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D F Peeler

Publications and source records attributed to D F Peeler.

14 recordsLinked to original sources

Effects of haloperidol on motor and cognitive functioning in aged mice.

The effects of haloperidol on motor and functioning and cognitive functioning were studied in young (3-5 months old) and aged (20-22 months old) male mice by examining haloperidol-induced catalepsy and haloperidol-induced decrements in performance on a radial arm maze. The aged mice were much more sensitive to these adverse effects of haloperidol than were the young mice. Studies of the distribution of radioactivity from [3H]haloperidol to the brain indicated that the differences in sensitivity to this drug were not due to pharmacokinetic differences. The results demonstrate that mice are suitable for studies of aging-induced changes in the behavioral effects of neuroleptic agents.

Aging

Isovolemic hemodilution in stroke. A study in gerbils.

Isovolemic hemodilution has been reported to increase cerebral perfusion in humans and has been advocated as a treatment for acute cerebral infarction. This study examines the effect of isovolemic hemodilution with low-molecular-weight dextran on mortality and the incidence of neurological deficit in gerbils after internal carotid ligation. Sixty-four Mongolian gerbils were anesthetized with pentobarbital and the left internal carotid artery was ligated in both control and experimental animals. In the experimental group, blood was removed and an equal volume of dextran was injected to reestablish normal blood volume and lower hematocrit to a mean of 30.5. Control animals were not so treated. Animals were observed for neurological deficits for 24 hours after carotid ligation. The incidence of neurological deficit in control animals was 67%; it was 64% in the experimental group. Mortality within the first 24 hours was 28% in the controls and 75% in animals that were treated by hemodilution (p less than 0.001). Isovolemic hemodilution with dextran did not reduce the incidence of neurological deficit after carotid ligation in gerbils and was associated with a significant increase in mortality during the first 24 hours.

Animals

Subarachnoid haemorrhage produces differential effects on transmitter kinetics at cerebral periarterial noradrenergic terminals.

The functional states of cerebral perivascular noradrenergic terminals were investigated following experimental 'closed-space' subarachnoid haemorrhage (SAH) in cat. The left middle cerebral artery (L-MCA) was compared to the ruptured right (R-MCA) one. Permeability kinetics of 3H-NA (noradrenaline) were measured simultaneously in isolated segments of paired R- and L-MCAs, testing responses to electrical field stimulation and the presence of the alpha-adrenoceptor antagonist, phentolamine, at different concentrations and times post-SAH. Fractional 3H-NA efflux from ruptured R-MCAs was reduced to undetectable levels at 18 h to at least 3 d post-SAH. Response to electrical stimulation partially recovered at 10 d and approached the controls by 16 to 30 d. In the L-MCAs, 3H-NA efflux was decreased up to 90% at 18 h, but recovered to control level by 3 d, unless it too became involved by encroachment of blood from the SAH side. The fractional 3H-NA efflux in the controls was typically augmented by phentolamine, reaching a peak at 0.3 microM of the drug. This overflow response was completely lost between 0.03 and 3.0 microM phentolamine in the R-MCAs for at least 30 d post-SAH, whereas uninvolved L-MCAs regained drug-induced overflow at 10 to 16 d post-SAH. Uptake of 3H-NA after SAH was also decreased 30 to 50% for both MCAs at 18 h and 3 d post-SAH. Control 3H-NA uptake was regained by 10 d post-SAH in the L-MCA but not until 16 d in the R-MCA.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

Active avoidance performance in genetically defined mice.

It has been concluded by several investigators that active avoidance performance in mice is primarily influenced or even determined by a single gene. The genetically defined strains C57BL/6 and BALB/c have provided evidence that an aberrant development of pyramidal cells and mossy fiber configuration in the hippocampus of BALB/c mice also is determined by a single gene. As a test of the generality of the single gene influence on avoidance learning, and to examine the relationship of the hippocampal defect to avoidance learning, adult male mice of the inbred progenitor strains C57BL/6ByJ and BALB/cByJ and their seven recombinant inbred strains were tested in a variant of the shuttle-box paradigm used in previous studies. BALB/c were found to acquire the avoidance response at a faster rate than C57BL/6, consistent with most earlier reports, but performances of the recombinant inbred strains failed to dichotomize about the progenitor strains. The rank order of performance scores for the recombinant inbred strains was different from that reported in previous studies. Thus the present data failed to support the interpretation of a single major gene influencing active avoidance learning. It is concluded that avoidance learning and performance cannot be considered as unitary variables and that the interaction of genetic with environmental factors, including the conditions of the specific testing situation, are important considerations in any interpretation of genetic effects. No relationship between the hippocampal lamination defect and avoidance performance was demonstrated.

Animals

Genetic factors and the measurement of exploratory activity.

The progenitor strains C57BL/6 and BALB/c and the seven recombinant inbred strains derived from them were used to examine the genetic relationship between two measures of activity and hippocampal lamination defect (Hld). Fifty-three mice (Mus musculus), 9 from each of the progenitor strains and 5 from each recombinant inbred strain, were tested for 16 min in a device which permitted both unobstructed traverse of the length of a runaway and contact with objects which were aligned alongside the runway. The C57BL/6 mice produced significantly more locomotor (runway traversal) activity, whereas the BALB/c showed significantly greater amounts of investigatory (object contact) activity. This reversal of relative position in the distribution of scores was not present for the recombinant strains. There was no dichotomous separation of recombinant strains for either measure. Examination of activity in terms of four consecutive 4-min periods indicates differences among the strains with respect to changes during the test session. The strains may be dichotomized with respect to decrement in activity within the 16-min session, but these groups do not correspond with those reported by others. The inference of a single genetic determinant for activity measured either as locomotor or investigatory responses is not supported by these data, nor is there any apparent relationship between activity and Hld. The critical influence of genetic-environment interactions in determining behavior and the effect of the selection of measurement techniques upon interpretation of data are emphasized by these data.

