PubMed HealthSearch

SEARCH · PubMed Health

Results for “Menogaril”

Explore indexed PubMed citations for clinical trials, systematic reviews and public health research. Read source abstracts and follow each citation to its original PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 19 recordsLinked to original sources

Pharmacokinetics and systemic bioavailability of menogaril, an anthracycline antitumor agent, in the mouse, dog, and monkey.

Menogaril is an antitumor agent of the anthracycline type which is less cardiotoxic than doxorubicin in a chronic rabbit model and is active in experimental tumor systems when given by p.o. or parenteral routes. It is currently undergoing i.v. and p.o. Phase II clinical evaluation. We report here the results of pharmacokinetic and systemic bioavailability studies of menogaril in three species (mouse, dog, and monkey). Upon i.v. administration, menogaril plasma concentration-time curves declined in a biexponential (dog) or triexponential (mouse and monkey) manner, with the terminal disposition half-life (t1/2) being considerably shorter in the dog (2.86 +/- 0.47 h) than in the mouse and monkey (21.6 and 19.0 +/- 3.7 h, respectively). The systemic clearance (CL, in liters/h/kg) was highest in mouse (6.2), followed by dog (2.9) and then monkey (1.4). The drug was extensively distributed in all three species, with steady state volumes of distribution being 88.5, 9.8, and 27.9 liters/kg in the mouse, dog, and monkey, respectively. One, two, and three metabolites were detected in the plasma of mice, monkeys, and dogs, respectively, using reverse phase high performance liquid chromatography. The major fluorescent metabolite in all species coeluted with authentic N-demethyl-menogaril; the other two metabolites were present at low concentrations relative to unchanged menogaril and its putative N-demethylated metabolite. One of these metabolites, which was found in both the dog and monkey, eluted with authentic (7R)-nogarol. Mean maximum plasma concentrations of the putative N-demethylmenogaril metabolite were approximately one-tenth those of menogaril in all three species following i.v. drug administration. Upon p.o. treatment, first-pass metabolism or incomplete absorption reduced the systemic bioavailability to 12% in the dog and 33% in the mouse and monkey. N-Demethylmenogaril was the major fluorescent metabolite observed in the plasma of p.o. treated animals. Interspecies comparison of menogaril pharmacokinetic parameters in mice, dogs, monkeys, and humans using allometric techniques indicated that the parameters for mice, monkeys, and humans were highly correlated; in each of these species presystemic metabolism of p.o. administered menogaril reduced its systemic bioavailability to an equivalent extent (30-35%). To determine if metabolically formed N-demethylmenogaril might contribute to the overall antitumor activity of menogaril, we determined the effect of synthetic N-demethylmenogaril on the life span of mice bearing P388 leukemia. Results indicated that the metabolite is marginally active compared to menogaril itself.

Administration, Oral

P388 leukaemia cells resistant to the anthracycline menogaril lack multidrug resistant phenotype.

Menogaril is an anthracycline presently in Phase II clinical trials. Menogaril-resistant mouse leukaemia P388 cells were developed in vitro by 4 months of exposure to step-wise increasing concentrations of menogaril after which resistant cells (P388/MEN) were cloned in 320 ng ml-1 menogaril. P388/MEN cells were 40-fold more resistant to menogaril in vitro compared to P388/O and were also resistant in vivo. Resistance to menogaril was stable for at least 2 months in the absence of the drug. The results indicate that P388/MEN, although resistant to an anthracycline, did not display the typical multidrug resistant phenotype. It was not cross-resistant to several structurally unrelated drugs such as actinomycin D, cisplatin, or vinblastine, but it was cross-resistant to the anthracycline, adriamycin. Uptake and efflux of menogaril was similar in sensitive and resistant cell lines. Also, resistance was not reversed by verapamil. No major karyotypic difference was noted between P388/O and P388/MEN. There was no significant amplification or overexpression of the mdr gene in P388/MEN compared to P388/O. In contrast to P388/MEN, P388 cells resistant to adriamycin displayed the typical multidrug resistant phenotype. Glutathione content of P388/MEN cells was similar to that of P388/O and depletion of glutathione did not potentiate menogaril cytotoxicity. Therefore, we conclude that glutathione is not likely to be involved in menogaril resistance to P388/MEN cells.

