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Biomedical subjects

K H Reid

Publications and source records attributed to K H Reid.

At least 37 records · Page 2Linked to original sources

The effect of pretreatment with magnesium sulfate on the initiation of seizure foci in anesthetized cats.

The therapeutic effect of magnesium sulfate remains unknown. Its role as an anticonvulsant is controversial. The effect of pretreatment with parenteral magnesium sulfate on the ability to initiate penicillin-induced seizure foci in anesthetized cats was studied. All animals in the experimental group achieved serum magnesium levels of greater than 10 mg/dl. No significant difference in epileptic spike frequency between the experimental and control groups was demonstrated.

Anesthesia↗

Calcium reverses lidocaine-induced conduction block in rat fimbria in vitro.

1. We have tested the effect of changed concentrations of Ca2+ upon lidocaine-induced conduction block in rat fimbria. 2. With bath [Ca2+] of 0.25 mM, 0.5 mM lidocaine reduced the amplitude of the compound action potential to 20.2% +/- 2.25% of baseline (n = 5). 3. On changing the bath [Ca2+] to 4.4 mM, with no change in lidocaine concentration, the compound action potential increased by 33.5 +/- 6.5%. 4. In the absence of lidocaine, changing bath [Ca2+] had opposite effects. These results replicate findings by others in peripheral nerve.

Action Potentials↗

Lactic acidosis and recovery of neuronal function following cerebral hypoxia in vitro.

The rat hippocampal slice preparation was used to study the combined effects of hypoxia and lactic acidosis on neuronal function. Control slices were exposed to a standard hypoxic insult while being perfused with normal artificial cerebrospinal fluid (ACSF). Experimental slices were perfused with ACSF containing 1.0, 2.0, 10.0 or 20.0 mM lactic acid, 30 min before and during the same standard hypoxic insult. Following at 30-min recovery period the ability of these slices to respond to orthodromic stimulation by displaying a population spike (synaptic function) was tested. No significant decreases in the recovery rate of synaptic function were found between control and experimental groups, excluding the combination of 20 mM lactic acid and 10 min hypoxia, where such a decrease was found. The combination of 10 mM lactic acid and 12 min hypoxia brought about an increase in the recovery rate of synaptic function. Thus, the adverse effects attributed to lactic acid in vivo were not seen in the present in vitro study. Neuronal tissue appears to be able to handle excess lactic acid by yet, unknown mechanism (high intracellular buffer capacity?). The suggested in vivo damage due to lactic acidosis could originate in the cerebrovascular system. On the other hand, the possibility that lactic acidosis is harmless under hypoxic conditions should also be considered.

Acidosis, Lactic↗

Spreading depression and central nervous system pharmacology.

Spreading depression is a reversible response of brain tissue to a local insult. It has been postulated to be the physiological substrate for the aura phase of classic migraine. The properties and mechanisms of spreading depression were studied in the parietal neocortex of the alfentanil-anesthesized rat, by using a cup electrode that provided close control of the electrical stimulus while allowing specific ion (K+) and potential recordings to be made directly beneath the cathode, the region of origin of the stimulus-induced spreading depression. Cathodal stimulation caused the extracellular K+ concentration to rise, and spreading depressions were observed when this concentration exceeded 8-12 mM in the upper 100-200 microns of cortex. In some experiments extracellular [K+] continued to increase for 5-10 sec after termination of the stimulus, without detectable after-discharge in the potential record, before subsiding. While spreading depression could easily be induced by pressure on the cortex, local damage incidental to opening the dura rarely induced spreading depression. This suggests that a local (1-mm2) neurovascular injury is not likely to induce spreading depression--at least in normal cortex--and so is probably not the source of the spreading depression postulated to generate the aura of classic migraine. Mechanisms of spreading depression, and drugs that influence spreading depression, are reviewed, and possible uses of spreading depression in the pharmacology of the central nervous system are considered.

Animals↗

Effects of temperature and temperature gradients on ion-sensitive microelectrodes.

Ion-sensitive microelectrodes are widely used in studies of mammalian tissues. Often the tissue is maintained at 37 degrees C, some 10-15 degrees C above room temperature. The temperature difference between the room and the preparation was found to be capable of altering the measured ion potential by as much as 10 mV. The change depended on 3 factors: the temperature dependence of the Nernst slope, the temperature dependence of the interference factor, and the thermoelectric potential induced by the temperature difference between the two ends of the ion-exchanger column. Certain combinations of these changes can cancel each other, resulting in spurious but apparently temperature-insensitive readings. The first two factors can produce errors when the temperature of calibration differs from the temperature of the tissue being measured. Serious errors in measurements of ion concentration can also occur, due to all 3 factors, if a temperature gradient exists across the ion exchanger column; this situation can easily occur when recording from exposed mammalian tissues. The use of a short ion-exchanger column will reduce but not eliminate effects due to a temperature gradient.

Animals↗

Pitfalls in the use of brain slices.

