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M A Graham

Publications and source records attributed to M A Graham.

At least 55 records · Page 3Linked to original sources

Isolation and characterization of monoclonal antibodies to a recombinant human topoisomerase II polypeptide.

We have produced two murine monoclonal antibodies (SWT3D1 and SWR1C2) to a recombinant polypeptide corresponding to the carboxyl-terminal one-third (amino acid 854-amino acid 1447) of human topoisomerase II alpha. Each antibody is able to recognize intact human topoisomerase II using immunoblotting and enzyme-linked immunosorbent assay (ELISA) techniques. Data is presented demonstrating that the antibodies bind specifically to topoisomerase II alpha but do not interact with topoisomerase II beta. The monoclonal antibodies do not recognize murine or calf thymus topoisomerase II indicating that each may bind exclusively to the human enzyme. The topoisomerase II binding sites for each monoclonal antibody have been compared in a competition ELISA. The SWT3D1 antibody had no significant effect on the binding efficiency of biotinylated SWR1C2 antibody. Although SWR1C2 was capable of inhibiting the binding of biotinylated SWT3D1, this only occurred at concentrations approximately 1000-fold higher than those required of SWT3D1 to block binding of itself. These results suggest that SWT3D1 and SWR1C2 do not recognize identical epitopes on topoisomerase II.

Animals↗

New approaches in preclinical and clinical pharmacokinetics.

Pharmacokinetic studies are now playing an increasingly important part in the preclinical and clinical development of new anti-tumour agents. Preclinically, pharmacokinetic, metabolism and toxicological investigations are being integrated and used for the rational selection of new agents with a favourable pharmacological profile. More importantly, this approach should reduce the chance of developing a lead compound that may display idiosyncratic and unpredictable behaviour in patients. Pharmacokinetic studies are also invaluable in identifying potential problems due to species differences in drug handling and should help improve the quality, reliability and predictability of toxicokinetic investigations in experimental animals. Importantly, pharmacokinetic studies involving PGDE, MTSE and Bayesian approaches are increasingly being used to guide dose escalation in early clinical trials. It is likely that these methodologies will evolve further as experience with them develops, and this should lead to improvements in the conduct and scientific quality of phase I/II trials. It therefore behooves the clinician and clinical pharmacologist to pay special attention to the design and implementation of pharmacokinetic studies in early clinical trials.

Antineoplastic Agents↗

Pharmacokinetics and early clinical studies of selected new drugs.

The five examples given here illustrate new cytotoxic agents at different stages of evaluation. In all cases, considerable effort has gone into detailed pharmacokinetic studies conducted before and during the clinical phase I studies. Has this effort contributed significantly to the development of these agents? At present, it has to be said that the contribution made in the case of these particular agents has been modest. For the anthrapyrazoles, the availability of the pharmacokinetic data did not permit a pharmacokinetically guided dose escalation to be performed because of non-linear kinetics, and a similar comment can be made for rhizoxin, since the human plasma AUC values at the MTD were much lower than in the mouse. For the camptothecin analogues, a detailed knowledge of the kinetics of the closed and open forms of the various agents did not influence the way in which the studies were conducted, nor did pharmacokinetic information appreciably do so for EO9, although some comfort was gained by clinical investigators when the short half-life seen in preclinical species was also observed in humans. For suramin, therapeutic drug monitoring is clearly essential, although toxicity remains a problem. Of course, a proper understanding of the pharmacokinetics and metabolism of these agents greatly improves the interpretation of the clinical observations made and is often critical in planning the next stages of development. This is more clearly seen with agents that have unusual forms of toxicity, such as flavone acetic acid, for which the achievement of notional target concentrations is a key element in clinical trials (Kerr et al, 1987; Maughan et al, 1992). Moreover, as reviewed elsewhere (Graham and Workman, 1992; see also Graham and Kaye, this volume), there are several other instances where pharmacokinetically guided dose escalation has greatly improved the conduct of a phase I study. Good examples of this are iododoxorubicin (Gianni et al, 1990), mitotic inhibitor CI-980 (Brodfuehrer et al, 1992) and DNA intercalator CI-958 (Whitfield et al, 1992). Not surprisingly then, pharmacokinetics can help guide early clinical studies of some compounds but not others and whether they will be of value can only be determined by carrying out the pharmacokinetic measurements. The real value of the pharmacokinetic studies for the five compounds reviewed may not yet have been seen. Interpatient variations in drug handling can play a major part in determining levels of anti-tumour activity as well as toxicity.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

Studies on the molecular pharmacology of GR63178A. A novel pentacyclic pyrolloquinone anticancer drug.