Animals

Phase I study and pharmacokinetics of menogaril (NSC 269148) in patients with hepatic dysfunction.

We performed a phase I study of menogaril to determine if dosage reduction was required in patients with hepatic dysfunction and if the relationship between pharmacokinetics and leukopenia, previously defined in patients with normal hepatic and renal function, was altered. Eighteen patients received 27 courses of menogaril, of which 26 were evaluable for toxicity. Patient characteristics were median age, 63 years (range, 28-80 years), 14 male/4 female, and median Karnofsky performance status 80% (range, 60-100%). Prior therapy included none, five; chemotherapy only, seven; radiotherapy only, two; and chemotherapy and radiotherapy, four. Menogaril was administered as a 2-h.i.v. infusion every 28 days at 62.5 (one patient), 125 (eight patients), 187.5 (seven patients), and 250 mg/m2 (six patients), based on pretreatment serum bilirubin, aspartate aminotransferase, alanine aminotransferase, and alkaline phosphatase. Patients also had indocyanine green and antipyrine clearances measured before menogaril treatment. Menogaril and metabolites were assayed by high performance liquid chromatography. Dose-limiting toxicity was leukopenia. WBC nadirs occurred between days 8 and 20 (median, 15). Three patients developed platelet nadirs below 100,000/microliters. Other toxicities included grade I nausea and vomiting in three patients and phlebitis at the site of drug infusion in six patients. Correlations were defined between pretreatment indocyanine green clearance and serum concentrations of alkaline phosphatase and total bilirubin. There were no correlations between pretreatment serum concentrations of bilirubin, aspartate aminotransferase, alanine aminotransferase, alkaline phosphatase, indocyanine green clearance or antipyrine and menogaril clearances. Menogaril pharmacokinetics in patients with elevated liver function tests was indistinguishable from that described in patients with normal liver function tests. There were excellent correlations between plasma area under the curve of menogaril and the percentage decreases in WBC and neutrophils. These were well described by two models previously used to study the same relationships in patients with normal hepatic and renal function. When compared to previous studies, patients with hepatic and renal dysfunction had a greater percentage decrease in WBC for any given area under the curve than did patients with normal hepatic and renal function. On the other hand, there was no difference in the relationship between percentage decrease in neutrophils and menogaril area under the curve in these two groups of patients.(ABSTRACT TRUNCATED AT 400 WORDS)

Adult

Pharmacokinetics and acute cardiovascular effects of menogaril in patients with metastatic tumors.

The new anthracyclin, menogaril [7-(R)-0-methylnogarol], is reported to produce less cardiotoxicity than doxorubicin after multiple doses. This study was designed to assess acute hemodynamic changes during the first administration of menogaril and to relate these changes to plasma concentrations. Menogaril (200 mg/mg) was infused over 90 minutes to 4 patients with metastatic colon or prostate cancer. Cardiac output (CO) and stroke volume (SV) were measured noninvasively by Doppler ultrasound. Menogaril plasma concentrations were measured by HPLC and a 3-compartment mammillary model was used for pharmacokinetic analysis of the results. Steady-state volume of distribution, elimination clearance, and elimination half-life averaged 1,114 +/- 340 l/m2, 38 +/- 16 l/h/m2 and 40.3 +/- 30.3 hours, respectively. All patients were normotensive (baseline blood pressure = 135 +/- 10/73.5 +/- 8 mmHg) and ejection fractions were in normal range (EF = 68 +/- 7%). Transient increase in mean arterial pressure (MAP) from 93 +/- 3 to 107 +/- 4 mmHg (p < or = 0.001) were seen during and shortly after the end of menogaril infusion in all patients. Heart rate (78 +/- 5 min-1) remained constant. CO fell slightly and total peripheral resistance (TPR) increased by 36.8% in the last 2 patients. The increase in MAP was analyzed by a linear-effect model and averaged 0.028 +/- 0.017 mmHg per ng/ml of menogaril in the hypothetical biophase. The half-life for menogaril equilibration between plasma and this biophase was 41 +/- 22 minutes. We conclude that during acute administration of menogaril, blood pressure increases transiently secondary to an increase in TPR.(ABSTRACT TRUNCATED AT 250 WORDS)

Aged

A phase I clinical and pharmacokinetic study of the oral and the oral/intravenous administration of menogaril.

