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B A Catto

Publications and source records attributed to B A Catto.

5 recordsLinked to original sources

Uptake and effect of praziquantel and the major human oxidative metabolite, 4-hydroxypraziquantel, by Schistosoma japonicum.

After exposure to praziquantel in vitro at a concentration of 1 microgram/ml for 0.5-2 hr, amounts of praziquantel in Schistosoma japonicum varied from 2.1 +/- 1.2 to 3.7 +/- 1.6 ng/male worm and 1.3 +/- 1.2 to 2.2 +/- 1.5 ng/female worm during the time studied. At 30 micrograms/ml, praziquantel amounts were 11-33-fold higher. However, within 2 hr after removal from a medium containing 30 micrograms/ml praziquantel, 95% of the drug was released from the parasites. When S. japonicum worm pairs were incubated in vitro with 1, 10, and 30 micrograms/ml of 4-hydroxypraziquantel, the major human oxidative metabolite of praziquantel, 0.2 +/- 0.2, 3.8 +/- 1.3, and 7.4 +/- 1.3 ng/worm pair, respectively, were found after a 2-hr incubation. 15-30-fold lower than corresponding worm pair amounts of praziquantel. In vivo, when 4- or 5-wk S. japonicum-infected mice were treated orally with praziquantel (300 mg/kg), peak concentrations of praziquantel in plasma determined by high pressure liquid chromatography were 14.7 +/- 1.5 micrograms/ml (4-wk infection) and 16.7 +/- 2.8 micrograms/ml (5-wk infection) 15 min after treatment. Corresponding in vivo worm praziquantel amounts were 1.8 +/- 0.4 ng/male worm and 2.4 +/- 1.1 ng/female worm, respectively, in the 4-wk infection and 4.6 +/- 1.6 ng/male worm and 5.6 +/- 1.2 ng/female worm in the 5-wk infection. Peak plasma concentrations of 4-hydroxypraziquantel were similar but corresponding in vivo worm amounts were 1-20-fold lower, depending on the time after drug administration.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

In vitro and in vivo studies of the effect of artemether on Schistosoma mansoni.

To determine whether artemether, a derivative of the antimalarial agent qinghaosu, is therapeutically active against Schistosoma mansoni, we determined the in vitro, in vivo, and histopathologic effects of the drug on S. mansoni worms. In vitro, toxic effects of artemether on S. mansoni were not seen at concentrations of less than 100 micrograms/ml. However, in vivo, 30 and 50% reductions in the lengths of male and female worms, respectively, were observed 14 days after treatment. By 56 days worm dimensions had returned to control values. Similar reversible effects on male testes and female ovaries were seen. In vivo, a single oral dose of artemether (300 mg/kg) induced a shift of worms towards the liver within 8 h after treatment. By 3 and 14 days after treatment, 99 and 76%, respectively, of worms were still in the liver. In vivo, the therapeutic effect of artemether on adult S. mansoni treated on day 56 after infection was modest. Doses as high as 1,200 mg (200 mg/kg per day, six doses) resulted in a worm reduction rate of only 39%. However, in infected mice treated on day 14 or 21 after infection, worm reduction rates of 83 to 98% were obtained. Thus, artemether exhibited modest in vitro and in vivo activities against adult S. mansoni but was twofold more active against 2- to 3-week-old liver-stage parasites.

Animals

Streptococcus mitis. A cause of serious infection in adults.

Twenty strains of Streptococcus mitis were isolated from blood or body fluids at the Cleveland Veterans Administration Medical Center from Jan 1, 1981, to April 30, 1984. Fifteen (75%) isolates were considered contaminants. Five (25%) were clinically important and associated with a serious infection of the oropharynx or gastrointestinal tract (three of five), endovascular system (one of five), or a prosthetic hip. Four of five patients required surgical intervention for treatment. Two of five died; one death was directly attributable to S mitis infection. Eighteen strains were available for detailed bacteriologic study. Three strains had a minimum inhibitory concentration of greater than 0.1 micrograms/mL of penicillin and six other strains were tolerant to penicillin. This review suggests that S mitis can be an important pathogen in adults and may cause infections other than endocarditis.

Adult

Formation of N-(5-nitro-2-thiazolyl)-N'-carboxymethylurea from 5-hydroxyniridazole. Role of aldehyde dehydrogenase in the oxidative metabolism of niridazole.

N-(5-nitro-2-thiazolyl)-N'-carboxymethylurea (NTCU) has been identified as a urinary metabolite of the antischistosomal drug niridazole [1-(5-nitro-2-thiazolyl)-2-imidazolidinone]. When DBA/2J mice were treated with [14C]niridazole, a metabolite comprising 12-14% of the total radioactivity in 24-hr urine samples was resolved by HPLC. The compound was subsequently isolated from pooled urine of niridazole-treated patients. It was identified as NTCU by mass spectrometry, and the deduced structure was confirmed by chemical synthesis. NTCU is unique among known niridazole metabolites, because it lacks an intact imidazolidinone ring. Its structure allows for a ketoenol tautomerism in which the enolate is stabilized by conjugation with the nitrothiazole ring, as evidenced by a pH-dependent 80-nm red shift in the absorption spectrum. We hypothesized that NTCU arises via oxidation of an acyclic aldehyde tautomer of 5-hydroxyniridazole, one of two proximate oxidative niridazole metabolites. Indirect evidence for the aldehyde tautomer included the fact that 5-hydroxyniridazole displayed the same pH-dependent spectral shift as NTCU with a single isobestic point at 388 nm. The proposed precursor-product relationship was confirmed when we found that NTCU formation from 5-hydroxyniridazole was catalyzed by NAD(+)-dependent aldehyde dehydrogenase (EC 1.2.1.3). The activity copurified with benzaldehyde dehydrogenase activity from mouse liver cytosol. Furthermore, benzaldehyde was a competitive inhibitor of 5-hydroxyniridazole dehydrogenase activity. These results demonstrate that 5hydroxyniridazole is not an end product of niridazole metabolism. Because biotransformation of niridazole to its 4- and 5-hydroxy derivatives has been implicated in the drug's carcinogenicity and central nervous system toxicity, NTCU formation appears to represent a detoxication pathway in mammals.

Aldehyde Dehydrogenase