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Biomedical subjects

M M Ames

Publications and source records attributed to M M Ames.

At least 19 recordsLinked to original sources

Murine pharmacokinetics and metabolism of penclomedine [3,5-dichloro-2,4-dimethoxy-6-(trichloromethyl)pyridine, NSC 338720].

Penclomedine, a highly substituted pyridine derivative, has been selected by the National Cancer Institute for evaluation as a potential anticancer agent based on antitumor activity observed in murine tumor models following i.v., p.o., and i.p. administration. We have developed a reverse-phase high performance liquid chromatography assay for PEN, and subsequently investigated murine pharmacokinetics and metabolism. Following rapid i.v. injection of PEN (300 mg/m2) to mice, plasma elimination was best described by a 2-compartment open model with an elimination phase half-life, total body clearance, and steady-state distribution volume of 69 min, 114 ml/min/m2, and 4800 ml/m2, respectively. While PEN displayed good p.o. absorption, bioavailability of PEN after p.o. administration was approximately 2% of that observed following i.v. administration. Metabolism contributed substantially to drug clearance, and total metabolites were slowly eliminated from plasma. After i.v. and p.o. administration of radiolabeled PEN, less than 0.2% of the parent drug was excreted in the 48-h urine, and 25-30% of the total radioactivity was recovered in urine. NADPH-dependent oxidative and reductive metabolism was observed when penclomedine was incubated with mouse microsomal preparations. Microsomal reductive metabolism of PEN led to formation of a metabolite tentatively identified as a molecule formed by dimerization of the radical species produced by cleavage of chlorine from the trichloromethyl moiety of penclomedine.

Animals

Anthracyclines and their C-13 alcohol metabolites: growth inhibition and DNA damage following incubation with human tumor cells in culture.

Anthracyclines are important antitumor agents used in the treatment of solid tumors, lymphomas, and acute lymphoblastic as well as myelocytic leukemias. The clinical utility of agents such as doxorubicin and daunorubicin and their well-characterized cardiotoxicity have prompted many efforts to develop analogs that retain the desired spectrum of activity but are less cardiotoxic. One such analog is idarubicin (4-demethoxydaunorubicin), which is currently under study in the treatment of adult and pediatric leukemias. The major circulating metabolite of idarubicin is the alcohol product of ketoreductase biotransformation, idarubicinol. Following the administration of idarubicin to adult or pediatric patients, systemic exposure to idarubicinol is greater than that to idarubicin. Moreover, we have also documented the presence of idarubicinol in the cerebrospinal fluid of pediatric patients who have received idarubicin. Idarubicinol has been reported to have greater cytotoxic activity than other anthracycline alcohol metabolites, which are regarded as much less active products of metabolism. We therefore evaluated the growth-inhibitory and DNA-damaging activities of idarubicin, daunorubicin, doxorubicin, epirubicin, and their alcohol metabolites against three relevant (CCRF-CEM lymphoblastic leukemia, K562 myelogenous leukemia, and U87-MG glioblastoma) human tumor cell lines. We found that whereas idarubicin was 2-5 times more potent than the other three anthracycline analogs against these tumor cell lines, idarubicinol was 16-122 times more active than the other alcohol metabolites against the same three cell lines. In addition, idarubicinol and the parent drug idarubicin were equipotent, unlike the other anthracycline alcohol metabolites, which were much less cytotoxic than the corresponding parent drugs. We also assessed the ability of the four parent drugs and their alcohol metabolites to induce DNA single-strand breaks. Idarubicin was more potent than the other three anthracycline analogs and idarubicinol was much more effective than the other alcohol metabolites in inducing DNA damage. These studies in human leukemia and human glioblastoma cell lines support the hypothesis that idarubicinol plays an important role in the antitumor activity of idarubicin and that the activities of idarubicin and idarubicinol are related to their ability to damage DNA.

Antibiotics, Antineoplastic

Antimetastatic activity of boro-amino acid analog protease inhibitors against B16BL6 melanoma in vivo.

Di- and tripeptide boro-amino acid analog protease inhibitors with specificity for chymotrypsin and elastase decrease the number of melanotic foci formed in the lungs of mice in the B16BL6 experimental metastatic tumor model. These effects were at significantly lower concentration than leupeptin or other natural chymotrypsin inhibitors previously reported. These results support the involvement of elastase and chymotrypsin in the metastatic process.

Animals

Selected pharmacologic characteristics of idarubicin and idarubicinol.