In vitro brain slices are the preparation of choice for the detailed examination of local circuit properties in mammalian brain. However it is the investigator's responsibility to verify that the circuits under investigation are indeed confined within the boundaries of the functional region of the slice used. The medium in which the slice is maintained is under the full control of the investigator. This places the burden on the investigator to ensure that: (1) the properties of the medium are fully under control; (2) the effects of the medium on the slice are known; (3) the conditions under which the slice is being maintained bear some reasonable relation to those it enjoys (or endures) in vivo. Generalizations to in vivo conditions must be made with caution. If at all possible, similar studies (perhaps less extensive, due to the greater technical difficulties) should be done in vivo to provide a basis for comparison. Investigators using drugs should be aware of, and respect, the basic pharmacological principles cited in the text. In particular, the substantial freedom the investigator has in defining the extracellular medium should not be abused.

Animals↗

Evaluation of spinal evoked potentials: a model for assessment of spinal cord function in isolation.

Spinal evoked potentials were recorded from the dorsal columns of in vitro mouse hemicord preparations. The response of these potentials to different periods of hypoxia was studied. A decrease in amplitude of the potential to 50% and 10% of pre-hypoxia reference occurred after 3.19 +/- 1.36 and 7.3 +/- 2.97 min, respectively. Complete recovery of the potential was seen in specimens exposed to 5 and 10 min of hypoxia. Incomplete recovery occurred with exposure to longer periods of hypoxia. In preparations that remained isoelectric for less than 5 min total recovery was seen.

Animals↗

The rat hippocampal slice preparation as an in vitro model of ischemia.

In vivo models of cerebral ischemia do not fully control for the interacting effects of many variables (e.g., anesthesia, temperature, cerebrovascular changes) and often do not clearly define the region affected. Numerous in vivo studies have indicated that hyperglycemia augments ischemic brain damage; this effect is often attributed to lactic acidosis. To separate the effects on neuronal tissue of ischemia from those due to actions on the cerebrovascular system, we used an in vitro blood-free system as an ischemic model. In our study we evaluated the effects of various combinations of oxygen and glucose levels on evoked synaptic activity in the CA1 region of the rat hippocampal slice preparation. A 50% inhibitory dose for both oxygen and glucose on neuronal synaptic function was determined. It is our intention to use this model for preliminary screening of antihypoxic/anti-ischemic drugs.

Animals↗

Effects of phenytoin and flunarizine on the rise in extracellular potassium induced by repetitive stimulation of rat cerebral cortex.

At a critical intensity of repetitive stimulation, [K+]0 in cerebral cortex increases rapidly to a "ceiling" value of 10-12 mM. Phenomena related to this rapid regenerative increase in [K+]0 were investigated using K+-sensitive microelectrodes. The critical intensity required to induce this rise was found to be increased by phenytoin (90 mg/kg preload + 30 mg/kg presurgery) but not by flunarizine (30 mg/kg preload + 10 mg/kg presurgery), when the stimulus (20 Hz, 0.4 ms pulse duration, 5 or 40 s train duration) was applied to a 1 mm2 area of parietal neocortex in alfentanil-anesthesized rats. Flunarizine and phenytoin appear to differ in their mechanisms of anti-epileptic action.

Animals↗

Increased glucose improves recovery of neuronal function after cerebral hypoxia in vitro.

The rat hippocampal slice preparation was used to evaluate the effect of increasing glucose levels in the perfusion medium on the recovery of synaptic function after a standardized hypoxic insult. Slices exposed to low glucose (5 mM) did not recover from a standard hypoxic insult (10 min of 95% N2/5% CO2 atmosphere). Following the same insult, 39% of the control (10 mM glucose) slices recovered their synaptic function, while 93% of the slices provided with high glucose level (20 mM) exhibited recovery of synaptic function. Thus, a dose-dependent effect of glucose on recovery of neuronal function following an intermediate period (10 min) of oxygen deprivation was found. The high-glucose-treated slices could tolerate a severe hypoxic insult of 15 min or even 20 min from which 94% and 81% of them recovered, respectively. Only 21% of the control (10 mM glucose) slices recovered their synaptic activity following 15 min of hypoxia, and none survived 20 min of that insult. The adverse effects of hyperglycemia reported in vivo were not seen in our study. This may be due to the sustained perfusion of the brain slice preparation, which could limit accumulation of lactic acid during hypoxia. However, treatment of slices with lactic acid prior to and during the hypoxic insult did not worsen the outcome. Alternatively, glucose may protect against the damaging effects of oxygen free radicals formed during reoxygenation. Nevertheless, the antihypoxic effect of glucose appears to be a metabolic one, since L-glucose (the non-metabolic analog of D-glucose) was innocuous in this respect.

Animals↗

Strength-duration properties of cathodal pulses eliciting spreading depression in rat cerebral cortex.

Strength-duration curves for the threshold stimulus for initiation of spreading depression were determined for durations of 2 ms to 120 s, using cathodal surface stimulation through a well-defined area. With the dura open, the strength-duration curve was of the form I square root t = constant. With extradural stimulation, the slope of the log-log plot relating current intensity to pulse duration increased gradually as the pulse duration increased.

