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Biomedical subjects

P K Narang

Publications and source records attributed to P K Narang.

At least 19 recordsLinked to original sources

Effects of fluconazole and clarithromycin on rifabutin and 25-O-desacetylrifabutin pharmacokinetics.

Ten human immunodeficiency virus-infected patients were given rifabutin in addition to fluconazole and clarithromycin. There was a 76% increase in the area under the concentration-time curve of rifabutin when either fluconazole or clarithromycin was given alone and a 152% increase when both drugs were given together with rifabutin. Patients should be monitored for adverse effects of rifabutin administered concomitantly with clarithromycin and/or fluconazole.

Adult↗

Effects of rifabutin and rifampicin on the pharmacokinetics of ethinylestradiol and norethindrone.

This open-label, randomized, three-way crossover study of 28 healthy premenopausal women was conducted to compare the impact of concomitant rifabutin and rifampicin on the safety, pharmacokinetics, and pharmacodynamics of the oral contraceptives ethinylestradiol and norethindrone (Ortho-Novum 1/35; Ortho Pharmaceutical, Raritan, NJ). Each participant received oral contraceptives daily for 21 days for the first control cycle, then was randomized to one of two sequences to receive oral contraceptives with concomitant rifampicin and rifabutin at equal doses of 300 mg/day for 10 days. Ethinylestradiol, norethindrone, follicle stimulating hormone (FSH), luteinizing hormone (LH), progesterone, rifampicin, and rifabutin (and metabolite) were measured in plasma over the same time frames in all three cycles. Safety was assessed from before the beginning to the end of each cycle. Twenty-two subjects completed all three cycles. Compared with the control cycle, rifabutin and rifampicin significantly altered the disposition of the oral contraceptive. Area under the concentration-time curve from 0 to 24 hours (AUC0-24) and maximum plasma concentration (Cmax) of ethinylestradiol decreased by 64% and 42%, respectively, after coadministration with rifampicin and by 35% and 20%, respectively, after coadministration with rifabutin. The AUC0-24 of norethindrone decreased by 60% and 20% after coadministration with rifampicin and rifabutin, respectively. Unlike progesterone levels, FSH and LH levels increased during coadministration with rifampicin and rifabutin. The incidence of spotting was significantly higher after coadministration with rifampicin (36.4%) and rifabutin (21.7%) than during the control cycle (3.7%). Although both rifampicin and rifabutin affected the pharmacokinetics of ethinylestradiol and norethindrone, the magnitude of this effect was more pronounced with rifampicin. Likewise, the fact that the highest incidence of spotting occurred with rifampicin was consistent with higher metabolic induction by rifampicin. Despite the fact that there was no change in progesterone levels, it is recommended that patients be advised to use additional contraceptive methods while receiving rifabutin or rifampicin with oral contraceptives to prevent inadvertent pregnancy.

Adolescent↗

Phase I study of 3'-deamino-3'-(2-methoxy-4-morpholinyl)doxorubicin (FCE 23762, PNU 152243) administered on a daily x3 schedule.

BACKGROUND: 3'-Deamino-3'-(2-methoxy-4-morpholinyl)doxorubicin (FCE 23762, PNU 152243) is a highly lipophilic doxorubicin derivative which possesses potent in vitro and in vivo antitumor activity. Previous phase I studies had been conducted using a single bolus every 28 days. PATIENTS AND METHODS: We conducted a phase I study of FCE 23762 on a daily x3 every 28 days schedule. Thirty patients received 68 cycles of therapy at 5 dose levels (200-600 micrograms/m2/d). RESULTS: Prolonged neutropenia and thrombocytopenia were the dose-limiting toxicities. Other nonhematological toxicities included nausea and vomiting, anorexia, fatigue and transient elevations of serum creatinine and hepatic transaminases. No cardiac toxicity was demonstrated. There were no partial or complete antitumor responses. CONCLUSION: The recommended phase II dose using the schedule defined in this study is 500 micrograms/m2/dx3.