The pharmacology of ID and IDOL are of interest in light of the potential utility of ID in the treatment of adult and pediatric leukemia patients. Preclinical activity and cellular pharmacology of ID were suggestive of greater clinical activity when compared with several standard anthracyclines. Most intriguing were data comparing in vitro and in vivo activity data and cellular pharmacology of IDOL to other anthracycline alcohol metabolites. Given the pharmacokinetics of IDOL, there is continued interest in the unique aspects of IDOL pharmacology as an important element of ID pharmacology.

Animals

Differences in N-acetylation of the experimental antitumor agent batracylin in the mouse and the rat.

Batracylin (NSC-320846) is a quinalzolineone recently evaluated as a potential antitumor agent by the National Cancer Institute. The analog was active against a number of murine tumors, including colon adenocarcinoma 38 and multidrug resistant sublines of P-388 leukemia. Preclinical toxicity studies revealed that batracylin was much more toxic when administered orally to rats than to mice. The combined sex LD10 in mice was 5,655 mg/m2 while 576 mg/m2 was lethal to all rats treated at that dose. We determined that following oral administration of batracylin, systemic exposure of parent drug to the rat was only 14.9% of that to the mouse. It was subsequently noted that systemic exposure of a relatively non-polar metabolite was approximately 9 times greater in the rat than in the mouse. The metabolite was identified as N-acetylbatracylin by TLC, HPLC and mass spectral analyses. Observations by the National Cancer Institute that N-acetylbatracylin was not toxic following oral administration to mice or rats prompted evaluation of systemic exposure following oral administration to rats. Following oral administration of N-acetylbatracylin to rats, systemic exposure was almost nil. Indeed, exposure of rats to N-acetylbatracylin was several orders of magnitude greater following oral administration of six-fold lower doses of the parent drug, batracylin. Thus, N-acetylation may play a role in the toxicity of batracylin despite the lack of toxicity observed following oral administration of N-acetylbatracylin. In addition, further metabolism of the N-acetyl conjugate, analogous to that of other aromatic amines, may be involved in the pharmacology of batracylin and similar analogs.

Acetylation

Phase I-II study of pibenzimol hydrochloride (NSC 322921) in advanced pancreatic carcinoma.

Pibenzimol is a fluorescent molecule known to bind to double stranded DNA. It also induces prolongation of the G2 phase of the cell cycle, inhibition of DNA replication and cessation of the growth of some cells in late S phase after DNA content has been doubled. It has been shown to increase the life span of mice bearing intraperitoneally implanted L1210 and P388 leukemia. These factors coupled with the affinity of pibenzimol for pancreatic tissue led us to conduct a phase I-II trial of pibenzimol hydrochloride in patients with advanced pancreatic cancer. Twenty-six patients were treated with a five day continuous infusion of pibenzimol at a dose ranging from 6-28 mg/m2/d. There were no treatment related deaths. Major toxicity was hyperglycemia which was self-limited. No objective responses were noted.

Adult

Hexamethylmelamine: pharmacology and mechanism of action.

Several conclusions can be drawn from a review of HMM preclinical and clinical pharmacology data. The drug is extensively metabolized by animals and by man. The drug is well absorbed following oral administration to animals, but oral bioavailability is low due to first pass metabolism. Based on limited human data and more complete animal data, absorption of HMM following oral administration may be quite high in man. We do not yet know the oral bioavailability of HMM in patients, but again based primarily on animal studies, oral bioavailability is most likely low and variable due to extensive first pass metabolism. Systemic exposure to HMM and demethylated metabolites following oral administration varies greatly from patient to patient and is sometimes quite low. Most patients are, however, exposed to a substantial fraction of the administered dose when determined by urinary recovery of the total dose (based on parent drug and metabolites or total radioactivity) or by the total plasma AUC of parent drug and all metabolites. Systemic exposure to HMM following intravenous administration is clearly greater and less variable than following oral administration. An unresolved question is whether the highly variable and often low systemic exposure after oral administration compromise antitumor activity when compared to intravenous administration. A key issue is whether or not one accepts the hypothesis that metabolism is a prerequisite for antitumor activity. The metabolic activation studies do not rule out other mechanisms of HMM antitumor activity. Modest activity of HMM was observed after prolonged exposure to cells which did not metabolize the drug. However, most of the accumulated data are consistent with the metabolic activation hypothesis. Certainly HMM has clinical activity when administered by mouth. If metabolism is required, then exposure to the total dose (parent drug and metabolites) could be of significance even when exposure to HMM is low, since every demethylated metabolite must have come ultimately from the initial HMM demethylation. We do not know whether the initial metabolic reaction (occurring in the liver rather than in the tumor) provides sufficient exposure of tumor to reactive species. Specifically, does the variable HMM plasma AUC seen after oral administration lead to variable delivery of potentially reactive species to tumor (by rapid breakdown and/or further metabolism of MPMM before it leaves the gut and/or liver) or are quantities of MPMM delivered to tumor comparable to those delivered following intravenous administration. The issue of rate of MPMM formation compared to rate of breakdown and ultimate delivery to tumor has been noted by Judson and Rutty.(ABSTRACT TRUNCATED AT 400 WORDS)

