PubMed Health⌕ Search

Biomedical subjects

R J Francis

Publications and source records attributed to R J Francis.

At least 19 recordsLinked to original sources

Measurement of the critical DNA lesions produced by antibody-directed enzyme prodrug therapy (ADEPT) in vitro, in vivo and in clinical material.

An antibody-directed enzyme prodrug therapy (ADEPT) system against CEA-positive tumours is currently in phase I clinical trials. It consists of a prodrug, 4-[N,N-bis(2-iodoethyl) amino] phenoxycarbonyl L -glutamic acid (ZD2767P) and a conjugate of the F(ab')(2) anti-CEA antibody A5B7 and the bacterial enzyme carboxypeptidase G2 (CPG2). ZD2767P is converted by antibody-targeted CPG2 into an active bifunctional alkylating drug (ZD2767) at the tumour site. The IC(50) value of the prodrug against the human colorectal tumour LS174T cell line was 55 +/- 9 microM following a 1 h exposure. In contrast, co-incubation of ZD2767P with CPG2 resulted in 229-fold increase in activity. Using a modified comet assay, DNA interstrand cross links (ISC) were detected within 1 h of ZD2767P + CPG2 treatment and were repaired by 24 h. A clear dose-response was seen between the level of ISC, growth inhibition and ZD2767 concentration. Administration of a therapeutic dose of ZD2767P 72 h after the F(ab')(2) A5B7 conjugate to mice bearing LS147T xenografts resulted in extensive ISC in the tumour after 1 h; repair was seen at 24 h. Tumour biopsies and peripheral lymphocytes were studied in 5 patients on the ADEPT phase I clinical trial. In 4 patients no ISC were detected. These patients also demonstrated poor localization of conjugate and no tumour response was seen. However a significant level of ISC was detected in one tumour biopsy, which also showed evidence of conjugate localization and clinical response. These studies demonstrate the application of the comet assay in the measurement of ISC in vitro and in clinical material and confirm that activation of ZD2767P results in the formation of DNA crosslinks.

Adenocarcinoma↗

A double-blind, placebo-controlled trial of two dose ranges of nefazodone in the treatment of depressed outpatients.

BACKGROUND: Nefazodone hydrochloride, a 5-HT2 receptor antagonist that selectively inhibits serotonin reuptake, was evaluated in a double-blind, dose-finding study of novel design, involving 240 patients with major depression. METHOD: Patients were randomly assigned to three treatment groups and received either placebo (2-6 capsules per day), a lower-dose range of nefazodone (50-300 mg/day), or a higher-dose range of nefazodone (100-600 mg/day) for 6 weeks. RESULTS: At the end of treatment, the Hamilton Rating Scale for Depression and the clinician- and patient-rated Inventory for Depressive Symptomatology scores showed significant improvement (p < or = .05) for patients receiving higher-dose range nefazodone (mean = 392 mg/day) compared with placebo treatment. The percentage of responders (at least "much improved" on the Clinical Global Impressions-Improvement scale) in the higher-dose range nefazodone group (58%) was significantly greater (p < or = .05) than in the placebo group (39%). The treatment group receiving nefazodone in the lower-dose range was not differentiated in clinical response from placebo controls. The rate of discontinuation for adverse experience (14%) was similar for patients treated with higher-dose range nefazodone and placebo. CONCLUSION: The findings of this study indicate that nefazodone is an effective and well-tolerated antidepressant drug, with a recommended therapeutic dose range of 100 to 600 mg/day and a starting dose of 100 mg b.i.d.

Administration, Oral↗

Receptors for angiotensins I and II: their relevance to renal haemodynamics, blood pressure control and hind-limb blood flow.

The well established differential pulmonary handling of angiotensins I and II indicates the possibility that vascular receptors for the deca- and octa-peptides do not necessarily involve common sites in the renal vasculature either. Experimental findings involving haemodynamic changes within the kidney in anaesthetised and conscious sheep, with utilization of the angiotensins, and also of noradrenaline, are briefly presented; the implications of the intra-renal water and creatinine transfers are discussed, especially as they concern the possible location of angiotensin receptors in the renal blood vessels. Other aspects of the relationships between the peptides are also taken into account particularly with regard to a postulated angiotensin I [NaCl] dependent peritubular capillary antidiuretic action, angiotensin converting enzyme inhibition, Goldblatt clamp induced hypertension and blood flow through the hind-limbs.