Thirty-five patients with advanced refractory cancer were enrolled on this phase I study of menogaril administered orally every 4 weeks at dosages ranging from 85 mg/m2 to 625 mg/m2. An additional 12 patients received alternating oral and IV doses of menogaril (250 mg/m2 IV; 250-500 mg/m2 oral) with accompanying blood and urine sampling for pharmacokinetics analysis. Nausea and vomiting were the dose-limiting toxicities at the 625 mg/m2 dosage level; vomiting was inadequately relieved by prophylactic antiemetics at this dosage level. Other toxicities included sporadic leukopenia at all dosage levels; at dosages of 500 mg/m2 and 625 mg/m2, leukopenia < 3000/microliters occurred in 7 of 24 patients. Anemia and thrombocytopenia were much less frequent toxicities. Among the patients receiving IV menogaril, peripheral vein phlebitis, leukopenia and anemia were the predominant toxicities. No antitumor responses were observed, yet one patient with non-small cell lung cancer experienced a 30% reduction in metastatic tumor nodules. For the patients receiving alternating oral and IV menogaril, comparative pharmacokinetic analyses were performed by HPLC. After oral administration, maximum plasma concentrations were achieved in an average of 6 hours; maximum plasma concentrations were less than one-quarter of those achieved after intravenous administration. The harmonic mean (+/- SD) terminal disposition half-life after oral dosing was 29.3 +/- 9.2 hours; mean systemic bioavailability was 33.6 +/- 10.5% after oral dosing. Forty-eight hours after an oral dose, mean cumulative urinary excretions of menogaril and the primary metabolite, N-demethylmenogaril, were 4.00 +/- 0.96% and 0.44 +/- 0.16%, respectively. Because of the poor tolerance of oral menogaril and minimal evidence of biological activity, this schedule of drug administration is not recommended for phase II evaluation. Based on this and other published studies of oral menogaril, frequent chronic low-intermediate dosages of the drug may be given orally with potentially better tolerance and antitumor activity.

Administration, Oral

Phase I clinical and pharmacokinetic trial of oral menogaril administered on three consecutive days.

Eighteen adult patients with solid tumors were treated with oral menogaril, a new anthracycline antibiotic active against human breast cancer after intravenous administration. The drug was given orally on 3 consecutive days every 4 weeks at doses ranging from 50 to 175 mg/m2/day. Reversible and dose-related leukopenia was the dose-limiting toxicity. Thrombocytopenia was less frequent. Hematologic toxicity was maximal usually 2 weeks after treatment and recovery usually occurred within 4 weeks. At doses from 50 to 150 mg/m2/day, non-hematologic side-effects of oral menogaril were infrequent and mild and consisted of nausea and vomiting (one patient), alopecia (two patients), mucositis (two patients) and liver function test abnormalities (three patients). The single patient treated at a daily dose of 175 mg/m2/day developed grade IV leucothrombocytopenia, with fever and gastrointestinal bleeding. This was followed by heart failure and the patient died from multisystem organ failure. Peak plasma concentrations of menogaril ranged from 0.043 to 0.409 microM and were linearly correlated with the dose. Similarly, the area under the plasma concentration versus time curve varied from 0.33 to 9.59 microM X h and was linearly correlated with the dose. The mean harmonic half-life was 11.3 +/- 6.4 h. A comparison of the data from the present trial and our previous study with intravenous menogaril indicates a bioavailability of 32 +/- 12%. There was an excellent relationship between the white blood cell decrease (as a percentage of the pretreatment value) and several pharmacokinetic parameters; the best correlation was obtained with the plasma concentration of menogaril at 4 h after treatment. A dose of 150 mg/m2/day for 3 consecutive days is recommended for phase II trials with oral menogaril but the bioavailability of the drug should be monitored carefully and, more specifically, the concept of a pharmacokinetic adjustment of the dose of menogaril should be evaluated prospectively.