Altretamine

Characterization of "peak E," a novel amino acid associated with eosinophilia-myalgia syndrome.

Epidemiologic studies strongly associate eosinophilia-myalgia syndrome (EMS) with ingestion of tryptophan containing a contaminant ("peak E"). Prior reports have suggested that peak E is the di-tryptophan N alpha-animal of acetaldehyde. Spectral and chemical studies now demonstrate that peak E is 1,1'-ethylidenebis[tryptophan]. This novel amino acid may be the etiological agent responsible for EMS, or it may be a marker of a still unidentified causal agent.

Chromatography, High Pressure Liquid

Plasma pharmacokinetics and cerebrospinal fluid concentrations of idarubicin and idarubicinol in pediatric leukemia patients: a Childrens Cancer Study Group report.

Idarubicin (4-demethoxydaunomycin) is an anthracycline analogue with striking in vitro and in vivo activity against murine leukemias. Based on activity in adults with acute lymphoblastic leukemia, the Childrens Cancer Study Group initiated studies to evaluate idarubicin in children with leukemia in second or subsequent relapses. As part of those studies, we have characterized the plasma pharmacokinetics of idarubicin and the major circulating metabolite idarubicinol in 21 patients. Idarubicin plasma elimination was described by a three-compartment open model following i.v. infusion (10-15 mg/m2) on a schedule of weekly for 3 weeks and on a schedule of daily for 3 days every 3 weeks (total dose, 30-45 mg/m2). There was substantial variability in idarubicin elimination among patients, but no indication of dose-dependent or of schedule-dependent changes in pharmacokinetic parameters. The mean terminal half-life, total body clearance, and steady state volume of distribution were 17.6 h, 679 ml/min/m2, and 562 l/m2, respectively. Idarubicinol elimination was prolonged compared to that of the parent drug with a terminal half-life of 56.8 h. This metabolite clearly accumulated in plasma during the 3 days of treatment on the schedule of daily for 3 days. Urinary recoveries (48 h) of idarubicin and idarubicinol after a single dose of idarubicin were 2.4 and 10.1%, respectively. Idarubicin was detected in 2 of 21 cerebrospinal fluid samples obtained 18-30 h after administration. In marked contrast, idarubicinol was detected in 20 of those 21 samples. Concentrations in the 20 samples varied from 0.22-1.05 ng/ml with a mean value of 0.51 ng/ml.

Adolescent

Phase I and clinical pharmacological evaluation of pirozantrone hydrochloride (oxantrazole).

Pirozantrone hydrochloride, an anthrapyrazole analogue, was selected for clinical evaluation based on broad antitumor activity against murine tumor systems and on potentially less cardiotoxicity when compared to anthracyclines. This anthrapyrazole analogue is currently under clinical evaluation, and we now report results on a Phase I clinical trial incorporating a pharmacologically guided dose-escalation scheme. Dose escalation was designed to proceed by factors of 2 until the patient drug exposure (concentration x time) was 40% of the murine exposure at the LD10 dose (90 mg/m2). Thereafter, more moderate dose escalations were employed. The target concentration x time value (59 micrograms-min/ml) derived from preclinical pharmacology data was exceeded in all three patients at a dose of 90 mg/m2. A dose of 160 mg/m2 was found to reproducibly result in appropriate myelosuppression. This dose is recommended for further testing in Phase II studies. Nonhematological toxicities encountered in this trial were mild, the most notable being phlebitis at the infusion site. Objective responses were observed in two patients, one with metastatic breast cancer and another with metastatic melanoma. Following a 60-min infusion, pirozantrone hydrochloride plasma elimination was monoexponential, with a half-life of approximately 30 min, mean total body clearance of 1.29 liters/min/m2, and mean steady state volume of distribution of 29 liters/m2.