GR63178A (NSC D611615) is the second pentacyclic pyrolloquinone to be evaluated clinically as an anticancer drug. Its mechanism of action is unknown but may be related either to its quinone group or planar ring system. In this report we have investigated the ability of GR63178A to bind non-covalently to DNA, inhibit topoisomerase II and undergo reduction to reactive free radical species. Using two DNA duplexes, a 12-mer oligonucleotide which is a preferred sequence for minor groove binders and a hexamer which is a preferred sequence for intercalators, no evidence of significant binding with GR63178A was found. Neither GR63178A nor GR54374X (its 9-hydroxy metabolite) inhibited purified human topoisomerase II in a decatenation assay. Free radical chemistry was studied by both pulse radiolysis and ESR spectroscopy as well as by in vitro drug incubations with NADPH-fortified rat liver microsomes and purified cytochrome P450 reductase. The one-electron reduction potential of GR63178A was -207 mV +/- 10 which is much more positive than other quinone-containing anticancer drugs such as doxorubicin, mitomycin C and mitozantrone. GR63178A underwent enzyme-catalysed quinone reduction more readily than doxorubicin but produced significantly fewer reactive oxygen species. No evidence was detected of drug-induced, radical-mediated DNA damage in vitro using pBR322 plasmid DNA. Disproportionation of the GR63178A semi-quinone free radical proceeded with a rate constant of 1 x 10(9) M-1 sec-1 under anaerobic conditions, one order of magnitude faster than doxorubicin. The preferential disproportionation of the semi-quinone may explain our inability to detect a free radical signal by ESR. The hydroquinone of GR63178A was stable and exhibited strong visible absorption with a bathochromic shift of 120 nm over the parent drug. These unusual properties may be due to the hydroquinone undergoing a form of keto-enol tautomerization. Thus, GR63178A free radical formation does not appear to result in significant drug activation. In conclusion, GR63178A is unlikely to mediate its antitumour activity by DNA binding, topoisomerase II inhibition or free radical formation in direct contrast to similar anthracycline- and anthraquinone-based anticancer drugs.

Animals↗

Phase I and pharmacokinetic study of rhizoxin.

Rhizoxin is a tubulin-binding cytotoxic compound, isolated from the fungus Rhizopus chinensis, with significant antineoplastic activity in several murine and human tumor models. In this Phase I study, the drug was administered by i.v. bolus injection at 3-wk intervals. Twenty-four patients with refractory solid tumors were treated; 60 courses of rhizoxin were given, at doses ranging from 0.8 to 2.6 mg/m2. Grade 3 mucositis, Grade 4 leukopenia, and Grade 3 diarrhea were dose limiting but reversible at 2.6 mg/m2, the maximum tolerated dose for both previously untreated and heavily pretreated patients. Alopecia and moderate discomfort at the injection site occurred at all doses. Other sequelae, including peripheral neuropathy, phlebitis, and nausea and vomiting, were sporadic and mild. Two heavily pretreated patients with recurrent breast cancer had minor responses to rhizoxin, one at 1.6 mg/m2 and the other at 2.6 mg/m2. Plasma concentrations of rhizoxin were measured by high-performance liquid chromatography. The drug was not detectable (less than 5 ng/ml) at doses of 0.8 mg/m2 and 1.6 mg/m2 and was not measurable 10 min after injection at 2.0 mg/m2. At 2.6 mg/m2, there was considerable intersubject variation in the plasma concentration-time profiles; the area under the curve ranged from 0.29 to 0.96 microgram/ml.min. Rhizoxin has shown some clinical activity in this Phase I study, and a dose of 2.0 mg/m2 is recommended for Phase II studies using this schedule.

Adult↗

Preclinical and phase I studies with rhizoxin to apply a pharmacokinetically guided dose-escalation scheme.