Administration, Oral

Human autopsy-tissue distribution of menogaril and its metabolites.

Autopsy-tissues were obtained from eight patients who had last received menogaril (total cumulative dose, 175-1080 mg/m2) intravenously (one patient) or orally (seven patients) from 1 to 285 days prior to death. Tissue samples were assayed for menogaril and its metabolities by high-pressure liquid chromatography. Unchanged menogaril was found only in a single lung-tissue sample from a patient who had died < 24 h after receiving his last treatment. N-Demethylmenogaril was found in two lung-tissue samples and in single samples of the thyroid, lymph node, pancreas, cerebellum, and tumor. The major menogaril metabolite found in human autopsy-tissues was 7-deoxynogarol. The highest 7-deoxynogarol concentrations were found in the large bowel (median, 201 ng/g), liver (median, 183 ng/g), and lung (median, 177 ng/g). The heart ranked as the 9th of 18 organs in median 7-deoxynogarol concentration, after the large bowel, liver, lung, tumor, thyroid, skeletal muscle, adrenal gland, and kidney. The lowest concentrations were detected in brain tissue. Our results suggest that the low degree of cardiac toxicity and the possible pulmonary toxicity of menogaril may be related to relative tissue concentrations of menogaril metabolites. Tumor 7-deoxynogarol concentrations were comparable with those in normal tissues, except that concentrations in intracerebral tumors were higher than those in the normal brain. Tissue 7-deoxynogarol concentrations appeared to be directly related to the cumulative dose and inversely related to the time from the last treatment to death; the value obtained by dividing dose by time correlated (P < 0.05) with tissue 7-deoxynogarol concentrations.

Chromatography, High Pressure Liquid

Role of oxygen free radical formation in the mechanism of menogaril resistance in multidrug resistant tumor cells.

The mechanisms of action and resistance to menogaril, a clinically active anthracycline antitumor drug, were evaluated in sensitive and doxorubicin-selected multidrug resistant human breast tumor (MCF-7) cell lines. While MCF-7/ADRR cells were highly resistant (250-500-fold) to doxorubicin, they displayed only marginal resistance (10-fold) to menogaril. In contrast to doxorubicin, the mechanism of resistance to menogaril in these cells does not involve differential inhibition of DNA synthesis as measured by thymidine incorporation. P-170-glycoprotein-dependent drug transport did not contribute to resistance as there was no difference in the accumulation and retention of menogaril by sensitive and resistant cell lines. However, there was a 2-fold decrease in oxygen free radical formation in the resistant cells, compared to sensitive cells, in the presence of menogaril. Since resistant cells contain 12-fold higher glutathione peroxidase activity than the parental sensitive cells, the detoxification of hydrogen peroxide may be responsible for the decreased free radical formation and thus, may play a role in the resistance to menogaril.

Antineoplastic Agents

In vitro activity of menogaril and N-demethylmenogaril in a human tumor cloning assay.

The activity of menogaril and its major metabolite in animals and humans, N-demethylmenogaril, has been investigated in the human stem cell assay as developed by Salmon et al. Among 31 evaluable samples, four were sensitive to menogaril, including one which responded to N-demethylmenogaril. Three samples resistant to menogaril responded to N-demethylmenogaril. None was sensitive to doxorubicin. Overall, one out of seven ovarian samples and one out of three breast samples responded to menogaril. Our data confirm the in vitro activity of menogaril in ovarian and breast cancer; in addition, they suggest incomplete cross-resistance between doxorubicin and menogaril and, considering the concentrations of N-demethylmenogaril in animals and humans, a minor role for this metabolite in the overall antitumor activity of the parent compound.

Breast Neoplasms

Evaluation of menogaril in patients with metastatic sarcomas and no prior chemotherapy exposure.