Adult↗

Rifabutin absorption in the gut unaltered by concomitant administration of didanosine in AIDS patients.

Didanosine (ddI) is currently used in the management of patients infected by the human immunodeficiency virus. Rifabutin (RBT) is being extensively used for prophylaxis against Mycobacterium avium complex (MAC) infections. Due to its acid-labile characteristics, ddI must be administered with a buffer. Recent reports have indicated that absorption of ketoconazole, ciprofloxacin, and dapsone, etc., in the gut is altered by concomitant ddI dosing. We have assessed whether concomitant dosing of ddI as antiretroviral therapy modifies RBT absorption in the gut, its steady-state pharmacokinetics, and/or safety in 15 patients with AIDS. Of the 15 patients enrolled, 12 completed the study and 3 receiving 600 mg of RBT with concomitant ddI administration withdrew prematurely from the study. Steady-state RBT pharmacokinetics were assessed on day 13 (ddI plus RBT) and day 16 (RBT alone). The ddI doses (adjusted for body weight) were 167 to 375 mg twice daily, while RBT was administered as a single 300- or 600-mg daily dose. No statistically significant (P > 0.05) differences were seen in RBT absorption parameter estimates between days 13 and 16: maximum concentration in plasma (Cmax; 511 +/- 341 ng/ml versus 525 +/- 254 ng/ml) and the time at which Cmax was observed (3.0 versus 2.5 h). The mean RBT estimates for area under the concentration-time curve from 0 to 24 h (AUC(0-tau)) (5,650 versus 5,023 ng x h/ml) and for oral clearance (1.28 versus 1.18 liter/h/kg) on both study days were also similar. Assessment based on urinary recovery of RBT (3.1 versus 3.7 mg) and its predominant deacetyl metabolite, LM565 (1.6 versus 1.4 mg), showed no apparent effect of ddI. The fraction of the RBT dose converted to LM565, as suggested by the ratio of AUC of the metabolite to AUC of the parent drug, was also unaltered (0.15 versus 0.12). A ratio analysis (day 13/day 16) of the RBT pharmacokinetic estimates showed that the 95% confidence intervals for all parameters were inclusive of one. Furthermore, the brief interruption of ddI therapy over this short study period at steady state produced no clinically significant changes in body weight, hematology, and renal and pancreatic functions. Therefore, concomitant administration of ddI appears not to affect RBT absorption in the gut and its disposition or safety in patients with AIDS.

Acquired Immunodeficiency Syndrome↗

Lack of a pharmacologic interaction between rifabutin and methadone in HIV-infected former injecting drug users.

Rifampin, an agent known to decrease the half-life of methadone, and rifabutin are two rifamycins that are structurally similar and share mechanisms of action. Hence the possibility of a drug-drug interaction between rifabutin and methadone was evaluated in 24 methadone-maintained, former injecting drug users infected with the human immunodeficiency virus. The study was an open-label, drug-drug interaction and safety trial in which patients were followed for 15 days. Each patient received rifabutin 300 mg as a single dose concomitantly with their individualized methadone dosage. No significant differences in methadone peak plasma concentration, time to peak plasma concentration, area under the plasma concentration-time curve, systemic clearance or renal clearance was observed in the presence of rifabutin. Seventy-five percent of the patients reported at least one symptom of narcotic withdrawal during the study, however, these symptoms were mild. A relationship between the development of narcotic withdrawal and methadone systemic exposure could not be established. Concurrent administration of rifabutin and methadone appeared to be safe in human immunodeficiency virus-infected injecting drug users maintained on stable doses of methadone and is not expected to produce any significant changes in the pharmacokinetics of methadone in these patients.

AIDS-Related Opportunistic Infections↗

Increased plasma rifabutin levels with concomitant fluconazole therapy in HIV-infected patients.