BACKGROUND: Rhizoxin is a new macrocyclic lactone isolated from the fungus Rhizopus chinensis which displays broad-spectrum antitumor activity against murine and human tumor xenografts and has activity against a number of vincristine-resistant tumors in vitro and in vivo. PURPOSE: This study describes the preclinical and clinical pharmacology of rhizoxin to apply a pharmacokinetically guided dose-escalation (PGDE) strategy during the phase I trial. METHODS: Rhizoxin was administered by a single intravenous bolus injection to female BALB/c mice over the dose range 7.5-18 mg/m2 from which we derived the dose that was lethal to 10% and 50% of the mice (i.e., LD10 and LD50, respectively). The LD10 was 11.7 +/- 0.7 mg/m2 (mean +/- SD), and the LD50 was 14.7 +/- 0.6 mg/m2. Pharmacokinetic studies were integrated with the toxicity study in female BALB/c mice at one-tenth the LD10, one-half the LD10, and the LD10 (i.e., 1.2, 6, and 12 mg/m2, respectively). From these data, a target area under the plasma drug concentration versus time curve (AUC) (i.e., 40% of the LD10 AUC) was calculated for clinical studies. Phase I studies were initiated at 0.8 mg/m2 (one-tenth the equivalent LD10 in male CD1 mice), with the intent of escalating the dose by an extended factor-of-two method until the target AUC and/or maximum tolerated dose (MTD) was reached. RESULTS: The major drug toxic effects in mice were body weight loss, sluggishness, ataxia, transient changes in hematological parameters, and hematuria. Diarrhea was universal at doses greater than 9 mg/m2, and hind limb paralysis was observed in one of 10 mice, but only at supralethal doses (18 mg/m2). Rhizoxin pharmacokinetics were best described by a two-compartment open model (half-life [t 1/2] alpha = 4.4 minutes +/- 0.9 minute [mean +/- SD], and t 1/2 beta = 84 minutes +/- 20 minutes at 12 mg/m2) and found to be nonlinear with respect to dose. At doses of 1.2, 6, and 12 mg/m2, the respective AUC values were 1.3, 22.4, and 70.6 microM x minute. From these data, a target AUC value of 28 microM x minute (40% of the LD10 AUC) was derived. Rhizoxin was not detectable in patient plasma (less than 5 ng/mL at 0.8 and 1.6 mg/m2), and doses had to be escalated by conventional methods. Myelosuppression was dose limiting in patients: Seven of eight treated at 2.6 mg/m2 experienced World Health Organization grade 3-4 neutropenia, and five of eight developed mucositis. The AUC values at the human MTD (2.6 mg/m2) were in the range of 0.41-1.01 microM x minute, considerably lower than the target AUC of 28 microM x minute. CONCLUSION AND IMPLICATIONS: Although PGDE schemes have been successfully employed for other antitumor agents, this methodology could not be applied during the phase I trial of rhizoxin. PGDE studies in the future may incorporate comparative murine versus human metabolism studies in vitro with phenotyped liver microsomes. It may also be useful to assess the comparative myelotoxicity of a new drug by performing in vitro cytotoxicity studies on mouse and human bone marrow stem cells.

Adolescent↗

Clinical pharmacokinetics of the anthrapyrazole CI-941: factors compromising the implementation of a pharmacokinetically guided dose escalation scheme.

