PubMed Health⌕ Search

Biomedical subjects

H Nagamoto

Publications and source records attributed to H Nagamoto.

14 recordsLinked to original sources

Kainic acid lesions in adult rats as a model of schizophrenia: changes in auditory information processing.

Previous studies have suggested that intracerebroventricular kainic acid injections alter brain anatomy and neurochemistry in a manner similar to what is observed in schizophrenic patients. Disturbances in sensory information processing are one of the major symptoms of schizophrenia. Thus, the present experiments were designed to evaluate the hypothesis that hippocampal damage, induced by administration of kainic acid, would alter the processing of auditory stimuli in a paired-click paradigm. Adult male Sprague-Dawley rats were implanted for surface recording of auditory evoked potentials. At the time of electrode implantation, the rats also received bilateral injections of either kainic acid or the vehicle solution. In vehicle-treated rats, the midlatency N40 component of the auditory evoked potential was diminished in amplitude by approximately 60% in response to the second of a pair of clicks delivered 0.5 s apart. By contrast, no reduction of the N40 wave evoked by the second click was observed in kainate-treated rats. Further, administration of haloperidol, a prototypical neuroleptic agent, did not improve this auditory processing dysfunction in kainate-treated animals. Loss of auditory filtering in the paired-click paradigm and a lack of response to haloperidol in this test are typically observed in schizophrenic humans. Thus, the present results demonstrate that kainate-lesioned rats possess a functional schizophrenia-like abnormality, further reinforcing the utility of this model system for studying the basic neurobiology of schizophrenia-induced sensory processing deficits.

Acoustic Stimulation↗

Schizophrenia, sensory gating, and nicotinic receptors.

A series of human and animal investigations has suggested that altered expression and function of the alpha7-nicotinic cholinergic receptor may be responsible for the auditory sensory gating deficit characterized in schizophrenia patients and their relatives as diminished suppression of an auditory-evoked response (P50) to repeated stimuli. This finding, in conjunction with evidence for familial transmission of this sensory gating deficit, suggests a pathogenic role of the gene for the alpha7-nicotinic receptor in schizophrenia. This article considers the possible effects of this dysfunction in a broader context. Not only is this dysfunction consistent with difficulties in sensory gating, but it might also predispose patients to problems with learning efficiency and accuracy. Such learning problems could underlie schizophrenia patients' delusional thinking, hallucinations, and social dysfunction. In addition, heavy smoking in many schizophrenia patients is consistent with the high concentration of nicotine necessary to activate the receptor and with the receptor's extremely rapid desensitization. Finally, the receptor's possible role in cell growth and differentiation should be considered in connection with developmental deficits and other cellular abnormalities in schizophrenia.

Animals↗

OPC-6535, a superoxide anion production inhibitor, attenuates acute lung injury.

A large body of evidence has demonstrated that inhibition of the neutrophil's oxidant burst attenuates sepsis-induced acute lung injury. The present study sought to evaluate the ability of OPC-6535, a superoxide anion production inhibitor, to attenuate sepsis-induced acute lung injury. Four groups of swine were anesthetized, ventilated, and studied for 5 hr. Following surgical preparation, control (n = 10) and OPC-control (n = 2) animals received a 1-hr infusion of sterile saline. Sepsis was induced with a 1-hr intravenous infusion of live Pseudomonas aeruginosa. Untreated septic animals (n = 10) received no treatment. Animals treated with OPC-6535 (n = 6) received a 1 mg/kg bolus of OPC-6535 15 min prior to initiation of the bacterial infusion. Changes in systemic and pulmonary hemodynamics, arterial oxygen tension, bronchoalveolar lavage protein and neutrophil content, neutrophil integrin expression, neutrophil oxidant burst, and lung myeloperoxidase content were used as outcome measures. Treatment with OPC-6535 significantly reduced acute lung injury, as indicated by improved bronchoalveolar lavage protein and neutrophil content, resulting in a significant improvement in arterial oxygenation. Treatment with OPC-6535 failed to prevent the development of pulmonary hypertension and systemic hypotension. Neutrophils from animals with both treated and untreated sepsis exhibited significant up-regulation of CD18 and production of increased levels of oxidants, indicating significant activation when compared to neutrophils from control animals. Although animals treated with OPC-6535 produced 25% less superoxide anion than untreated septic animals, this decrease was not statistically significant. Treatment of animals with OPC-6535 prior to the onset of sepsis produced significant protection against acute lung injury but failed to attenuate hemodynamic derangements associated with sepsis.

