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J G Borst

Publications and source records attributed to J G Borst.

5 recordsLinked to original sources

Electrical activity of the cingulate cortex. I. Generating mechanisms and relations to behavior.

Spontaneous slow waves (EEG) and multiple unit activity (MUA) were recorded in the posterior cingulate cortex (area 29) and the dorsal hippocampus of the freely moving rat by means of chronically implanted electrodes. Three different wave patterns were discerned in the cingulate EEG. Irregular slow waves occurred during grooming, drinking, eating (Type II behavior) and slow-wave sleep (SWS). The irregular waves also contained sharp transients of about 20 ms duration called EEG-spikes. EEG-spikes reversed their polarity within the cingulate cortex and correlated with an increase in cingulate MUA. They were probably generated by deep (layer IV to VI) neurons in the cingulate cortex. Theta rhythm of 6-10 Hz accompanied walking, rearing, postural shifts, head movements (Type I behavior) and rapid-eye-movement sleep (REMS). MUA of low-amplitude units was phase-locked to the local theta waves, suggesting local generation of the slow waves. However, volume-conduction from the hippocampus would likely contribute to the cingulate theta since no reversal of the theta waves was found in the cingulate cortex. Fast waves of greater than 30 Hz were generally larger during Type I than during Type II behavior. Cellular generators for fast waves are not known. High-amplitude (greater than 100 microV) MUA only appeared during Type II behavior, and in particular during SWS. During REMS, these units were silent. Stimulation of the contralateral homotopic cingulate cortex gave antidromic and synaptic components in the average evoked potential (AEP). The long latency waves of the AEP varied with behaviors and appeared oscillatory (25-40 Hz) during Type I but not during Type II behavior. In summary, the cingulate cortex has a rich gamut of spontaneous and evoked electrical activities which bears some resemblance to that of the hippocampus.

Animals

Electrical activity of the cingulate cortex. II. Cholinergic modulation.

The role of the cholinergic innervation in the modulation of cingulate electrical activity was studied by means of pharmacological manipulations and brain lesions. In the normal rat, an irregular slow activity (ISA) accompanied with EEG-spikes was recorded in the cingulate cortex during immobility as compared to walking. Atropine sulfate, but not atropine methyl nitrate, increased ISA and the frequency of cingulate EEG-spikes. Pilocarpine suppressed ISA and EEG-spikes during immobility, and induced a slow (4-7 Hz) theta rhythm. Unilateral or bilateral lesions of the substantia innominata and ventral globus pallidus area using kainic acid did not significantly change the cingulate EEG or its relation to behavior. Large electrolytic lesions of the medial septal nuclei and vertical limbs of the diagonal band generally decreased or abolished all theta activity in the cingulate cortex and the hippocampus. However, in 5 rats the cingulate theta rhythm increased while the hippocampal theta disappeared after a medial septal lesion. The large, postlesion cingulate theta, accompanied by sharp EEG-spikes during its negative phase, is an unequivocal demonstration of the existence of a theta rhythm in the cingulate cortex, independent of the hippocampal rhythm. Cholinergic afferents from the medial septum and diagonal band nuclei are inferred to be responsible for the behavioral suppression of cingulate EEG-spikes and ISA, and partially for the generation of a local cingulate theta rhythm. However, an atropine-resistant pathway and a theta-suppressing pathway, possibly coming from the medial septum or the hippocampus, may also be important in cingulate theta generation.

Acetylcholinesterase

Differentiation antigens on rhesus monkey lymphocytes. I. Identification of T cells bearing CD3 and CD8, and of a subset of CD8-bearing cells.

Rhesus monkeys provide an excellent preclinical model to test the effect of monoclonal antibodies (mAb) in vitro and in vivo. So far, mostly mAb have been used which were originally raised against human cell surface antigens but cross-reacted reasonably well with homologous antigens on rhesus monkey cells. However, to optimize the model, it was necessary to produce mAb which react specifically with subsets of rhesus monkey lymphocytes. In this report, three mouse anti-rhesus monkey mAb are described, specific for different subsets of rhesus monkey T lymphocytes. None of the reagents cross-reacts with human lymphocytes. Characterization of these mAb was based upon indirect immunofluorescence, using a simultaneous staining technique, and immunoprecipitation of the specific target antigens. One antibody (GM9) reacts with the same subset as is recognized by mAb specific for human CD8+ cells. The second mAb (GM13) is specific for a subset of CD8+ cells. A third mAb (FN18) was of particular interest: it identifies a cell surface complex, RhT3, expressed on mature T lymphocytes, of which the polypeptide chains have a molecular mass of 22 and 27 kDa. The data strongly suggest that RhT3 is a CD3-like determinant, so far unidentified in the rhesus monkey.

Animals

Paradoxical diuresis after vasopressin administration to patients with neurohypophyseal diabetes insipidus treated with chlorpropamide, carbamazepine or clofibrate.

1. Chlorpropamide, carbamazepine and clofibrate have an antidiuretic action in patients with neurohypophyseal diabetes insipidus which is qualitatively similar to that of antidiuretic hormone (ADH). 2. An additive antidiuretic effect is produced by combination of chlorpropamide and carbamazepine with small dosages of ADH. 3. After an immediate and transient antidiuresis, a single intravenous bolus injection of lysine vasopressin given during treatment with chlorpropamide, chlorpropamide with a continuous intravenous infusion of lysine vasopressin, carbamazepine or clofibrate, resulted in increased water diuresis for 12-24 h or longer. 4. This paradoxical diuresis was not observed during treatment with chlorothiazide. 5. It is suggested that the antidiuretic action of chlorpropamide, carbamazepine and clofibrate is localized at the receptor site for ADH in the distal renal tubular cell.

Adolescent