazepine receptor binding was reduced by 20 to 60% in CA1 and CA4, but unchanged in dentate gyrus. The data indicate that excitatory and inhibitory amino acid receptors are altered in the hippocampus of patients with temporal lobe epilepsy.

Adult

The regulatory role of calmodulin in the proteolysis of individual neurofilament proteins by calpain.

The in vitro degradation of individual neurofilament proteins by calpain and the effects of calmodulin on this proteolysis were studied. Two major results are reported. First, in the presence of calcium, calmodulin binds to the 200-kD neurofilament protein, but only weakly associates with the 150-kD neurofilament protein. The 70-kD neurofilament protein shows no specific calmodulin-binding. Second, calmodulin inhibits the calpain-mediated degradation of the 200-kD neurofilament protein, but does not alter the hydrolysis of the 150-kD and 70-kD neurofilament proteins. In addition, calmodulin is able to bind to the 200-kD neurofilament protein in the presence of other neurofilament subunits, indicating that calmodulin may play a role in the regulation of the metabolism of the 200-kD neurofilament protein in vivo.

Animals

The effect of aluminum on markers for synaptic neurotransmission, cyclic AMP, and neurofilaments in a neuroblastoma x glioma hybridoma (NG108-15).

The effects of the neurotoxin aluminum on markers of synaptic neurotransmission, adenosine 3',5'-monophosphate, and neurofilaments have been evaluated in a neuroblastoma x glioma hybridoma (NG108-15). Cells were exposed for 4 days to 2 mM aluminum lactate, a concentration that did not suppress growth. Compared to controls, the activity of choline acetyltransferase was significantly increased by 37% associated with an up-regulation in enzyme activity (Vmax). Muscarinic receptors, measured by [3H]QNB binding, were reduced by 41%. In contrast, the activities of acetylcholinesterase and glutamate decarboxylase were not significantly changed. Aluminum raised the level of cyclic AMP by 20%, although adenylate cyclase activity was unchanged. Small amounts of both phosphorylated and non-phosphorylated neurofilaments were detected in NG108-15 cells. Aluminum intoxication, however, did not alter the quantity, ultrastructure, or immunoreactivity of neurofilaments. Our results demonstrate the capability of aluminum to produce selected changes in cholinergic markers and levels of cyclic AMP in a rapidly dividing cell line.

Aluminum

The human pineal gland in aging and Alzheimer's disease: patterns of cytoskeletal antigen immunoreactivity.

Patients with Alzheimer's disease (AD) and some aged controls may have diminished functions of the pineal gland. In this immunocytochemical study, we stained pineal glands from cases of AD and young and aged controls for cytoskeletal elements and amyloid. We found no evidence of neurofibrillary tangles (NFT) or the accumulation of neurofilaments, tau, A68, or beta/A4 amyloid deposition in pinealocytes or associated structures in cases of AD or controls. In both AD and controls, we observed dense immunoreactivity for phosphorylated neurofilaments in marginal plexuses associated with processes of pinealocytes, boutons, and knob-like endings. The accumulation of phosphorylated neurofilaments in the processes of pinealocytes appears to be a normal morphological characteristic of the pineal gland and may not represent a pathological change.

Adolescent

Effect of aluminum and other multivalent cations on neurofilaments in vitro: an electron microscopic study.

Using electron microscopy (EM) of negatively stained samples, we have systematically explored the effect of aluminum and other multivalent cations on neurofilaments (NFs) in vitro. Interactions of these cations were investigated with bovine, rabbit, and rat spinal cord native NFs, and with 10-nm filaments reconstituted from the 68-kDa subunit (NF-L) isolated from bovine spinal cord. Our results indicated that, as has been observed with other classes of intermediate filaments (IFs), all multivalent cations caused significant aggregation of native NFs, suggesting that this phenomenon is a rather general one and not limited to aluminum. In addition, all cations tried caused significant lateral aggregation of filaments reconstituted from NF-L. Aluminum lactate had an identical effect on bovine, rabbit, and rat NFs. Because aluminum causes strong aggregation of NFs in vitro, a similar phenomenon may occur in vivo leading to the observed accumulation of NFs in neuronal perikarya of rabbits after intoxication with aluminum. These in vitro observations support the concept that some human neurological diseases characterized by the accumulation of NFs may be related to abnormal levels of multivalent cations.