Menogaril, an anthracycline analog of nogalamycin, is reported to have greater cytotoxicity against certain malignant cell lines and less cardiotoxicity in rabbits than doxorubicin. To evaluate the possible therapeutic benefit of this drug, we studied menogaril in 21 patients with metastatic sarcomas who had received no prior chemotherapy. Menogaril was administered intravenously over 1 h every 3-4 weeks at a dose of 200 mg/m2 in 500 ml of 5% dextrose in water. One patient experienced a partial regression of pulmonary metastases from malignant fibrous histiocytoma of bone (response rate of 5% with 95% confidence interval of 0.1-23.8%). Two additional patients experienced minor reductions in tumor size. The remaining 18 patients had no improvement from menogaril. The median time to disease progression was 7 weeks in all patients treated. Toxicity was acceptable, consisting primarily of leukopenia with 12 patients (57%) and 19 patients (90%) developing nadir leukocyte counts less than 2000 and 3000/microL, respectively. Cardiac toxicity was not encountered; however, only seven patients received greater than or equal to 3 cycles of menogaril. We conclude that menogaril does not appear to be useful at this dose and schedule in the treatment of metastatic sarcomas despite the use of near maximal doses in patients with no prior chemotherapy exposure.

Adult

A phase I study of menogaril in patients with advanced cancer.

Menogaril (7-con-O-methylnogarol) is a semisynthetic anthracycline analogue of nogalamycin that has shown good activity against a variety of experimental tumor systems as well as decreased cardiac toxicity when compared with doxorubicin in preclinical studies. Forty-one patients with refractory solid tumors received menogaril during a phase I trial at The Johns Hopkins Oncology Center (Baltimore). Menogaril was administered as an intravenous (IV) infusion on days 1 and 8 of a 28-day cycle in doses of 8 to 140 mg/m2. Eastern Cooperative Oncology Group (ECOG) grade 3 and 4 leukopenia was the principle dose-limiting toxicity and was occasionally accompanied by thrombocytopenia. Both WBC and platelet nadirs occurred between days 15 and 22. Anemia requiring transfusion was occasionally seen. Nonhematologic toxicities observed included frequent anorexia and malaise that was not dose related and postinfusion phlebitis that was dose related and occasionally dose limiting. Gastrointestinal toxicity and alopecia were infrequent and mild in severity. Three patients with cumulative doses of menogaril greater than 1,400 mg/m2 had no significant changes in ejection fractions as determined by serial gated blood pool scans. Two patients had greater than 10% decrements in ejection fractions without clinical changes at total doses of 128 and 288 mg/m2. One patient with prior anthracycline therapy and chest irradiation decreased her left ventricular ejection fraction from 52% to 30% and developed respiratory failure after two cycles of therapy in the setting of disease progression. No responses to menogaril therapy were observed. The recommended phase II dose for menogaril on this day 1 and 8 schedule is 140 mg/m2. A starting dose of 90 mg/m2 should be considered for heavily pretreated patients. In comparing results of this phase I schedule with those of other schedules, evidence for schedule-dependent toxicity differences should be sought.

Adult

Phase I and pharmacokinetic study of menogaril administered as a 72-hour continuous i.v. infusion.

Menogaril is a new anthracycline analog of nogalamycin. When administered as a 72-hour continuous iv infusion the dose-limiting toxic effect of menogaril was venous irritation at dose levels that cause only mild leukopenia and minimal gastrointestinal toxicity. Pharmacokinetic studies showed that the rise in plasma concentration during infusion was first-order, with a half-life of 11.9 hours. Total-body clearance of menogaril was 204 ml/minute/m2. There were no detectable metabolites of menogaril in plasma. Urinary excretion of unchanged menogaril was 17.3% of the dose and N-demethylmenogaril was 0.5% over 72 hours. Since menogaril does not appear to be metabolized, a high degree of tissue binding is likely.

Adult

Hepatocellular carcinoma. An ECOG randomized phase II study of beta-interferon and menogaril.