OBJECTIVE: To determine the effect of fluconazole on rifabutin pharmacokinetics. DESIGN: An open-label, crossover, phase 1 trial. SETTING: Outpatient clinical research center at a university medical center in Washington, D.C. PATIENTS: 12 persons with human immunodeficiency virus (HIV) infection whose CD4 lymphocyte counts were between 200 and 500 cells/mm3 and who were receiving maintenance therapy with zidovudine. INTERVENTION: Fluconazole, 200 mg/d for 2 weeks; then a combination of fluconazole, 200 mg/d, and rifabutin, 300 mg/d, for 2 weeks; and then rifabutin, 300 mg/d, for the final 2 weeks of the study. MEASUREMENTS: Blood and urine samples were obtained at regular intervals for 24 hours at the end of each 2-week dosing period to ascertain concentrations of fluconazole and rifabutin and the 25-desacetyl metabolite of rifabutin, LM565. RESULTS: Fluconazole significantly increased the plasma concentrations of both rifabutin and LM565. Mean increases in the area under the plasma concentration curve compared with the time curve over a 24-hour dosing interval were 82% (5442 +/- 2404 ng.h/mL compared with 3025 +/- 1117 ng.h/mL; P less than or equal to 0.05) for rifabutin and 216% (959 +/- 529 ng.h/mL compared with 244 +/- 141 ng.h/mL; P less than or equal to 0.05) for LM565. CONCLUSIONS: Fluconazole significantly increases the systemic exposure of both rifabutin and LM565. This pharmacokinetic interaction offers a mechanism that may explain the changes reported in both the efficacy and toxicity of rifabutin with concomitant fluconazole therapy.

AIDS-Related Opportunistic Infections↗

A model based assessment of redistribution dependent elimination and bioavailability of rifabutin.

The autoinduction characteristic of rifabutin (RIF) following multiple oral dosing was investigated via pharmacokinetic modeling. A two-compartment model with first-order absorption was fit to plasma RIF data obtained from a study conducted in healthy normal volunteers following both a single and multiple oral doses. Parameter estimates showed an elimination rate constant (k10) of about 0.12-0.14 h-1 which was independent of the single or multiple-dosing condition. The lower-than-expected drug accumulation following multiple dosing seems to suggest that prolonged dosing perturbs the linear kinetic system. However, this analysis has shown no significant changes (p > 0.05) in the rate constants describing RIF absorption, tissue distribution/redistribution, and elimination. The mean rate of drug redistribution from the tissue compartment (k21; 0.04-0.06 h-1) was twofold to threefold lower than k10, and, with a large steady-state distribution volume (Vss/F after a single dose, 1630 L), RIF elimination appears to be dependent on drug redistribution. This hypothesis was further supported by a significant correlation (p < 0.01) between RIF tissue redistribution (k21) and terminal disposition phase rate (lambda z) constants. The redistribution dependent elimination of RIF also helps explain the stability of the terminal half-life under both single and multiple-dosing paradigms. Urinary excretion of RIF and its 25-O-deacetyl metabolite totalled less than 7% of the oral dose following single dosing, and decreased to about 4% after multiple dosing. For individual patients, the decrease in urinary recovery of the 25-O-deacetyl metabolite was directly proportional to the decrease in urinary RIF recovery. In addition, both estimates of the model intercepts (A and B) were lower following multiple dosing. Further analyses revealed a linear relationship between A and B intercepts, and also between the urinary RIF recovery and the B intercept. These relationships, in conjunction with the lack of significant increase in the rate of elimination, indicate that induction of presystemic extrahepatic metabolism and/or decrease in the extent of oral absorption may be the primary causes for the lower-than-expected systemic RIF plasma levels after multiple oral dosing.

Administration, Oral↗

Dose-independent pharmacokinetics of the cardioprotective agent dexrazoxane in dogs.