Aluminum

Neuronal disorders: studies of animal models and human diseases.

The peripheral nervous system and the central nervous system (CNS) are comprised of assemblies of neurons that communicate via electrical and chemical signals. Different disease processes selectively affect specific populations of neurons and/or specific cell functions (i.e., "selective vulnerability" of neurons is a principal determinant of phenotypes of disease). New cellular and molecular biological approaches have begun to clarify some of the mechanisms of selective cell injury in human diseases and their animal models. Following a brief review of the normal biology of nerve cells, we use illustrations drawn from studies of experimental and human diseases to discuss the mechanisms of structural/chemical abnormalities that occur in a variety of neuronal disorders.

Animals

Bilateral opercular polymicrogyria.

Foix-Chavany-Marie syndrome (FCMS), or faciopharyngoglossomasticatory diplegia, is an uncommon syndrome that can result from vascular or developmental lesions of the anterior opercula bilaterally. We report the first pathological documentation of the developmental form of this disorder. Pathological examination revealed bilateral failure of opercular closure, opercular polymicrogyria, periventricular gray-matter heterotopias, and absence of the septum pellucidum.

Adult

Dural scrofula.

A middle-aged woman presenting with multiple cranial neuropathies, hemiparesis, and CSF pleocytosis had tuberculous infection of the cranial dura mater at autopsy. This is the first description of dural scrofula in modern medical literature.

Autopsy

Age-specific characteristics of brain death in children.

Clinical and neuropathologic characteristics of 45 children who met criteria for brain death were analyzed. Children between 2 months and 1 year of age were compared with children older than 1 year and children older than 5 years. The observation period to fulfill brain death criteria was not different between the age groups. Deep tendon and spinal reflexes were preserved significantly less frequently in children younger than 1 year old. Diabetes insipidus and the necessity of inotropic support were significantly more frequent in children older than 5 years. Fifty-eight percent (26/45) of patients had no cerebral perfusion pressure before death. However, 18% (8/45) of patients never had a cerebral perfusion pressure below 40 mm Hg. No relationships could be shown between the clinical or physiologic factors and neuropathologic findings. We found no support for using different brain-death criteria for children between 2 months and 1 year of age.

Adolescent

Aluminum neurotoxicity: altered expression of cytoskeletal genes.

To better understand perturbations of the neuronal cytoskeleton that occur in several mammalian disorders, we have focused on an animal model in which neurofibrillary pathology follows the administration of aluminum salts. In susceptible species, the injection of aluminum produces accumulations of neurofilaments (NFs) in cell bodies and proximal axons of certain populations of neurons. Mechanisms involved in the production of these abnormalities are unclear; in particular, the role of gene expression in the genesis of this type of neurofibrillary pathology has not been examined. In this study of aluminum-intoxicated rabbits, the expression of genes coding for several cytoskeletal proteins was studied in the spinal cord and dorsal root ganglia (DRG)--tissues with and without neurofibrillary pathology, respectively. In aluminum-treated rabbits, in situ hybridization using a cDNA probe demonstrated the presence of mRNA coding for the 68-kDa NF (NF-L) protein in spinal cord motor neurons with NF accumulations as well in unaffected neurons. On Northern blots, the expression of genes coding for the NF-L protein and tubulin was reduced by approximately 3.5-fold and 3-fold, respectively, in spinal cords of aluminum-intoxicated rabbits as compared to controls. On blots, levels of actin mRNA were not significantly different in spinal cords of aluminum-treated rabbits as compared to controls, but there was a trend for a slight reduction. In DRG of intoxicated animals, the expression of genes coding for these cytoskeletal proteins was not altered.

Aluminum

Neurofilamentous abnormalities in motor neurons in spontaneously occurring animal disorders.