This study was undertaken to investigate the response rate, time to treatment failure and survival time of patients with hepatocellular cancer (HCC) treated with beta-interferon or menogaril. Sixty-nine patients with histologically confirmed, advanced, measurable hepatocellular carcinoma were randomized to receive beta-interferon or menogaril. Eligibility criteria included an Eastern Cooperative Oncology Group (ECOG) performance status of 0, 1, 2, or 3, as well as adequate kidney and liver function and hematologic reserve. The number of patients with lethal, life-threatening, and severe toxicities on beta-interferon were 1, 3, and 12 and on menogaril 2, 5, and 10, respectively. No objective responses were documented among the 61 patients who had HCC, histologically reviewed and confirmed. The time to treatment failure was 6.7 weeks on beta-interferon and 8.6 weeks on menogaril. The median survival time was 11.1 weeks on beta-interferon and 23.1 weeks on menogaril (South African patients 10.1 weeks). The difference is not significant. Poor prognostic factors were jaundice, age, and associated hepatitis. After controlling for other covariates, beta-interferon appears to increase the relative risk of dying by 2.7. This trial reconfirms the importance, previously reported by ECOG of jaundice and age in the prognosis of patients with HCC. It shows that further trials with neither beta-interferon nor menogaril are warranted.

Aged

Menogaril: a new anthracycline agent entering clinical trials.

Menogaril [menogarol, 7(R)-O-methylnogarol, 7-OMEN] is a new anthracycline agent which was chosen for clinical trials based on: broad spectrum activity against a panel of murine tumors, lower cardiotoxicity than doxorubicin in the chronic rabbit model, differences in biochemical effects from other anthracyclines suggesting a possible difference in mechanism of action, murine antitumor activity by oral as well as parenteral routes. Biochemical studies indicated that, in comparison to doxorubicin, menogaril is bound weakly to DNA, inhibits RNA synthesis less, and has different cell cycle phase-specific cytotoxicity. Pharmacology studies in the mouse and dog using HPLC analytical methodology have shown multiexponential clearance from plasma and metabolism of menogaril to a material which co-chromatographs with N-demethylmenogaril in addition to at least two other metabolites of unknown structure. Oral bioavailability studies in the mouse showed significant absorption of menogaril from the gastrointestinal tract followed by first-pass metabolism. In acute toxicity studies in the rat, the dog, and the monkey, dose-related myelosuppression and gastrointestinal toxicity predominated. Phase I clinical trails on menogaril are currently in progress on a variety of schedules.

Administration, Oral

Phase I study of weekly intravenous administration of menogaril to adults with solid tumors.

Thirty-nine adults with solid tumors were treated on a Phase I study of menogaril administered i.v. once each week. Granulocytopenia was dose-limiting at a menogaril dose of 115 mg/m2/wk. Ten patients required delays in treatment of 1-4 weeks (median, 1 week) at some point during their treatment until they recovered from granulocytopenia. The average dose intensity possible on this schedule was at least 80% higher than that possible using a single-day or a five-times-daily schedule every 4 weeks. One patient developed infection while neutropenic, and only one patient developed thrombocytopenia. Dexamethasone appeared to reduce the degree of myelosuppression. Gastrointestinal toxicity was quite mild, and alopecia was uncommon. Arm vein phlebitis frequently followed menogaril administration, requiring the use of Hickman catheters (or equivalents). Two patients had myocardial infarcts while on treatment. It was unclear if the menogaril was in any way responsible. Reversible dyspnea and cough (with no evidence of congestive heart failure) were seen in some patients. Responses were seen in patients with gliomas, renal-cell carcinoma, and bladder carcinoma, and marked subjective improvement occurred in a single patient with prostate cancer. We plan to conduct a Phase II study in astrocytoma patients using a menogaril dose of 115 mg/m2/wk i.v.

Adult

Menogaril, an anthracycline compound with a novel mechanism of action: cellular pharmacology.

Menogaril, an anthracycline compound possessing a significant antitumor activity after both po and iv administration, has been introduced into clinical trials. However, its mechanism of action has not been clarified yet. This study revealed that its cytotoxicity correlated very well with the inhibition of macromolecular synthesis, indicating the involvement of interaction with DNA. The spectrophotometric study showed a weaker binding of this compound to calf thymus DNA when compared to that of doxorubicin (adriamycin). Despite the lower binding affinity of menogaril to DNA, pronounced DNA cleavage was observed in an intact cell system, indicating that the character of the interaction with DNA is different from intercalation. In contrast to doxorubicin, menogaril is extensively localized in the cytoplasm. The cytoplasmic localization prompted us to study its effect on cytoskeleton proteins. It was found that menogaril inhibited the initial polymerization rate of tubulin, indicating a possible contribution of this process to the overall cytotoxicity of menogaril.