The pharmacokinetics of the anthrapyrazole CI-941 has been investigated in conjunction with the Phase I evaluation of the drug with the intent of applying a pharmacokinetically guided dose escalation strategy. A starting dose of 5 mg/m2 was chosen, based on one-tenth the 10% lethal dose in mice. Due to the steep dose lethality relationship and nonlinear pharmacokinetics in mice, a target area under the CI-941 plasma concentration x time curve (AUC) of 110 microM x min (i.e., 40% of the mouse 10% lethal dose AUC) was chosen. This AUC was achieved in mice at 40 mg/m2. A total of 37 patients received 74 courses of CI-941 (5 to 55 mg/m2), with 26 patients consenting to pharmacokinetic monitoring. CI-941 was rapidly cleared from plasma, and a triexponential open model could be fitted to the data (t1/2 alpha = 7.6 +/- 2 min, t1/2 beta = 65 +/- 27 min, t1/2 zeta = 21 +/- 9 h). CI-941 was subjected to only limited urinary elimination, accounting for 5.2 +/- 2.8% of the administered dose. Wide interpatient variability in plasma CI-941 clearance at the starting dose and subsequent doses precluded the implementation of a pharmacokinetically guided dose escalation scheme, and the dose was escalated in 5-mg/m2 increments until the maximally tolerated dose was achieved. A number of investigations were performed to study potential reasons for variability in CI-941 clearance. However, CI-941 plasma protein binding (95 +/- 1%) and measures of pretreatment renal (51Cr-EDTA clearance), hepatic (plasma alanine transaminase and alkaline phosphatase levels), or cardiac function (left ventricular ejection fractions) did not relate strongly to CI-941 clearance. In patients treated at 40 mg/m2, the AUC values (156 to 415 microM x min) approximated or exceeded the target AUC. Fifty mg/m2 was the Phase II recommended dose. Further prospective studies are warranted to assess the utility of pharmacokinetically guided dose escalation strategies and to determine whether or not the variability encountered in clearance is unique to CI-941.

Anthraquinones↗

Phase I trial of the anthrapyrazole CI-941: prospective evaluation of a pharmacokinetically guided dose-escalation.

The development of new drugs in early clinical trials is currently based upon the results of preclinical antitumour and toxicity studies in animals. More recently, the use of preclinical pharmacokinetic information in mice has been proposed to also provide information that might expedite early clinical trials and more specifically phase I studies. The anthrapyrazole CI-941 was one of three chosen for phase I anticancer drug development. In addition, because of the predictability of the preclinical dose limiting toxicity and linear CI-941 pharmacokinetics in mice; a pharmacokinetically guided dose escalation scheme was attempted during the phase I trial, but had to be abandoned. 44 patients were entered who received 95 courses of treatment using a bolus injection every 21 days. The dose range was 5-55 mg/m2. The dose limiting toxicity was leucopenia and other toxicities, which included nausea and vomiting, mucositis, diarrhoea, alopecia and skin discolouration were either mild or manageable. Pharmacokinetic studies were performed with 27 courses. There were wide interpatient variations in the dose-AUC relationship (r = 0.7496) that hampered application of the proposed pharmacokinetically guided dose escalation scheme as planned. No complete or partial responses were observed. The recommended phase II dose using this schedule is 50 mg/m2.

Adult↗

The impact of pharmacokinetically guided dose escalation strategies in phase I clinical trials: critical evaluation and recommendations for future studies.

Phase I studies requiring multiple dose escalation steps have led to the development of pharmacokinetically guided dose escalation (PGDE) strategies to expedite the conduct of early clinical trials. This article critically reviews PGDE strategies for a number of new anticancer agents including amphethinile, brequinar sodium, iodo-doxorubicin, the anthrapyrazoles (DuP 941, DuP 942 and DuP 937), rhizoxin, and aphidicolin glycinate. The benefits and problems associated with PGDE are examined. Recommendations are made for the optimal deployment of pharmacological information in future phase I studies.

Antineoplastic Agents↗

Drug metabolism in carcinogenesis and cancer chemotherapy.

Cytotoxic drugs have become invaluable for the clinical oncologist in the treatment of neoplastic disease. Frequently, these therapeutic agents are used in combination in order to combat the heterogeneity imposed by the variable tumor cell biochemistry of the neoplastic cell population. Hence, one could argue polypharmacy has become the rule rather than the exception in cancer chemotherapy. The use of such regimens obviously increases the potential for drug-drug interactions and also may potentiate the effects of interindividual variation in drug metabolism. Altered expression of drug metabolizing enzymes may also predispose certain individuals to cancer through enhanced metabolic activation and decreased detoxication of environmental, dietary and possibly endogenous procarcinogens. Many anticancer drugs can be considered as prodrugs which require metabolic activation to exert their selective cytotoxic effects. Recent molecular and biochemical advances have increased our understanding of the factors which govern the regulation of drug metabolizing enzymes and have improved our knowledge of the metabolism and action of anticancer agents. The aim of this review is not to exhaustively document all the work in the area of drug metabolism in relation to cancer, but to provide a comprehensive update of some of the recent advances in drug metabolism which have helped to rationalize the mechanism of action of some anticancer drugs and which may help to optimize future patient selection for certain novel chemotherapeutic regimens. This review also discusses some of the more recent breakthroughs in the area of carcinogenesis and highlights directions for future studies.