Administration, Inhalation↗

Novel thiazole derivatives as inhibitors of superoxide production by human neutrophils: synthesis and structure-activity relationships.

Neutrophils have an important role in the self-defense systems of organisms through the production of superoxide. On the other hand, it has been proposed that abnormal amounts of superoxide produced by neutrophils are a serious factor in tissue injury. A series of novel thiazole derivatives was prepared and evaluated inhibitory effect on superoxide production by human neutrophils in vitro. Among these compounds, 6-[2-(3,4-diethoxyphenyl)thiazol-4-yl]-pyridine-2-carboxylic acid (OPC-6535) was selected as one of the most promising compounds. The synthesis and structure-activity relationships of these compounds are reported herein.

Adult↗

Auditory sensory gating, hippocampal volume, and catecholamine metabolism in schizophrenics and their siblings.

Schizophrenia may result from the concerted action of several pathophysiological factors. This pilot study compared the distribution of measurements of three such putative factors in 11 schizophrenics and their siblings: a neurophysiological deficit in auditory sensory gating, diminished hippocampal volume, and increased catecholamine metabolism. Abnormal auditory sensory gating was found in all schizophrenics in the 11 families studied and in 8 of their 20 siblings. Compared with the schizophrenics, the clinically unaffected siblings with abnormal auditory gating had larger hippocampal volume. There was no similar difference for the siblings with normal gating. The siblings with abnormal auditory gating also had lower homovanillic acid levels than the other siblings. The data suggest that a familial neuronal deficit, identified by diminished sensory gating, may be a necessary, but not sufficient factor in the pathogenesis of schizophrenia. Individuals with this deficit are generally clinically unaffected, except for schizophrenics, who also have other abnormalities, such as diminished hippocampal volume and increased catecholamine metabolism.

Acoustic Stimulation↗

Sensory gating deficits in psychiatric inpatients: relation to catecholamine metabolites in different diagnostic groups.

Acutely ill psychiatric inpatients were examined for a deficit in sensory gating, measured as failure to suppress the P50 wave of the auditory-evoked response to the second of paired stimuli. Previously, we had found that in mania, this sensory gating deficit is correlated with increased plasma-free levels of the noradrenergic metabolite 3-methoxy, 4-hydroxyphenylglycol (pMHPG), whereas in schizophrenia, there is no correlation with catecholamine metabolism. To assess the generalizability of these findings, we examined inpatients with a broader range of diagnoses, including those with multiple DSM III-R Axis I, II, and III diagnoses. The patients were grouped into three diagnostic spectra for analysis: schizophrenic, manic, and depressive. In the schizophrenic patients, there was no relationship between pMHPG or other catecholamine metabolites and the sensory gating deficit. In manic patients, however, a positive correlation between pMHPG level and the sensory gating deficit was again observed. This relationship did not extend to the depressive patients, who uniquely showed sensory gating deficits that correlated negatively with the severity of their illness. The data suggest that sensory gating deficits are common to these three diagnostic spectra, but the deficits in each group have different relationships to catecholamine metabolism and symptom severity that may reflect differences in the underlying neuronal pathophysiology of these illnesses.

Adult↗

Auditory sensory gating in hippocampal neurons: a model system in the rat.