Cytoskeletal proteins have a characteristic distribution within neurons when immunocytochemical techniques are used on conventional paraffin sections. For example, phosphorylated neurofilaments are located within axons but are not normally present in the majority of perikarya of the central nervous system. This pattern can be altered in disease, and neurofilaments that accumulate within perikarya can be phosphorylated inappropriately. To determine whether retained neurofilaments were phosphorylated inappropriately, we used immunocytochemical techniques to examine several diseases in animals in which neurofilaments accumulate within neuronal perikarya. Our investigations of diseases with disparate etiologies show that, whenever neurofilaments are retained within the neuronal perikarya, they are phosphorylated. These results suggest that phosphorylation of neurofilaments in an inappropriate location, i.e. perikarya, may be a nonspecific disease-related response of neurons that can be initiated by a variety of cellular injuries.

Animal Diseases

Research on Rett syndrome: strategy and preliminary results.

The research strategy presented here involves four assumptions: (1) Rett syndrome exists; (2) a single cause will eventually be found to account for the majority of cases presently assigned to this disease category; (3) it is genetically determined; and (4) it represents a neurodegenerative disorder that can be defined by quantitative studies of nervous system structure and function. The strategy proposed here involves the comprehensive study of 100 patients with the classic Rett syndrome phenotype. Studies include the (1) search for a diagnostic marker; (2) high-resolution cytogenetic banding techniques, (3) quantitative morphologic studies of postmortem brain tissue as well as neurochemical analyses including autoradiographic techniques, radioimmunoassays, and in situ hybridization; and (4) positron emission tomography studies of cerebral glucose metabolism and neurotransmitters.

Adolescent

Immunocytochemical studies of neurofilament antigens in the neurofibrillary pathology induced by aluminum.

Intrathecal administration of aluminum salts induces accumulation of neurofilaments in axons and perikarya of motor neurons and is associated with impaired axonal transport of neurofilament proteins. Because phosphorylation of the 200-kilodalton (kd) neurofilament protein, thought to be a major component of the sidearms, seems to be important in interactions of neurofilaments with other cytoskeletal elements, we have postulated that aluminum may produce neurofibrillary pathology by altering patterns of neurofilament phosphorylation. To test this hypothesis, antibodies against phosphorylated and non-phosphorylated neurofilament epitopes were used for immunocytochemical analysis of spinal cord sections from aluminum-injected rabbits. In control animals, phosphorylated 200-kd neurofilament proteins were not demonstrable in perikarya of motor neurons. In experimental rabbits, perikarya and proximal axons of affected motor neurons showed striking accumulations of immunoreactivity of one phosphorylated epitope. The presence of phosphorylated 200-kd neurofilament proteins in these regions may have important consequences for the organization of the cytoskeleton and for the transport of neurofilaments. A similar, but not identical, pattern of accumulation of phosphorylated neurofilament immunoreactivity has recently been observed in neurofibrillary tangles in Alzheimer's disease.

Aluminum

Evaluation of sudden death in epilepsy.

Records of the Office of the Chief Medical Examiner of the State of Maryland were reviewed for all cases of natural deaths due to epilepsy occurring in 1981 and 1982. Cases involving unclear seizure history, alcoholism, or other superimposed disorders were excluded. Twenty-nine cases were accepted and analyzed with respect to age, race, sex, circumstances of death, neuropathology, and anticonvulsant therapy. Most cases involved black males, the median age at death was 26 years, and the vast majority died in bed or in the bedroom. Less than half of these individuals had neuropathological lesions. Most had detectable levels of anticonvulsants in post-mortem blood; more than half the decedents with detectable levels of phenobarbital showed therapeutic levels of this drug.

Acute Disease

Neurotransmitter receptors in olivopontocerebellar atrophy: an autoradiographic study.

We used in vitro receptor autoradiography to study four cases of olivopontocerebellar atrophy (OPCA) and three age- and postmortem delay-matched controls. In OPCA, benzodiazepine receptors were unchanged in cerebellar cortex but increased in the dentate nucleus, perhaps related to loss of Purkinje cell or brainstem afferents. Muscimol binding was reduced primarily in the granule cell layer. The density of muscarinic cholinergic receptors was reduced in molecular and granule cell layers, but appeared increased in the dentate.

Aged