Animals↗

Phase I trial and pharmacokinetics of trimelamol (N2,N4,N6-trihydroxymethyl-N2,N4,N6-trimethylmelamine).

Trimelamol is an analogue of hexamethylmelamine and pentamethylmelamine which does not require metabolic activation and is sufficiently soluble to allow parenteral administration. A Phase I trial has been performed at the Royal Marsden Hospital in which two schedules of administration have been evaluated, a single i.v. infusion repeated every 3 weeks and 3 daily doses repeated every 3 weeks. Pharmacokinetic analysis was performed at all dose levels on both schedules and a linear correlation was demonstrated between dose and area under the curve. Myelosuppression was dose limiting for single dose administration with a maximum tolerated dose of 2400 mg/m2. Median leukocyte nadirs at 1800, 2100, and 2400 mg/m2 were 3.2, 2.6, and 1.5 x 10(9)/liter. Thrombocytopenia and anemia also occurred but were not dose limiting. Doses greater than 1500 mg/m2 caused WHO grade 3 nausea and vomiting but no acute sedation. Three day administration appeared to be less myelosuppressive, giving a maximum tolerated dose of 1000 mg/m2. Median leukocyte nadirs at 800, 900, and 1000 mg/m2 daily for 3 days were 3.0, 2.3, and 1.5 x 10(9)/liter. Nonhematological toxicities were also less marked on the fractionated schedule. Antitumor effects were observed including 1 complete and 9 partial responses. Demonstration of activity in ovarian cancer has led to further evaluation in this disease using the 3-day schedule at a dose of 800 mg/m2 daily for 3 days.

Adult↗

The pharmacokinetics and toxicity of the anthrapyrazole anti-cancer drug CI-941 in the mouse: a guide for rational dose escalation in patients.

CI-941 is a new synthetic DNA-binding agent selected for phase I clinical evaluation. The drug has broad-spectrum antitumour activity against a number of murine tumours and, in contrast to doxorubicin, is unlikely to induce cardiotoxicity by a free-radical-mediated mechanism. In this study the toxicity and pharmacokinetics of CI-941 were studied in the mouse to enable the implementation of a pharmacokinetically guided dose-escalation strategy in patients. Following a single i.v. bolus injection in mice, CI-941 induced dose-dependent leukopenia. The white blood cell counts were suppressed on day 3 by 18%, 50% and 65% of control, at doses of 10, 15 and 20 mg/kg CI-941, respectively. Other toxicities such as weight loss, alopecia, diarrhoea and convulsions were observed at doses greater than 20 mg/kg. Lethality studies in female Balb-c mice resulted in an LD10 value of 20 mg/kg (95% confidence limits; range, 19-21 mg/kg) and an LD50 value of 22 mg/kg (95% confidence limits; range, 21-23 mg/kg). The pharmacokinetics of CI-941 were studied at four dose levels from 1/10 of the LD10 to the LD10 (20 mg/kg). The drug was rapidly cleared from the plasma (250-400 ml/min per kg) at a rate approaching the cardiac output of mice, displaying triphasic plasma pharmacokinetics. The area under the plasma CI-941 concentration vs time curve (AUC) was linear with respect to the dose, up to and including 15 mg/kg (AUC = 110 microM x min at 15 mg/kg), but became non-linear at 20 mg/kg (AUC = 277 microM x min). Despite 80%-84% plasma protein binding, CI-941 was rapidly and extensively distributed into tissues, especially the kidney. Following i.v. bolus injections at doses of 1.5 and 15 mg/kg, elimination of the parent compound by urinary excretion accounted for 12%-18% of the delivered dose. A phase-I starting dose (based on that equivalent to 1/10 of the LD10 in the mouse) of 5 mg/m2 CI-941 is recommended for single administration schedules. In addition, a pharmacokinetically guided dose-escalation strategy, based on achieving a target AUC of 110 microM x min, is proposed.