A randomized, four-way cross-over design was used to assess the disposition of the cardioprotective agent, dexrazoxane, in four male beagle dogs following single I.V. administration of 10, 25, 50, and 100 mg kg-1 doses. Parent drug was quantified in plasma and urine with a validated high-pressure liquid chromatographic-electrochemical assay. A two-compartment open model adequately described the dexrazoxane plasma concentration versus time data. The terminal half-life ranged between 1.1 and 1.3 h and the apparent steady-state distribution volume was 0.67 L kg-1. The systemic clearance (CL) ranged from 10.3 to 11.5 mL min-1 kg-1, while estimates of renal clearance approximated the glomerular filtration rate (GFR approximately 3.2-4.9 mL min-1 kg-1). Over the dose range evaluated, CL was dose independent (ANOVA, p = 0.33), while concentration at the end of infusion (Cend) and the area under the concentration versus time curve (AUC) were directly proportional to the dose (r > 0.999). The blood cell to plasma partitioning ratio was approximately 0.517 and drug was essentially unbound to plasma proteins (fu approximately 0.95). Dexrazoxane appeared to be subject to low organ extraction, since the hepatic and renal drug extraction ratios were on the order of 0.228 +/- 0.054 and 0.184 +/- 0.024, respectively. These results suggest a relatively small drug distribution space (approximately equal to total-body water) and low tissue and plasma protein binding. In light of the low plasma protein binding and extraction ratio exhibited by dexrazoxane, metabolic capacity and renal function would appear to be the predominant variables affecting the CL of this drug. The constancy of the half-life, CL, and VSS with increasing dose indicates dose-independent disposition for dexrazoxane. Thus a linear increase in the systemic exposure can be predicted over this dose range.

Animals↗

Lack of effect of concomitant zidovudine on rifabutin kinetics in patients with AIDS-related complex.

The effect of concomitant dosing with the antiretroviral agent zidovudine (ZDV) on the pharmacokinetics of rifabutin (RBT) was investigated under steady-state conditions. Sixteen human immunodeficiency virus-positive patients with AIDS-related complex who had been maintained on stable ZDV therapy for > or = 6 weeks were administered RBT concomitantly for 12 days. Eight patients received daily doses of 300 or 450 mg of RBT. Administration of ZDV was discontinued on day 13, and RBT was given alone for 3 additional days. Four patients receiving 450 mg of RBT discontinued treatment. Under steady-state ZDV and RBT dosing, safety and kinetics assessments were performed on day 13 (ZDV plus RBT) and day 16 (RBT alone). Kinetics on days 13 and 16 demonstrated that RBT (300 or 450 mg) was readily absorbed, with the time at which the plasma concentration was maximal (Tmax) ranging between 2.6 and 2.9 h. At these two doses, the mean steady-state maximal plasma concentrations (Cmax) were 250 and 430 ng/ml on day 13 and 245 and 458 ng/ml on day 16, respectively. RBT kinetics at the two doses were proportional and similar on the basis of estimates of the ratios of the areas under the concentration-time curves over the dosing interval from 0 to 24 h (AUC0-24) (450 mg/300 mg), which were 1.5 and 1.4 for days 13 and 16, respectively. No significant differences were apparent in the mean oral clearance (CLs/F) estimates (range, 1.60 to 1.77 liters/h/kg), which were dose independent and similar for the 2 assessment days, as was the urinary recovery of RBT and its 25-deacetyl metabolite. Low urinary recovery of 25-deacetyl RBT and an AUC metabolite/parent ratio of 0.1 suggest that there is minimal metabolism of RBT via the deacetylation pathway. For RBT, pooled mean (95% confidence interval) ratio (day 13/day 16) estimates for Cmax, Tmax, AUC0-24, and CLs/F were 1.07 (range, 0.77 to 1.38), 1.08 (0.89 to 1.27), 0.97 (0.82 to 1.13), and 1.09 (0.92 to 1.26), respectively. In addition, no significant changes in any of the major safety parameters were detected throughout the study. Therefore, it is concluded that coadministration of ZDV and RBT does not affect the pharmacokinetics and/or safety of RBT in human immunodeficiency virus-positive patients.

AIDS-Related Complex↗

A phase I evaluation of concomitant rifabutin and didanosine in symptomatic HIV-infected patients.