Adult

Phase I and clinical pharmacological evaluation of a parenteral hexamethylmelamine formulation.

Hexamethylmelamine has been evaluated in single agent and combination regimen studies for many years, but only following p.o. administration. Pharmacological studies in animals and humans have shown that systematic availability of parent drug following p.o. administration is relatively low and variable due to extensive first-pass metabolism rather than due to poor absorption. Two Phase I clinical trials, with accompanying pharmacokinetic studies, have been conducted by using a parenteral formulation in which hexamethylmelamine was prepared by Intralipid 10%. The parenteral formulation was well tolerated by all patients receiving hexamethylmelamine by 1-day and by daily for 5-days schedules. Nausea and vomiting were the dose-limiting toxicities. Maximally tolerated doses on the 1-day and daily for 5-days schedules were approximately 850 mg/m2 and 630 mg/m2/day, respectively. No responses were observed in either study. Following i.v. administration of 540 mg/m2 hexamethylmelamine, plasma elimination was best described by a three-compartment open model with terminal half-life, total body clearance, and steady-state volume of distribution values of 10.4 h, 0.75 liter/min/m2 and 460 liters/m2, respectively. Twenty-four h urinary recoveries of parent drug were less than 1% for all patients. Accumulation of hexamethylmelamine during the 5-day treatment at 945 mg/m2 suggested possible saturation of parent drug elimination at that dose. Phase II studies are currently under way with the parenteral formulation of hexamethylmelamine.

Altretamine

Analogues of carbamyl aspartate as inhibitors of dihydroorotase: preparation of boronic acid transition-state analogues and a zinc chelator carbamylhomocysteine.

Dihydroorotase (DHO) catalyzes the conversion of carbamyl aspartate (CA) to dihydroorotate (DO) in the de novo pyrimidine biosynthetic pathway. Few effective inhibitors of DHO have been reported, and thus blockade of this reaction has not been widely pursued as a strategy for development of antitumor agents. Utilizing two mechanism-based strategies, we have designed and prepared potential DHO inhibitor analogues of CA. One strategy replaced the gamma-carboxyl moiety of CA with a boronic acid. This substitution yields compounds which form stable charged tetrahedral intermediates and mimic the enzyme-substrate transition state. Preparation of the boronic acid analogues of CA and its carboxylic acid esters focused on a Curtius rearrangement as a key step following a malonic ester synthesis. This was followed by carbamoylation of the free amine under nonaqueous neutral conditions with Si(NCO)4. The ethyl ester was a competitive inhibitor of DHO with an apparent Ki of 5.07 microM, while the nonesterified analogue and the methyl ester were not effective inhibitors. None of the compounds were cytotoxic against L1210 cells in culture. An active-site-directed sulfhydryl-containing zinc chelator was also prepared. This analogue irreversibly inhibited the enzyme, but it also was ineffective in L1210 growth inhibition.

Amidohydrolases

Cyclophosphamide, methotrexate, and 5-fluorouracil (CMF)-induced ocular toxicity.

Ocular toxicity is a common, but poorly understood, sequela from CMF chemotherapy. We investigated this toxicity in patients receiving CMF therapy. Detailed interviews in 210 patients revealed that new, unpleasant ocular symptoms developed in 42% of patients receiving CMF, in 39% of subjects receiving other regimens containing 5-fluorouracil (5-FU), and only in 18% of subjects receiving a variety of chemotherapy regimens not containing 5-FU. CMF-associated ocular symptoms usually consisted of mild to marked tearing, ocular pruritus, and/or burning. These toxicities usually began 11-17 days after starting a cycle of CMF and lasted for 10-15 days. 5-FU was detected in the tears of 12 tested patients within several minutes after intravenous 5-FU (peak concentrations as high as 60 micrograms/ml). 5-FU tear concentrations did not correlate with the presence or absence of ocular toxicity. There is no established antidote for this toxicity although some patients have reported subjective benefit from cryotherapy, applied around the period of 5-FU injections, or cromolyn sodium eye drops.

Antineoplastic Combined Chemotherapy Protocols

Preclinical pharmacology of the anthrapyrazole analog oxantrazole (NSC-349174, piroxantrone).