Animals↗

Psychosocial adjustment following a stroke.

A stroke can be a serious and debilitating health problem. The present study examined the effect of the severity of the stroke, patients' cognitive adaptation to their situation, the relationship with the caregiver and caregivers' adaptation on patient depression and motivation in outpatient therapy. Forty poststroke patients and their primary caregivers (usually a spouse) were interviewed an average of 9 months poststroke. Three independent predictors of depression were identified: a lack of meaningfulness in life, overprotection by the caregiver, and a less recent stroke. Motivation was independently related to less overprotection and lower perceptions of control over recovery. It was found that psychosocial factors predicted depression and motivation even when the effects of severity and site of the stroke were controlled for. The implications of cognitive adaptation and social support ideas for coping with a stroke are discussed.

Adaptation, Psychological↗

Unexpected death as a result of infective endocarditis.

Thirteen cases of infective endocarditis (IE) diagnosed for the first time at autopsy or, in those patients with a previous diagnosis of IE, not thought to be active at the time of death, are presented. Of the six patients who died within 24 h of the onset of symptoms, two died of obstruction of a valve orifice, two died of sepsis, one died of sepsis and alcoholic cardiomyopathy, and one died of a coronary artery embolus. Of the five patients with symptoms lasting more than 24 h, three died of sepsis and congestive heart failure. One died from sepsis alone and one died from congestive heart failure (CHF). In two patients whose duration of symptoms is unknown, one died of sepsis and CHF, and in the other the mechanism of death is unknown. Predisposing factors present in 11 of 13 patients included alcoholism (three), intravenous (IV) drug abuse (three), prosthetic valves (three), aortic stenosis (two), past rheumatic fever (one), and nonstenotic congenitally bicuspid valves (two). The reasons for no antemortem diagnosis were a missed or incorrect clinical diagnosis in three patients seen by a physician shortly before death, no signs or symptoms or found dead (four), non-specific signs and symptoms (three), refusal of medical treatment (one), and a solitary lifestyle (one); there was insufficient information about one patient. Individuals with needle tracks, generalized petechiae. Osler's nodes, splinter hemorrhages, intravenous catheters, pacemaker wires, and infected aortic-valve (A-V) shunts are at risk of IE. Blood and the vegetations should be cultured. The attending physician should be notified of the diagnosis in such cases.

Adult↗

Fatal pepper aspiration.

Eight patients (five previously undescribed) died due to aspiration of pepper. Seven deaths involved homicides, and one death was accidental in a child with documented pica. The pepper was administered by the mothers in three children and by a foster mother, the mother's boyfriend, an adult male friend, and the child's godfather in one case each. Homicidal pepper aspiration shares many of the features of more conventional child abuse: in each instance, the child was being punished, four of the seven assailants initially gave incorrect histories, and four children were chronically abused. The facts that each death occurred in a different state and that five of the seven homicides occurred within the two years preceding the preparation of this report suggest that this form of child abuse is not confined to any single part of the country and may be increasing in infrequency.

Asphyxia↗

Sudden death and left ventricular outflow disease.

Aortic stenosis is a well-recognized cause of sudden death, but in our experience, it is uncommon as the sole cause of sudden death. The most common overall cause of AS is the calcified congenitally bicuspid valve. There is an increased incidence of subaortic stenosis in relatives of patients with subaortic stenosis, although Mendelian inheritance has not been reported. Supravalvular AS may be an autosomal dominant with variable penetrance, it may be sporadic, or it may be one of the manifestations of Williams' syndrome. The principal mechanisms of sudden death in AS appear to be due to (1) activation of left ventricular baroreceptors which causes reflex bradycardia and cardiac arrhythmias, or (2) arrhythmias as complications of LVH. Myocardial ischemia has been anatomically proven and may be due to diastolic compression of intramural coronary arteries. Aortic dissection occurs with increased frequency in patients with a bicuspid aortic valve. Heart block can result from calcification of the bundle of His in AS of any cause. Supravalvular AS may be complicated by adherence of an aortic valve cusp to the aorta resulting in coronary ostial stenosis, and coronary narrowing by intimal hyperplasia. AS at any level may lead to IE, which has been responsible for occasional sudden deaths.

Aged↗