It has been suggested that didanosine (ddI) may undergo hepatic metabolism. Rifabutin is an inducer of drug metabolism. Fifteen human immunodeficiency virus-infected patients whose conditions were stabilized on twice-daily doses of ddI participated in a Phase I, open-label, pharmacokinetic and safety drug interaction study between rifabutin and ddI. Twelve patients completed the study. All patients received their regular ddI dose (167-375 mg) on day 1. On days 2-13 they received once-daily rifabutin (600 mg, three patients; 300 mg, nine patients) with their regular twice-daily ddI regimen. On days 14-16 they received rifabutin alone. Serial blood and urine samples were collected for 12 h on day 1 and for 24 h on days 13 and 16, and safety evaluations were made throughout the study. Average day 1/day 13 ddI pharmacokinetic ratios and 95% confidence interval values for Cmax, AUC0-infinity, Cls/F, and t 1/2, lambda z were 1.17 (0.96-1.38), 1.13 (0.99-1.27), 0.91 (0.81-1.01), and 0.97 (0.79-1.15), respectively (p > 0.05 for all comparisons; paired t test). A 20% difference in AUC0-infinity could be detected with 90% power. Also, there were no significant changes in laboratory values or electrocardiograms, or in rifabutin pharmacokinetic parameters when the two agents were coadministered. Based on the safety and pharmacokinetic assessments, rifabutin did not appear to interact with ddI.

Adult↗

Concentration-dependent protein binding of a novel oral thromboxane synthase inhibitor--FCE 22,178.

The protein binding of FCE 22,178 in humans was determined ex vivo by equilibrium dialysis using plasma samples obtained from a dose-ranging study in normal male volunteers. These data suggested that FCE 22,178 may exhibit concentration-dependent protein binding over an in vivo concentration range of .8 to 64 micrograms/mL. Increase in free fraction at higher plasma drug concentrations corresponded directly to the dose-dependent increase in renal drug clearance. Nonlinear parameter estimation showed that FCE 22,178 binds tightly to plasma proteins with an apparent equilibrium association constant of 1.44 x 10(5) mol/L. Predicted change in the free fraction is consistent with the observed changes in renal clearance.

Blood Proteins↗

A phase I dose-ranging safety and pharmacokinetics study of a novel oral thromboxane synthase inhibitor, FCE 22, 178.

A 100- to 3200-mg dose range of FCE 22,178 was studied in this phase I single-dose escalation safety/kinetics study. After oral administration, a rapid drug absorptive phase and a biexponential disposition profile were observed. Mean estimates of the terminal elimination half-life of FCE 22,178, over the doses studied, ranged from 7.6 to 14.4 hours. A disproportionate increase in both maximum peak plasma concentration (Cmax) and area under the curve (AUC0-infinity) was noticed for doses higher than 400 mg. Mean estimates of systemic clearance (CLs/F) over the 100- to 400-mg doses were 0.053 to 0.064 L/hour/kg, and were significantly higher for the three higher dose levels. This nonlinearity appears to be related to the changes in oral bioavailability. Estimates of distribution volume (Vd, lambda z/F) for FCE 22,178 increased from 0.75 L/kg at the 100-mg dose to 3.00 L/kg at the 3200-mg dose, and renal clearance (CLr) also increased with dose. Both observations may be related to an increase in free fraction of FCE 22,178 at higher doses. Urinary excretion of unchanged drug averaged < 10% for all dose levels. The urinary excretion of the glucuronide metabolite (M1) averaged 41 to 70% for doses up to 400 mg, but diminished to 13% at the 3200-mg dose. The disposition of M1 appeared to be formation-rate limited. In addition, the ratio of the formation to the disposition clearance for M1 was relatively stable and apparently dose independent. No drug-related adverse experiences were observed over the studied dose range after single doses at FCE 22,178.

Administration, Oral↗

Influence of the cardioprotective agent dexrazoxane on doxorubicin pharmacokinetics in the dog.