Oxantrazole (now designated as piroxantrone) is an anthrapyrazole analog under evaluation as a potentially useful anthracycline-like antitumor agent. In preparation for phase I clinical trials, we characterized certain aspects of oxantrazole preclinical pharmacology, including plasma stability, murine pharmacokinetics, in vitro/in vivo metabolism, and DNA damage following incubation with human tumor cells in culture. Oxantrazole was relatively unstable in fresh mouse and dog plasma and particularly unstable in fresh human plasma (t 1/2 less than 5 min at 37 degrees C). Its decomposition in plasma was prevented by the addition of ascorbic acid, suggesting oxidative degradation. Following rapid i.v. administration of oxantrazole to mice, plasma elimination was best described by a two-compartment open model with an elimination-phase half-life, total body clearance, and steady-state volume of distribution of 330 min, 458 ml/min per m2, and 87.9 l/m2, respectively. The c x t value calculated following i.v. administration of 90 mg/m2 oxantrazole to mice was 177 micrograms-min/ml. This value was subsequently used in a pharmacologically guided dose-escalation scheme for the oxantrazole phase I clinical trial. Oxantrazole was converted to a polar conjugate, presumably a beta-glucuronide, by rat but not mouse hepatic microsomal preparations and in vivo by the mouse. Oxantrazole introduced protein-associated DNA strand breaks following incubation with a human rhabdomyosarcoma cell line. Repair of the damage was complete by 15 h. Clinical pharmacologic studies are currently under way in conjunction with the phase I clinical trial of oxantrazole.

Animals

High-performance liquid chromatographic assay for the experimental anticancer agent oxantrazole.

Oxantrazole is an anthrapyrazole analogue developed as an anthracycline-like agent with potentially reduced cardiotoxicity. A reversed-phase high-performance liquid chromatographic assay was developed using a C2 column and mobile solvent system of dimethylformamide-acetonitrile-0.2 M ammonium acetate, pH 4.5 (20:5:75, v/v/v) at a flow-rate of 1 ml/min. Drug and internal standard were detected by ultraviolet absorbance at 514 nm. Isolation of drug and internal standard was afforded by elution from C18 disposable isolation columns with a mixture of methanol-glacial acetic acid-0.02 M sodium acetate, pH 4.0 (12:1:3, v/v/v). The assay was linear (r2 greater than 0.99) over concentrations of 0.025-2.5 micrograms/ml and the limit of detection was 10 ng/ml plasma. Oxantrazole was unstable in neutral and particularly alkaline aqueous solutions. Utilizing this assay, plasma pharmacokinetics were determined following intravenous infusion of oxantrazole to beagle dogs. Plasma elimination was rapid with elimination phase half-life values less than 45 min.

Animals

Human and rat liver phenol sulfotransferase: structure-activity relationships for phenolic substrates.

Phenol sulfotransferase (PST) catalyzes the sulfate conjugation of many phenolic drugs. Human liver contains thermostable (TS) and thermolabile forms of PST. Ion exchange chromatography shows that two isozymes of TS PST (peaks I and II) are present in human liver preparations. Rat liver contains four forms of PST that can be separated by ion exchange chromatography. Quantitative structure-activity relationship (QSAR) analysis was used to study phenolic substrates for both human and rat liver PST. Thirty-six substituted phenols were tested as substrates for partially purified human liver TS PST peak I. QSAR analysis resulted in derivation of the following equation: log 1/Km = 0.92 (+/- 0.18)log P - 1.48 (+/- 0.38)MR'4 - 0.64 (+/- 0.41)MR3 + 1.04 (+/- 0.63)MR2 + 0.67(+/- 0.44) sigma- + 4.03 (+/- 0.42). In this equation Km is the Michaelis constant, P is the octanol-water partition coefficient, MR is the molar refractivity of substituents at the 2-, 3-, and 4-positions, and sigma- is the Hammett constant. Values of log 1/Km calculated with this equation were highly correlated with log 1/Km values (r = 0.950) that were observed experimentally. Nine phenols were also tested as substrates for partially purified human liver TS PST peak II. Log 1/Km values for these compounds were significantly correlated for the two isozymes of TS PST (r = 0.992, p less than 0.001). QSAR analysis was also used to derive equations that described the behavior of phenolic substrates for rat liver PST forms I and II. These equations differed substantially from the equation derived for compounds tested with human liver TS PST peak I. Therefore, the characteristics of the active sites of human liver TS PST peak I and rat liver PST forms I and II appear to differ. Application of these equations may make it possible to predict Km values of phenolic substrates for human liver TS PST and for rat liver PST forms I and II.

Animals