Animals

Human pharmacokinetics, excretion, and metabolism of the anthracycline antibiotic menogaril (7-OMEN, NSC 269148) and their correlation with clinical toxicities.

In a Phase I study, menogaril (7-OMEN) was administered daily for 5 days/course, every 21-28 days. Dosages of 3.5, 7, 11.5, 17, and 31.5 mg/m2 were infused over 1 h, and dosages of 42, 50, and 56 mg/m2 were infused over 2 h. Pharmacokinetics was studied at all dosages. Plasma and urine samples were collected from 24 patients, and bile samples were also collected from 2 patients. 7-OMEN and metabolites were measured by high performance liquid chromatography. 7-OMEN was the major plasma fluorescent species at all times, with only trace amounts of N-demethyl menogaril observed. 7-OMEN disappeared from plasma biexponentially with t1/2 alpha 0.19 +/- 0.04 (mean +/- SE) h and t1/2 beta 13.22 +/- 1.54 h. Plasma pharmacokinetics of 7-OMEN was linear from 3.5-56 mg/m2; area under the curve increased proportionally with dosage. Total body clearance of 7-OMEN was 28.18 +/- 3.33 liter/m2/h, Vc was 224 +/- 30.8 liter/m2, and Vss was 370 +/- 25.7 liter/m2. Plasma pharmacokinetics of 7-OMEN studied on multiple days of a given course were similar. Urinary excretion of 7-OMEN and fluorescent metabolites accounted for 5.4 +/- 0.4% of the daily dose. Parent compound still represented greater than or equal to 80% of urinary drug fluorescence after 24 h. N-demethyl menogaril was the only other fluorescent drug species detected in urine. In two patients with biliary tract drains, biliary excretion of drug fluorescence accounted for 2.2-4.2% of the daily dose. Only 7-OMEN and N-demethyl menogaril were detected in bile by high performance liquid chromatography and thin layer chromatography. 7-OMEN was the major fluorescent biliary species, but, by 24 h, N-demethyl menogaril accounted for approximately 40% of biliary drug fluorescence. When considered in light of each patient's observed toxicities, excellent relationships were observed between the plasma area under the curve of 7-OMEN and the percentage of decreases in WBC and absolute neutrophil count. These latter findings should be useful in developing more precise and intelligent dosing schemes for 7-OMEN.

Antineoplastic Agents

Effects of 7-R-O-methylnogarol (menogaril) on L1210 cell progression in vitro and in vivo.

Menogaril (7-R-O-methylnogarol) is an anthracycline which has significant antitumor activity in vivo and is in Phase II clinical trial. We report here the drug effect on growth and cell cycle progression of L1210 mouse leukemia cells in vitro and in vivo. At doses which inhibited the growth of L1210 cells in vitro, menogaril slowed the progression of cells through S phase and blocked cells in G2 + M. 7-R-O-Methyl-N-demethylnogarol, the major metabolite of menogaril had the same effects on cell progression in vitro. Menogaril effect on cell progression in vivo was studied with peritoneal L1210 ascites growing in CD2F1 mice. Early in infection, i.e., 3 days after inoculation of 10(5) L1210 cells, DNA histograms of cells from control and drug-treated mice showed only a G1 peak. This presumably represented host diploid G0-G1 cells which predominated in the peritoneal cavity and masked the histogram of L1210 cells. Later in infection, when about 10(8) or more cells were present in the ascites, L1210 cells predominated and DNA histograms were representative of L1210 cells. When menogaril was injected at this time, the cell cycle effects were similar to those seen in vitro. Therefore, the L1210 in vivo model can be used to study cell progression effects only late in infection (when L1210 cells predominate), and due consideration should be given to contamination of the L1210 cells with host G0-G1 cells.

Animals