The influence of dexrazoxane on doxorubicin pharmacokinetics was investigated in four dogs using the two treatment sequences of saline/doxorubicin or dexrazoxane/doxorubicin. Intravenous doses of 1.5 mg/kg doxorubicin and 30 mg/kg (the 20-fold multiple) dexrazoxane were given separately, with doxorubicin being injected within 1 min of the dexrazoxane dose. Both doxorubicin and its 13-dihydro metabolite doxorubicinol were quantified in plasma and urine using a validated high-performance liquid chromatographic (HPLC) fluorescence assay. The doxorubicin plasma concentration versus time data were adequately fit by a three-compartment model. The mean half-lives calculated for the fast and slow distributive and terminal elimination phases in the saline/doxorubicin group were 3.0 +/- 0.5 and 32.2 +/- 12.8 min and 30.0 +/- 4.0 h, respectively. The model-predicted plasma concentrations were virtually identical for the saline and dexrazoxane treatment groups. Analysis of variance of the area under the plasma concentration-time curve (AUCo-infinity), terminal elimination rate (lambda z), systemic clearance (CLs), and renal clearance (CLr) for the parent drug showed no statistically significant difference (P greater than 0.05) between the two treatments. Furthermore, the doxorubicinol plasma AUCo-t value and the doxorubicinol-to-doxorubicin AUCo-t ratio showed no significant difference, demonstrating that dexrazoxane had no effect on the metabolic capacity for formation of the 13-dihydro metabolite. The total urinary excretion measured as parent drug plus doxorubicinol and the metabolite-to-parent ratio in urine were also unaffected by the presence of dexrazoxane. The myelosuppressive effects of doxorubicin as determined by WBC monitoring revealed no apparent difference between the two treatments. In conclusion, these results show that drug exposure was similar for the two treatment arms. No kinetic interaction with dexrazoxane suggests that its coadministration is unlikely to modify the safety and/or efficacy of doxorubicin.

Animals↗

A sensitive and specific procedure for quantitation of ADR-529 in biological fluids by high-performance liquid chromatography (HPLC) with column switching and amperometric detection.

An HPLC method using electrochemical detection (ED) has been validated for the determination of ADR-529 in plasma and urine using ICRF-192 as an internal standard (IS). Prior to storage and quantitation, both plasma and urine samples require acid stabilization. Acidified plasma samples were prepared for HPLC using a two column solid-phase extraction (SPE). An aliquot of buffered plasma (i.e., pH 6-7) was first deproteinated and desalted on a C-18 SPE column. The analytes were then eluted onto a C-8 SPE column where retention and selective cleanup were achieved in the cation-exchange mode via silanol interactions. Acidified urine samples were diluted in acetonitrile prior to injection. The HPLC system for plasma and urine samples employed two narrow-bore silica columns used in the weak cation-exchange mode and separated by a switching valve. To prohibit late-eluting peaks from passivating the glassy carbon working electrode, a heart-cut containing ADR-529 and the IS was vented from the first silica column to the second using an automated switching valve. Amperometric detection at an oxidation potential of +1050 mV vs a Ag/AgNO3 reference electrode was used. Linearity was validated between 5 and 500 ng/ml in plasma and between 2 and 100 micrograms/ml in urine. Imprecision and percentage bias were typically less than 10% for both plasma and urine controls throughout their respective dynamic ranges. The absolute recoveries for ADR-529 and the IS from plasma were greater than 95%. This method is being successfully applied to the pharmacokinetic/dynamic evaluation of ADR-529 in animals and humans.

Chromatography, High Pressure Liquid↗

Rifabutin absorption in humans: relative bioavailability and food effect.