Diminished evoked response to repeated auditory stimuli, an example of sensory gating normally present in human subjects, is often absent in schizophrenics. To examine the mechanism of the normal response and to delineate possible sites of its abnormality in psychosis, it would be desirable to reproduce the phenomenon in laboratory animals. In this study, we show that the pattern of diminished response to the second of paired auditory stimuli is found in activity recorded from the CA3 region of the hippocampus of anesthetized rats. The evoked potential recorded from this area is predominantly an N40 wave, at identical latency to the prominent negative wave recorded from the skull surface of unanesthetized rats. Similar responses were not found in other areas, including the auditory neocortex and the medial geniculate nucleus. Amphetamine, which diminished sensory gating in both animals and humans, diminished the gating of the evoked potential recorded in the hippocampus. The effect of amphetamine was reversed by haloperidol. The rat hippocampus may therefore contain neurons that can be used to study the neurobiology of sensory gating.

Action Potentials↗

Sensory physiology and catecholamines in schizophrenia and mania.

Hypersensitivity to sensory stimulation is a prominent characteristic of both schizophrenia and mania. Neurophysiological recordings suggest a common deficit in a central neuronal sensory gating mechanism which regulates sensitivity to repeated auditory stimuli. Dopamine and norepinephrine are hypothesized to have major roles in these illnesses, but their role in aberrant sensory processing has not yet been proved. Presumptive evidence for effects of catecholamines on sensory processing comes from psychophysiological studies of normal subjects challenged with stimulants who show decreased sensory gating, and studies of psychotic patients treated with neuroleptics who show improved function. Studies of similar phenomena in animals show comparable effects of catecholamines on sensory processing, both behaviorally and at the single neuron level. In this study, gating of auditory evoked potentials (EPs) during treatment of both illnesses was compared with plasma dopamine and norepinephrine metabolites. Comparisons of medicated and unmedicated states showed that schizophrenic patients have a fixed deficit in sensory gating, which is a familial trait, unchanged by medication. During acute illness, they have an additional transient hypersensitivity to stimuli, manifested as smaller EPs, which seems to be mediated by dopamine. Manic patients have only the deficit in sensory gating, which is transient and seems to be mediated by norepinephrine. Thus, similar neurophysiological deficits in the two psychoses are associated with different biochemical abnormalities, which may explain similarities in acute symptoms and differences in other aspects of the illnesses, such as their response to treatment.

Adult↗

Bereitschaftspotential in tardive dyskinesia.

The bereitschaftspotential or motor readiness potential is a slow negative electroencephalographic wave occurring 150-1500 ms prior to the onset of a voluntary movement. It was measured in 33 subjects: 11 normal controls, 11 medicated schizophrenics with no tardive dyskinesia or evidence of drug-induced parkinsonism, and 11 patients with tardive dyskinesia. The bereitschaftspotential amplitude was more than two times larger in patients with tardive dyskinesia than in normal controls or schizophrenic patients without tardive dyskinesia. The increased amplitude correlated with the degree of severity of the tardive dyskinesia as measured on the Abnormal Involuntary Movement Scale (AIMS). The finding of the increased bereitschaftspotential amplitude in tardive dyskinesia, taken together with earlier findings of low amplitude in Parkinson's disease, suggests that this potential may reflect the level of dopaminergic activity in the basal ganglia.

Adult↗

Brain evoked potentials as predictors of risk.

Sensory evoked potentials are capable of demonstrating brain sensory and cognitive function. These measures of brain activity can be used to demonstrate genetic influences in alcoholism. Auditory evoked potentials have been used successfully to demonstrate inherited differences in alcohol sensitivity. As in animal models, these inherited differences are limited to particular neuronal mechanisms and are not a general property of all neurons. The P300 wave, which is elicited in particular paradigms in which the subject is required to attend to specific stimuli, is smaller in subjects who are at high risk for alcoholism by virtue of having an alcoholic father. These subjects at risk for alcoholism show lower P300 amplitudes in paradigms in which they are given small doses of alcohol. P300 is also small in younger high-risk subjects who have never been exposed to alcohol. The evoked potential data are in general agreement with earlier electroencephalographic data that suggested the presence of electrophysiological abnormalities in the children of alcoholics.

Adolescent↗

Neurophysiological assessment of sensory gating in psychiatric inpatients: comparison between schizophrenia and other diagnoses.