Animals↗

Potassium translocation and spreading depression induced by electrical stimulation of the brain.

Cathodal current pulses with durations from 20 ms to 80 s were applied to the surface of rat parietal neocortex, and the strength-duration properties of the threshold stimulus for initiation of spreading depression was determined. In one series, extradural stimulation was used. In a second series, a liquid electrode was used, the dura was opened, and K+-sensitive microelectrodes were used to determine the time course of extracellular K+ concentration during and after each stimulus pulse. With the dura open, the strength-duration curve was of the form It0.55 = constant. With extradural stimulation, the slope of the log-log plot relating current intensity to pulse duration changed gradually as the pulse duration increased, averaging 0.63. Theoretical analysis suggests that diffusion of K+ away from a zone of current-induced accumulation can account for these slope data. Applicability of this mechanism of K+ accumulation to observed changes in sensitivity of neurons to repeated stimulation at subcortical sites is considered.

Animals↗

Effect of the topical application of some newer antibiotics on the cerebral cortex.

Five currently used antibiotics--moxalactam, cefotaxime, cefoperazone, metronidazole, and piperacillin--and bacitracin were compared for epileptogenetic effect against penicillin G as a standard when applied directly to cat cerebral cortex. Piperacillin was half as epileptogenic as penicillin. Moxalactam, cefotaxime, and cefoperazone showed epileptogenicity one-fourth to one-eighth that of penicillin on a milligram per cubic centimetre basis. Neither metronidazole nor bacitracin produced any focal seizure activity at the highest concentrations tested. Some of the newer cephalosporin antibiotics may have a significant risk of inducing seizure activity if high concentrations come in direct contact with neocortical tissue.

Animals↗

Adaptation of adult brain tissue to anoxia and hypoxia in vitro.

The rat hippocampal slice preparation was used in the present study to demonstrate the ability of adult brain tissue to adapt to anoxic and hypoxic conditions. Adaptation was induced by pre-exposure of hippocampal slices to a short (5 min) anoxic episode. The evoked electrical activity of pre-exposed slices recovered from a subsequent, longer anoxic insult, while that of controls (without pre-exposure), receiving the same insult, did not. The adaptation process is time-dependent; an interval of 0.5 h between the pre-exposure and the subsequent anoxic insult allowed slices to resist anoxic periods of 13 +/- 2 min while after an interval of 2 h an anoxic period of 16 +/- 2 min could be tolerated. Evoked electrical activity persisted in adapted slices during exposure to hypoxia while their non-adapted controls exhibited synaptic silence under hypoxic conditions.

Adaptation, Physiological↗

A simple rapid swim test to determine spatial preference in the rat.

A swim test is described for the evaluation of spatial preference in untreated male rats. The test is rapid, objective and simple to perform and was able to distinguish right-left preferences in 47 rats. It is encouraged that the swim test be compared to or used in conjunction with other spatial preference tests.

Animals↗

Effect of electrical stimulation on the viability of the hippocampal slice preparation.

Continuous electrical stimulation of rat hippocampal slices at a frequency of 1 Hz brought about a 50% decline in the evoked population spike amplitude at a rate 5 times faster than that caused by very low frequency (1/600 Hz) stimulation. Within 2 hr after the high frequency stimulation began the evoked response totally disappeared. By contrast low frequency stimulated slices maintained an evoked response for at least 9 hr. Continuous electrical stimulation, especially at high frequency seems to facilitate the deterioration of the in vitro hippocampal slice preparation.

Animals↗

Lidocaine depresses synaptic activity in the rat hippocampal slice.

The direct effect of the local anesthetic lidocaine was studied using the hippocampal slice preparation in order to assess the involvement of this structure in lidocaine-induced seizure activity. Changes in the evoked field potential amplitude and latency were used to measure the effect of the drug. A dose-dependent depression of the evoked field potentials was observed at lidocaine concentration of 10(-4)M and greater. No synchronized population bursting (seizures) was observed at any of the concentrations tested (10(-6)M to 10(-3)M). However, the hippocampal slice preparation is capable of producing seizure activity, as was demonstrated following application of penicillin G. The results suggest that the hippocampus is not the site of lidocaine-induced seizure activity.

Animals↗

Effect of parenteral magnesium sulfate on penicillin-induced seizure foci in anesthetized cats.

The use of magnesium sulfate as an anticonvulsant remains controversial. The effect of parenteral magnesium sulfate on established penicillin-induced seizure foci in anesthetized cats was studied. After induction of an epileptic focus by application of penicillin to the cerebral cortex, experimental animals were infused intravenously with magnesium sulfate, whereas control animals received normal saline solution at an equivalent rate. Experimental animals achieved a mean serum magnesium level of 11.73 +/- 2.00 mg/dl. Analysis of the electroencephalogram recordings demonstrated no significant difference in epileptic spike activity between the experimental and control groups. The critical importance of adequate controls in studies of this type is stressed.

Anesthesia↗