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W E Code

Publications and source records attributed to W E Code.

15 recordsLinked to original sources

A correlation between dexmedetomidine-induced biphasic increases in free cytosolic calcium concentration and energy metabolism in astrocytes.

UNLABELLED: The alpha(2)-adrenergic agonist, dexmedetomidine, increases free cytosolic calcium concentration ([Ca(2+)](i)) in astrocytes, but not in neurons. The present study was performed to characterize the origin of the increased Ca(2+) in mouse astrocytes cultured from the cerebral cortex, the dose dependence of the effect, and its functional consequences. The increase in [Ca(2+)](i) was independent of extracellular Ca(2+), but was inhibited by dantrolene, showing that it is derived from intracellular stores; two peaks in [Ca(2+)](i) were demonstrated-one around 100 nM dexmedetomidine and the other in the low micromolar range. A similar dose dependence was found for pyruvate dehydrogenation, the initial metabolic reaction of oxidative degradation of pyruvate, suggesting that the these events are interrelated. The alpha(2)-adrenergic antagonist, yohimbine, abolished the metabolic stimulation at both peaks. However, whereas the increase in [Ca(2+)] (i) at 100 nM is abolished by yohimbine, increase in the micromolar range was partly inhibited by yohimbine and partly by idazoxan, an inhibitor at the imidazoline-preferring site. The stimulation of energy metabolism in cerebrocortical astrocytes may explain the repeated finding that dexmedetomidine does not decrease oxidative metabolism in the brain in vivo. The functional importance of the additional imidazoline receptor-mediated increase in [Ca(2+)](i) at large dexmedetomidine concentrations is unknown. IMPLICATIONS: Cytosolic calcium concentration and metabolism were measured in cultured astrocytes, the predominant glial cells. The results suggest that dexmedetomidine may owe its anesthetic effects to a Ca(2+)-dependent increase in astrocytic energy metabolism, allowing these cells to more effectively remove extracellular glutamate and potassium ions, and thus, decreasing neuronal excitability.

Adjuvants, Anesthesia↗

Effects of benzodiazepines on potassium-induced increase in free cytosolic calcium concentration in astrocytes: interactions with nifedipine and the peripheral-type benzodiazepine antagonist PK 11195.

The benzodiazepines diazepam and midazolam at submicromolar concentrations potentiated the increase in free cytosolic calcium concentration in astrocytes in primary cultures evoked by an elevation of the extracellular potassium concentration ([K+]0), but they had little stimulatory effect at normal [K+]0 and none at maximally elevated [K+]0. Nifedipine, an inhibitor of the L-channel, counteracted both the effect of the elevated [K+]0 as such and the benzodiazepine modulation. PK 11195, an antagonist of the peripheral-type benzodiazepine receptor, counteracted the effect of the benzodiazepines, but had no effect on the increase in free cytosolic calcium evoked by the elevated [K+]0.

Animals↗

Cell death in primary cultures of mouse neurons and astrocytes during exposure to and 'recovery' from hypoxia, substrate deprivation and simulated ischemia.

Effects of hypoxia, substrate deprivation and simulated ischemia (combined hypoxia and substrate deprivation) on cell survival during the insult itself and during a 24 h 'recovery' period were studied in primary cultures of mouse astrocytes and in cerebral cortical neuronal-astrocytic co-cultures. Cell death was determined by release of the cytosolic high molecular enzyme lactate dehydrogenase (LDH) as well as morphologically (retention of staining with rhodamine 123 and lack of staining with propidium iodide as an indicator of live cells). Glutamate concentrations were measured in the incubation media at the end of the metabolic insults. Astrocytes were very resistant to hypoxia, but less so to simulated ischemia; under both conditions the glutamate concentrations in the media remained low. Cerebral cortical neurons were almost equally susceptible to damage by hypoxia and by simulated ischemia, although hypoxia had a faster deleterious effects on some of the neurons and simulated ischemia during a long-term insult (9 h) killed all neurons, whereas a non-negligible neuronal subpopulation survived 9 h of hypoxia. Neuronal cell death after long-term hypoxia (but not after simulated ischemia) was correlated with high concentrations of glutamate in the incubation media. After certain insults, most notably relatively short lasting simulated ischemia (3 h) in neurons (which caused no increased cell death during the insult), there was a large release of LDH during the 'recovery' period.

Analysis of Variance↗

Preoperative naproxen sodium reduces postoperative pain following arthroscopic knee surgery.