Animals

Supratentorial pressures. Part I: Differential intracranial pressures.

Dynamic supratentorial pressure changes may differentially alter tissue pressure and intraventricular fluid pressure. To evaluate these pressures, we used a floppy cuff intracerebral catheter and an intraventricular catheter in the cat and rhesus monkey. Baseline intraventricular pressures exceeded intracerebral pressure in both species. Intraventricular pressure was 3-4 mmHg in cats and 6-14 mmHg in monkeys, while the intracerebral pressure was in the range 0-4 mmHg in both. Saline injection into the spinal or cranial subarachnoid space resulted in a greater increase in ventricular fluid pressure, and the time for return to baseline was one and a half times longer in the intraventricular compartment. Jugular venous and abdominal compression resulted in a greater rise in the ventricular pressure than intracerebral pressure. Inflation of subdural balloons and intracerebral injection of silicone caused a differential pressure across the brain with the pressure being greatest in the ipsilateral hemisphere and lowest in the contralateral hemisphere. Rapidly evolving epidural masses produced varied results. We did not evaluate compensatory pressure changes in these animals. Those pressures that involve cerebrospinal fluid (CSF) dynamics alter intraventricular pressure more than tissue pressure. Alternatively, rapidly forming masses tend to increase tissue pressure near the mass more than intraventricular pressure.

Animals

Supratentorial pressures. Part II: Intracerebral pulse waves.

Intracerebral pulse waves were recorded in cat and monkey while intracranial pressure (ICP) manipulations were performed. The intracerebral pulse waves appeared comparable to cerebrospinal fluid (CSF) pulsations. The wave forms were divided into multiple smaller waves, designated P1 to P4. The P1 component was primarily of arterial origin and was accentuated by increasing ICP unrelated to increased venous pressure, most commonly from a mass lesion. Bilateral carotid occlusion resulted in decreased amplitude of P1. Venous hypertension from jugular venous or sagittal sinus occlusion, on the other hand, accentuated waves P2 and P3 more than P1. This is consistent with a Starling resistor model of the cerebral venous system in which mass lesions may compress low-pressure veins and accentuate the arterial pressure-dependent P1 wave, whereas venous hypertension causes increased prominence of the later P2 and P3 waves.

Animals

Intracranial pressure monitoring by flaccid-cuff catheter in an animal model.

Several methods of monitoring intracranial pressure (ICP) are in current use, each with its own advantages and disadvantages. The intraventricular line has been most useful because of the ability to withdraw cerebrospinal fluid to assist in control of elevated ICP. However, masses within the brain or generalized increased ICP may compress the lateral ventricle, making insertion of the catheter difficult or impossible. The intracerebral wick records hydrostatic changes too slowly to be used clinically. Swollen cerebral tissue may occlude the subarachnoid bolt thereby dampening the recorded pressure, and epidural monitors may give falsely high recordings because of irregularities of dura or bone. The authors have developed a flaccid-cuff catheter which has proven in animals to be an effective ICP monitor. There are several advantages, such as easy insertion into the centrum semiovale, rapid response to acute pressure changes, and continued sensitivity for periods of up to 3 weeks. The flaccid catheter cuff has no tension so that the pressure across the membrane is equal to zero, simplifying calibration. This type of cuff is necessary for maximum sensitivity to interstitial, brain-tissue, and gross ICP changes. The flaccid-cuff catheter may prove to be useful in a variety of situations such as after closed head trauma or intracranial surgery to assess elevated ICP caused by edema or evolving hematoma.

Animals

Adrenal enkephalin and catecholamine contents following subarachnoid hemorrhage in cats.

A "closed space" subarachnoid hemorrhage (SAH) was produced experimentally in cats by rupture of the right middle cerebral artery to test the working hypothesis that a stressful event which provokes powerful sympathoadrenal discharge: causes a massive release of co-stored endogenous enkephalins together with catecholamines, induces an increased rate of opioid peptide precursor processing and/or synthesis, and eventually results in markedly elevated tissue levels of enkephalins relative to controls and to co-stored catecholamines. Adrenal medulla and other tissues were analyzed for met- and leu-enkephalins by RIAs and norepinephrine and epinephrine by HPLC-EC at 4 hrs, 3, 10, 16 and 30 days post-SAH. Catecholamines of adrenal medulla were already decreased at 4 hrs and by 3 days post-SAH depletion of epinephrine reached 86% and norepinephrine 53% compared to controls. Concurrently, at 4 hrs and 3 days post-SAH, the adrenal medulla was depleted 47% of met- and 53% of leu-enkephalins. By 10 days post-SAH, when catecholamines had regained control levels, met-enkephalin was elevated to 240% of control and 435% compared to the 3 day depletion; it remained elevated through 30 days post-SAH. In comparison, after 10 days reserpine treatment when catecholamines were markedly depleted, met-enkephalin rose to 970% and leu-enkephalin to 360% relative to controls, confirming recent reports in the literature. The data suggest that release of enkephalins originates primarily from epinephrine-type cells of the adrenal medulla in cat.

Adrenal Medulla