Subdiaphragmatic gas in hepatic hydatid disease.
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Biomedical subjects
Publications and source records attributed to M Ashton.
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The author presents answers of Kübler-Ross on the subject of death.
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Artemisinin disappearance rate was more rapid in incubations with liver microsomes from rats pre-treated with oral artemisinin (60 mg/kg/day for 5 days) compared with microsomes from control animals. A single pathway Michaelis-Menten saturable elimination model was fitted to the concentration-time data of artemisinin incubations by non-linear regression. Model parameters were obtained after fitting results for each animal separately and by pooling data for pre-treated and control animals. Parameter estimates (% coefficient of variation) from fitting the pooled data was maximum velocities (Vmax) = 1.8 (12) mmole/min/mg protein and Michaelis constants (Km) = 20(22) microM for artemisinin pre-treated and Vmax = 0.85 (35) mmole/min/mg protein and Km = 67(52) microM for control animals indicating a 2-fold increase in Vmax and a 3-fold decrease in Km with microsomes from artemisinin pre-treated animals. Estimates of intrinsic clearance in microsomes from the pre-treated animals were 8-fold higher compared with controls. Thus, artemisinin appears to be a potent auto-inducer of drug metabolism in rats as has also been observed in humans. The present findings suggest caution in the interpretation of repeat-dose rat toxicity studies with artemisinin unless its pharmacokinetics are simultaneously monitored, since during multiple administration, the exposure of the drug will not be constant over time.
The activities of artemisinin (qinghaosu), dihydroartemisinin (dihydroqinghaosu), artemether and pyronaridine were tested in a 48 h in vitro assay against 3 chloroquine-sensitive and one chloroquine-resistant strains of Plasmodium falciparum. Growth inhibition was modelled with a sigmoid Emax model. All compounds markedly inhibited the growth of all strains although, for the chloroquine-resistant strain, merozoites were detected at concentrations as high as 10(-4) M of artemisinin, dihydroartemisinin and artemether. Dihydroartemisinin, artemether and pyronaridine appeared to be more potent than artemisinin, with EC50 values of 4.7-23 nM, 0.98-6.1 nM and 4.4-18 nM respectively, while the EC50 value of artemisinin was 3-108 nM against all 4 strains.
A 48 h in vitro test of the efficacy of artemisinine, dihydroartemisinine, artemether, mefloquine and chloroquine was carried out against 3 chloroquine-resistant strains of Plasmodium falciparum, strains K1 and T996 from Thailand and LS21 from India. A sigmoid Emax model was fitted to all in vitro inhibition data for each combination of drug and strain. Strains K1 and LS21 were strongly resistant to chloroquine, whereas T996 was partially resistant. Artemisinine, dihydroartemisinine and artemether were active against all strains, with complete growth inhibition at 10(-7) M. Artemether and dihydroartemisinine were both more potent than artemisinine, with 50% effective (EC50) values of 0.57-1.6 nM and 0.36-3.1 nM respectively; the EC50 of artemisinine was 1.5-6.1 nM for the 3 strains. The EC50 values for mefloquine were 46-185 nM. At higher concentrations, strains K1 and LS21 were fully inhibited, while with strain T996 mefloquine did not fully inhibit even at the highest concentration, 1.28 x 10(-6) M. It is concluded that artemisinine and its derivatives were highly effective against the 3 chloroquine-resistant strains, one of which showed borderline resistance to mefloquine.
The study compared the clinical efficacy and safety of oral artemisinin and oral artesunate as well as artemisinin pharmacokinetics during and after resolution of falciparum malaria. Forty adults with symptomatic falciparum malaria were allocated at random to treatment with either oral artemisinin (500 mg single dose on day 1 followed by 250 mg twice daily for 4 d and then another 500 mg single dose on day 6) or with oral artesunate (100 mg single dose on day 1 followed by 50 mg twice daily for 5 d). Patients were admitted to hospital at the Kibaha Designated District Hospital, Kibaha, Tanzania for the duration of treatment. The patients were seen once weekly for 3 more weeks. The time to parasite clearance (PCT) after oral artesunate (26.4 +/- 3.6 h) was shorter (P = 0.002) than after artemisinin (31 +/- 3.6 h). The fever subsidence time (FST) after oral artesunate (18.9 +/- 4.0 h) was also shorter (P = 0.04) than after artemisinin (21.8 +/- 4.6 h). Parasites were detected in 4 (20%) and 7 (35%) patients after completing treatment with artesunate and artemisinin respectively. In these patients the parasitaemia reappeared at the 3rd or 4th week of follow-up. Standard haematology, blood biochemistry and urinalysis, performed before drug intake and again on days 6 and 14, were normal. No clinical abnormality was observed during the study period. Artemisinin plasma concentrations, determined by high performance liquid chromatography with post-column derivatization and detection by ultraviolet light, were followed up to 8 h after drug administration on days 1 and 6. Artemisinin absorption was rapid, the maximum plasma concentrations (Cmax) being attained at about 3 h. Artemisinin areas under the plasma concentration-time curve (AUC) and the Cmax values were about 6 times higher after the first dose on day 1 than on day 6. This decrease in artemisinin plasma concentration is suggestive of an increase in metabolic capacity due to pronounced autoinduction.
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