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Biomedical subjects

T O Grøndahl

Publications and source records attributed to T O Grøndahl.

7 recordsLinked to original sources

Depletion of intracellular Ca2+ stores or lowering extracellular calcium alters intracellular Ca2+ changes during cerebral energy deprivation.

Cytoplasmatic calcium concentrations are elevated two to three fold during cerebral ischemia. In order to determine the role of calcium-release from intracellular stores vs. calcium entry from the extracellular space, intracellular stores were depleted by the use of thapsigargin and calcium was removed from the incubation fluid prior to energy deprivation (ED). CA 1 pyramidal neurons in hippocampal rat slices were filled with a 1:2 mixture of Fluo-3 and Fura Red by intracellular injection. The neurons were visualized in a Confocal Laser Scanning Microscope (CLSM) and the fluorescence ratio from the probe mixture was used to quantify the calcium concentration. Intracellular calcium concentration was monitored before and during ED. The intracellular calcium concentration was 55 nM prior to ED and increased to 25 microM during ED. The resting levels were the same in the experimental groups, but the increase during ED was significantly lower in the intervention groups. The increase in the calcium free group was to 1 microM and in the thapsigargin group to 5 microM. In the last experimental group, thapsigargin treatment and removal of extracellular calcium, the intracellular calcium increased to 630 nM. These results demonstrate that the increased intracellular calcium seen during ED originates from several sources. Calcium-release from intracellular stores may be of major importance in calcium-related neuronal injury during cerebral ischemia.

Aniline Compounds↗

Chloride influx during cerebral energy deprivation.

The purpose of the present study was to investigate the possible role of chloride influx and GABA release during cerebral energy deprivation (ED). The functional activity measured by evoked activity (population spike) in hippocampal slices was recorded during nine minutes of ED and 60 minutes recovery. Treatment groups were exposed to ED following administration of the GABAA antagonist penicillin G (pc G) or substitution of extracellular chloride. The release of glutamate and GABA was measured by HPLC. The efflux of 36Cl from preloaded slices was measured during ED with and without blocking the GABAA receptor. The population spike disappeared during ED, and there was a marked release of GABA and glutamate. During recovery the population spike recovered partially. Both application of pc G and substitution of extracellular chloride during ED improved population spike recovery. Uptake of radiolabeled chloride was significantly reduced by pc G. Glutamate release, but not GABA, was significantly reduced by chloride substitution. These results indicate a possible role of chloride mediated injury during ED, and suggest that chloride entry may partly occur through ligand-operated channels. Furthermore there may be an early chloride dependent release of glutamate during cerebral ischemia, whereas later release seems to be chloride independent.

Action Potentials↗

Cytotoxic effect of Ca++ released from intracellular stores during cerebral energy deprivation.

The increase in cytoplasmatic calcium concentration during cerebral ischemia has been proposed as a key event leading to neuronal death. In order to investigate a possible role of calcium-release from intracellular stores in ischemic neuronal injury, intracellular calcium pools were depleted prior to ischemia by the use of thapsigargin. Evoked activity (population spike) in rat hippocampal slices was monitored during a 30 min control period, 9 min of energy deprivation and 60 min of recovery. The population spike recovered to 27% (17-33) (median and 95% confidence interval) following energy deprivation in normal calcium, to 56% (50-58) in calcium-free incubation fluid and to 83% (75-88) in slices pretreated with 1 microM thapsigargin. Combining calcium removal and thapsigargin pretreatment did not improve recovery further. Both removal of extracellular calcium and emptying intracellular calcium stores prior to energy deprivation thus improved functional recovery following energy deprivation, however the latter was more effective. These results suggest that calcium release from intracellular stores may be of major importance in calcium-related neuronal injury during cerebral ischemia.

Action Potentials↗

Changes in amino acid release and membrane potential during cerebral hypoxia and glucose deprivation.

Excessive release of glutamate is believed to play a major role in the susceptibility of neurons to ischaemia. Whether the glutamate release is the primary event or occurs in response to electrophysiologic alterations has not been clarified. In the present study, the amino acid release was therefore correlated to changes in electrophysiological parameters and energy status during conditions of low oxygen tension and varying glucose concentrations in rat hippocampal slices. Plain hypoxia failed to produce glutamate release. All neurons underwent, however, a slow depolarization causing most of the neurons to lose their membrane potential within 10 minutes. By restoring the membrane potential to resting level by current injection, the neurons could still be activated synaptically and respond to transmitter application. Following reoxygenation most of the cells regained their resting membrane potential, but showed reduced excitability. When the slices were exposed to hypoxia combined with glucose deprivation (simulated ischaemia), there was a pronounced increase in the glutamate release. This glutamate release was always preceded by a fast anoxic depolarization. Whereas hypoxia reduced the ATP content only to approximately 50%, ATP was depleted in slices exposed to simulated ischaemia. The results demonstrate that although the neurons lose their membrane potential completely during hypoxia, there is no glutamate release. A fast anoxic depolarization provoked by simulated ischaemia, however, is always followed by glutamate release, probably due to a more severe ATP depletion.

Amino Acids↗

The effect of the volatile anesthetic isoflurane on Ca(2+)-dependent glutamate release from rat cerebral cortex.

A major effect of volatile anesthetics is to reduce excitatory synaptic transmission. In the present study the stimulated release of glutamate under the influence of increasing concentrations of isoflurane was studied in vitro by utilizing hippocampal slices from Wistar rats. Ca(2+)-dependent release was calculated by subtracting stimulated release with blocked synaptic transmission (50 mM K+, 0 mM Ca2+ and 4 mM Mg2+) from total evoked release (50 mM K+, 2 mM Ca2+ and 1 mM Mg2+). Isoflurane 0.5, 1.5 and 3% reduced Ca(2+)-dependent release of glutamate to 69, 58 and 49%, respectively (P < 0.05 for all related to control). These results are in agreement with the possibility of reduced release of transmitter as a mechanism of action of volatile anesthetics.

Animals↗

Epileptogenic effect of antibiotic drugs.

The epileptogenicity of antibiotic drugs represents a clinical problem, and it is well known that the use of penicillin and certain other preparations can induce seizures. In the present study, the authors investigated the epileptogenic properties of different concentrations of 12 commonly used antibiotic medications belonging to seven separate groups. The drugs were tested in the hippocampus, which has a low threshold for the development of epileptiform activity. The hippocampal slice technique, using rat tissue, was employed since absence of the blood-brain barrier allows administration of the drugs in known concentrations. The preparation was exposed to antibiotics in known concentrations and the amplitude and number of population spikes were recorded. Penicillin G was used as a reference substance. Cloxacillin (> or = 1 gm/liter), cephalothin (> or = 1 gm/liter), gentamicin (> or = 80 mg/liter), chloramphenicol (> or = 1 gm/liter), ciprofloxacin (> or = 50 mg/liter), erythromycin (> or = 1 gm/liter), and ampicillin (> or = 1 gm/liter) showed moderate to marked epileptogenic effects, whereas cefuroxime, clindamycin, cefotaxime, vancomycin, and tobramycin had no epileptogenic effects.

Aminoglycosides↗