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Biomedical subjects

Scott Wilkie

Publications and source records attributed to Scott Wilkie.

3 recordsLinked to original sources

Dosing regimen and hematologic effects of pentoxifylline and its active metabolites in normal dogs.

The disposition of pentoxifylline and two of its active metabolites (metabolite 1 [M1] and metabolite 5 [M5]) were studied following i.v. (8 mg/kg) and p.o. (30 mg/kg) administration to eight normal dogs using a randomized crossover design. Blood samples were collected at fixed time intervals after drug administration for determination of drug concentrations, platelet aggregation, and plasma fibrinogen. Complete blood counts, serum chemistry profiles, fibrinogen, and urinalysis were monitored at the beginning and end of each phase of the study (p.o. versus i.v. administration). Pentoxifylline was readily metabolized and bioavailable (50% +/- 26%). Both M1 and M5 were present throughout the study, with M5 predominating. Human drug therapeutic concentrations (1,000 ng/ml) were present for 170 +/- 24 minutes following i.v. administration and 510 +/- 85 minutes after p.o. dosing. These findings suggest that a 12-hour dosing regimen is appropriate. None of the dogs experienced any adverse effects after pentoxifylline administration. The lack of hematologic effects suggests that the immunologic effects of pentoxifylline may be of more importance in dogs.

Administration, Oral↗

RB activation defect in tumor cell lines.

Activation of the retinoblastoma (RB) protein through dephosphorylation arises in cells upon exit from M phase and in response to environmental stresses, including DNA damage. We provide here for the first time evidence that these responses are co-ordinately affected in a subset of tumor derived cell lines. We find that RB dephosphorylation is not apparent in these cells during progression into G(1). Importantly these cells also do not respond with RB activation after DNA damage during S phase. Moreover and as a consequence they display phenotypes classically associated with RB(-) cells, showing accelerated apoptosis after DNA damage and DNA re-replication after spindle-checkpoint activation. A large body of literature provides evidence that controls governing inactivation of RB are lost in tumors. The results presented here indicate that the reverse reaction, namely the activation of RB from an inactive precursor, may also be compromised. Our findings indicate that this type of defect may be coupled with hypersensitivity to DNA damage and an increase in genomic instability in response to spindle-checkpoint activation thus bearing potentially important medical implications.

DNA Damage↗

Plasma concentrations of enrofloxacin and its active metabolite ciprofloxacin in dogs following single oral administration of enrofloxacin at 7.5, 10, or 20 mg/kg.

Plasma concentrations of enrofloxacin and its active metabolite ciprofloxacin were monitored following oral administration of enrofloxacin at 7.5, 10, and 20 mg/kg to six healthy female bloodhounds using a randomized crossover design. Plasma samples were collected at various times over 24 hours following drug administration. Both the parent drug and its metabolite were detected by high-performance liquid chromatography, and plasma drug concentration-versus-time curves were subjected to noncompartmental pharmacokinetic analysis. Descriptive statistics were determined for each dosage, and comparisons were made among dosage groups for selected pharmacokinetic parameters. Increasing dosages of enrofloxacin resulted in increased plasma concentrations of both enrofloxacin and ciprofloxacin. Maximum concentration (Cmax) was 2.12 +/- 0.59, 2.1 +/- 0.34, and 4.74 +/- 1.05 mcg/ml for enrofloxacin and 1.30 +/- 0.31, 1.30 +/- 0.32, and 1.86 +/- 0.35 mcg/ml for ciprofloxacin when enrofloxacin was given at dosages of 7.5, 10, and 20 mg/kg, respectively. Cmax and area under the curve (AUC) for both enrofloxacin and ciprofloxacin were significantly greater at 20 mg/kg than at 7.5 and 10 mg/kg. Disappearance half-life was similar for all dosages, ranging from 4.6 to 5.2 hours for enrofloxacin and 8.8 to 10.7 hours for ciprofloxacin. Ciprofloxacin contributed up to 42% of the Cmax and up to 55% of the AUC of the total (enrofloxacin plus ciprofloxacin). For organisms with a minimum inhibitory concentration (MIC) of 0.5 mcg enrofloxacin/ml, an inhibitory quotient (IQ; Cmax:MIC) of 8 or more was achieved in plasma only at 20 mg/kg.

Administration, Oral↗