Gating of auditory sensory responsiveness was examined in 75 psychiatric inpatients using a conditioning-testing paradigm with the P50 wave of the auditory evoked response, in which pairs of stimuli are presented to the subject. In previous studies, most schizophrenics did not decrement the second response to the extent seen in normals. Acutely ill patients, who were representative of patients admitted to a public university teaching service and a proprietary hospital, were used to examine the extent to which diminished sensory gating is found in diagnoses other than schizophrenia. About half of these patients showed diminished sensory gating that correlated with measures of severity of illness. The data, taken together with that from other studies using this paradigm, suggest that diminished sensory gating, like several other psychophysiological abnormalities, is a trait deficit in schizophrenia, but a state deficit in many other mental illnesses.

Adjustment Disorders↗

Neurobiological studies of sensory gating in schizophrenia.

The sensory disturbance in schizophrenia is often described as an inability to filter out extraneous noise from meaningful sensory inputs. The neurobiological basis of this inability to filter has been examined using auditory evoked potentials, which are computerized averages of the brain's electrical response to sound. The sounds are presented in pairs to test the ability of the brain to inhibit, or gate, its response to a repeated stimulus. Schizophrenic patients lack the ability to gate the neuronal response shown by a particular wave, the P50 wave. The measurement of this deficit in human subjects and the exploration of its neurobiology in animals has produced evidence about several issues in the pathophysiology of schizophrenia: (1) the role of dopamine in improvement of sensory function in schizophrenic patients treated with neuroleptic drugs, (2) the interaction between familial or genetic deficits in sensory functioning in schizophrenic patients and possible abnormalities in dopamine metabolism, and (3) a mechanism by which noradrenergic hyperactivity in mania and other psychiatric illnesses might mimic some pathophysiological deficits in schizophrenia.

Antipsychotic Agents↗

Properties of myosin light chain kinase prepared from rabbit skeletal muscle by an improved method.

Myosin light chain kinase was prepared from rabbit skeletal muscle. DEAE-Sephadex, calmodulin-Sepharose 4B affinity gel and Ultrogel AcA 34 were used for the purification. It took 3 days for the preparation, and 6.2 mg of myosin light chain kinase was isolated from 600 g of frozen muscle. The molecular weight of the myosin light chain kinase estimated by sedimentation equilibrium analysis was 103,000 +/- 4,100. The isoelectric point was 5.0. Chemical modification of cysteine residues did not affect the catalytic activity, but modification of tyrosine residues diminished the activity. In order to activate myosin light chain kinase, it was necessary to bind calmodulin in an equimolar ratio and the dissociation constant was estimated to be 3.6 nM. The optimum pH for the catalytic activity was 7.5, and the activity was inhibited by NaCl and KCl. In the presence of 2.74 mg/ml myosin light chain and 75 mM KCl, the catalytic activity was found to be 88 s-1. The Vm and Km at 0.14 M KCl were 100 s-1 and 53 microM, respectively, for the isolated light chain as substrate and 70-80 s-1 and 19 microM for myosin as substrate.

Amino Acids↗

Elementary neuronal dysfunctions in schizophrenia.

This paper describes an elementary deficit in sensory processing in people with schizophrenia. If paired sounds are presented to normal subjects, the response to the first sound, as measured by the P50 wave of the auditory-evoked potential, is much greater than the response to the second sound. The diminished response to the second sound is an example of a sensory gating mechanism that enables people to regulate their vigilance so that they can either detect all sounds in the environment or ignore most of them, in favor of narrowing the focus of their concentration. In schizophrenia, this mechanism is usually deficient; patients are in a state of hypervigilance and have diminished abilities to focus their attention. The deficiency appears to be genetically determined and to involve the brainstem control of sensory input to the hippocampus. Such sensory gating deficits may underlie more complex psychotic symptoms, such as hallucinations and delusions. Further studies of their neurobiology could lead to increased understanding of the pathophysiology of schizophrenia.

Arousal↗