The relative bioavailability of the capsule dose form (150 mg) and the effect of high-fat food were assessed in a randomized, three-way crossover trial of rifabutin in 12 healthy male volunteers. Each subject received a single 150 mg dose as a solution (treatment A, fasted) or a capsule with food (treatment B) and without food (treatment C), with a 2-week washout period. Serial plasma and urine samples were obtained for 168 and 48 hours, respectively, and rifabutin and its active metabolite, 25-O-deacetyl-rifabutin, quantitated by a validated HPLC procedure. The mean +/- SD maximum concentration for rifabutin in plasma was 238 +/- 65, 156 +/- 52, and 188 +/- 50 ng/ml, time to reach peak concentration was 2.5 +/- 0.4, 5.4 +/- 1.6, and 3.0 +/- 1.1 hours, and the area under the plasma concentration-time curve from zero to infinity [AUC(0-infinity)] was 2989 +/- 726, 2640 +/- 891, and 2516 +/- 601 ng.hr/ml for the solution and the capsule during the fed and fasted states, respectively. Percentage of dose excreted in the urine as unchanged rifabutin was 11.0% +/- 2.4%, 11.4% +/- 4.9%, and 9.1% +/- 2.1% for treatments A, B, and C, respectively. The corresponding AUC(0-infinity) values for the equiactive metabolite 25-O-deacetyl-rifabutin, were 400 +/- 184, 361 +/- 187, and 298 +/- 102 ng.hr/ml.(ABSTRACT TRUNCATED AT 250 WORDS)

Administration, Oral↗

Intrathecal 6-mercaptopurine: preclinical pharmacology, phase I/II trial, and pharmacokinetic study.

For over 30 years, oral 6-mercaptopurine (6-MP) has been a mainstay of systemic maintenance therapy for acute lymphoblastic leukemia. Despite its efficacy as an antileukemic agent, 6-MP has not been previously administered by the intrathecal (IT) route. In anticipation of a clinical trial of IT 6-MP, preclinical cytotoxicity and pharmacology studies were performed to define a safe, effective dose. The optimal concentration (greater than 1 microM) and duration of exposure (greater than 12 h) to 6-MP required for cytotoxicity were determined in vitro using human leukemia cell lines. The dose required to achieve the desired cerebrospinal fluid concentrations in humans was derived from pharmacokinetic parameters determined in rhesus monkeys. A phase I/II study was then performed in pediatric patients with refractory meningeal leukemia. Nine patients (aged 3.5 to 16 years) with chronic meningeal leukemia (2 to 6 central nervous system relapses) were entered onto the study. All had previously failed, at a minimum, IT methotrexate, IT cytarabine, and cranial (+/- spinal) radiation. A 10-mg IT dose of 6-MP (calculated to produce cytotoxic cerebrospinal fluid levels for 12 h) was administered twice weekly for 4 weeks. There were four complete responses and three partial responses. The duration of complete responses ranged from 7 to 22 weeks. Observed toxicities were not dose limiting and included mild headache (three patients) and minimal nausea (two patients). Pharmacokinetic studies performed in patients confirmed that cerebrospinal fluid concentrations of 6-MP were greater than 1 microM for 12 h. These results indicate that the IT administration of 6-MP is feasible, is not associated with significant toxicity, and has definite activity in patients with refractory meningeal leukemia.

Adolescent↗

Quantitation of a novel antiemetic (ADR-851) in plasma and urine by reversed-phase high-performance liquid chromatography with fluorescence detection.

A sensitive and specific bioanalytical method for quantitation of a novel antiemetic (ADR-851) in plasma and urine has been developed and validated. The drug and internal standard (metoclopramide) are extracted from the plasma matrix by solid-phase extraction on cyanopropyl bonded-phase columns. After extraction, samples are separated by isocratic reversed-phase high-performance liquid chromatography. The parent drug, internal standard and a yet unidentified metabolite are detected by fluorescence. The method requires 1.0 ml of plasma or 0.1 ml of urine and has a lower limit of quantitation of 2 ng/ml with 10.9% relative standard deviation (R.S.D.). Method linearity has been established over a 2-800 ng/ml range when 1.0 ml of plasma is used. The intra- and inter-day imprecisions for the method are typically better than 6% and 11% R.S.D., respectively, in both plasma and urine over the entire dynamic range. The pooled estimate of bias is less than 5% and attests to the excellent accuracy.

Antiemetics↗