This study was undertaken to assess the efficacy of a single preoperative dose of naproxen sodium in reducing postoperative pain and length of day surgery stay in patients undergoing arthroscopic knee surgery. A randomized, double-blind clinical trial was carried out on 66 ASA I and ASA II patients scheduled for arthroscopic knee surgery. The treatment group (n = 26) received two capsules containing 275 mg of naproxen sodium each, and the control group (n = 40) received placebo. Preoperative and postoperative visual analogue pain scores, postoperative analgesic requirements in hospital as well as 24 hr after discharge, and length of day surgery stay were studied. There was a decrease in postoperative pain, both in hospital (naproxen 0.7 +/- 1.2 vs placebo 2.2 +/- 2.3) and at 24 hr after discharge (naproxen 0.8 +/- 1.9 vs placebo 3.8 +/- 3.2) (P = 0.0001). There was no difference in the need for in-hospital postoperative analgesics or in the time to discharge. However, there was a difference in the use of analgesics after discharge (naproxen group 30.4% vs placebo group 71.4%) (P < 0.01). The results of this study suggest that a single preoperative dose of 550 mg naproxen sodium is effective in reducing postoperative pain in arthroscopic knee surgery, both in the immediate postoperative period and for up to 24 hr after the completion of surgery.

Adult↗

Protective effect of hypothermia during ischemia in neural cell cultures.

Hypothermia offers protection from the effects of ischemia in small animals. We have recently shown that similar to small animals, hypothermia may also be protective in an astrocytic model of "simulated ischemia" in cell culture. This study was designed to look at the protective effects of hypothermia in cultures of cerebellar granular (glutamatergic) and cortical (GABAergic) neurons. We used LDH release into the medium as an indicator for neuron damage. Experiments were all done in sister cultures, in groups of six cultures at two temperatures (37 and 32 degrees Celsius). The duration of ischemia was three hours in cerebellar granular neuronal cell cultures and six hours in cortical neurons. LDH release was measured immediately after the insult. Hypothermia protected both granular and cortical neurons. In granular cells, LDH release was 62 +/- 18 at 32 degrees and 212 +/- 15 at 37 degrees (p = 0.02). Cortical neurons showed LDH release of 15 +/- 2 at 32 degrees and 32 +/- 2 at 37 degrees (p = 0.005). Our study suggests that similar to astrocytes, the protective effects of hypothermia are evident in neuronal cell cultures from the cerebellum and the cerebral cortex. Cell culture systems should prove useful techniques in understanding mechanisms of hypothermic protection during simulated ischemia in neurons from different sites.

Animals↗

Naproxen premedication reduces postoperative tubal ligation pain.

This study evaluated the effectiveness of naproxen sodium oral premedication in reducing postoperative pain, analgesic requirements and day surgery length of stay in patients undergoing outpatient laparoscopic tubal ligations. We undertook a randomized, double-blind clinical trial on ASA I and ASA II patients undergoing outpatient laparoscopic tubal ligations. The treatment group received two capsules containing naproxen sodium, 275 mg each, and the control group received two identical capsules containing placebo. Postoperative visual analogue pain scores, analgesic requirements, side-effects and length of day surgery stay were studied. Forty-four patients completed the study with 21 patients in the naproxen group and 23 in the placebo group. There was a statistically significant difference between groups in terms of pain score (naproxen group 0.9 +/- 0.2 vs placebo group 3.5 +/- 0.6); patients requiring postoperative opioids (naproxen group 0% vs placebo group 34.8%); and time spent in the day surgery unit (naproxen group 168 +/- 13 min vs placebo group 188 +/- 15 min). There was no difference in the incidence of nausea and vomiting. Only one person developed a side-effect from the naproxen sodium which was minor gastric discomfort. This study shows that naproxen decreased the postoperative tubal ligation pain with less subsequent postoperative analgesic requirements, less time to street fitness and no increase in analgesic side-effects. We recommend the use of this premedication in outpatient laparoscopic tubal ligations.

Administration, Oral↗

Dexmedetomidine, a potent and highly specific alpha 2 agonist, evokes cytosolic calcium surge in astrocytes but not in neurons.

Dexmedetomidine is an extremely potent alpha 2 adrenoceptor agonist which can reduce anaesthetic requirements by up to 90%. However, the precise cellular mechanism of action of this agent is not known. Primary cultures of murine neurons and astrocytes were grown to test the hypothesis that changes in free intracellular calcium may trigger cellular responses to this drug. In astrocyte cultures, experiments revealed a pronounced increase in cytosolic calcium concentration when 100 nM dexmedetomidine was administered. However, in cultured cerebellar granule cell neurons there was no calcium response observed with similar or even higher concentrations of the drug. Results suggest dexmedetomidine may exert its primary effect on the central nervous system via astrocytes.

Adrenergic alpha-Agonists↗

Ions, water, and energy in brain cells: a synopsis of interrelations.

A brief summary is given of some of the key points of the individual contributions at this International Brain Research Organization satellite meeting, presenting up-to-date, expert knowledge of energy metabolism, ionic turnover, and cell swelling at the cellular level of the mammalian central nervous system. On the basis of this material, we are also suggesting a unified concept of reciprocal interactions between metabolism, ion carriers, and ion channels, which are of crucial importance for the function of the central nervous system.

Animals↗