Angiotensin I↗

Initial and steady state pharmacokinetics of cilazapril in congestive cardiac failure.

Twenty one patients with NYHA class II-III congestive heart failure received single ascending doses of 0.5, 1.25 and 2.5 mg cilazapril daily followed by the minimum effective dose for six weeks. Fifteen patients completed the study, but the data from only 11 were sufficiently complete for kinetic evaluation. The pharmacokinetics of the metabolite, cilazaprilat, after a single dose of 0.5 mg cilazapril were similar to previous observations in healthy volunteers at identical dosage. Repeat administration, however, led to greater accumulation than previously observed in volunteers at the higher dosages of 1.25 or 5 mg given for 8 days. Seven patients experienced adverse events. Four were severe, leading to withdrawal of the patients from the study, but only one event was related to cilazapril. Of the other three, one suffered a myocardial infarction and subsequently died due to worsening congestive heart failure. One other patient was withdrawn with two adverse events probably related to cilazapril. No other deaths occurred amongst the study population, and there were no significant abnormalities in haematology or blood chemistry.

Adult↗

Clinical pharmacology of cilazapril.

In clinical pharmacology studies, cilazapril, after its bioactivation to cilazaprilat, was characterised as a potent, reversible angiotensin converting enzyme (ACE) inhibitor with a terminal half-life of 30 to 50 hours, which is consistent with saturable binding to ACE. Despite the arterial vasodilatation, only slight increases in heart rate occurred during cilazapril administration. Cilazapril had no acute effect on cardiovascular reflexes, and increased effective renal plasma flow slightly. Glomerular filtration rate remained unaltered. A close positive correlation was found between the cilazaprilat plasma concentration and degree of ACE inhibition. The potency of cilazaprit, defined as the concentration of cilazaprilat causing 50% inhibition of ACE, was approximately 1 microgram/L plasma. In short term studies in patients with hypertension, it appeared that more than 90% inhibition of plasma ACE was needed to obtain blood pressure reduction. Results of various dose-response studies established the indirect relationship between dose, the plasma concentration of the drug, and the blood pressure response, and identified the dose producing the maximal effect to be 5mg. Cilazapril inhibited ACE for a relatively long period which was extended in patients with severe chronic renal impairment or hepatic failure. In these patients a reduction of the dose and/or less frequent administration is recommended. There was no clinically relevant interaction of cilazapril with food, furosemide (frusemide), digoxin or coumarins. The effects of hydrochlorothiazide on sodium and chloride excretion were potentiated by cilazapril, and an additive effect of propranolol and nitrendipine on the blood pressure response to cilazapril was observed. An interaction with indomethacin and cilazapril might occur, potentially reducing the blood pressure-lowering effect of cilazapril. In general, cilazapril was well tolerated.

Angiotensin-Converting Enzyme Inhibitors↗

Clinical pharmacology of cilazapril.

In clinical pharmacology studies cilazapril, after its bioactivation to cilazaprilat, was characterized as a potent, reversible angiotensin-converting enzyme (ACE) inhibitor with a terminal half-life of 30 to 50 hours consistent with saturable binding to ACE. Despite the arterial vasodilation, only slight increases in heart rate were found. Cilazapril had no acute effect on cardiovascular reflexes. Cilazapril increased effective renal plasma flow slightly. Glomerular filtration rate remained unaltered. A close and steep correlation between cilazaprilat plasma concentration and ACE inhibition was found. The potency of cilazaprilat, defined as the concentration of cilazaprilat causing 50 percent ACE inhibition, was approximately 1 ng/ml plasma. In short-term studies in hypertensive patients, it appeared that more than 90 percent of plasma ACE inhibition is needed to obtain blood pressure reduction. The result of various dose-response studies established the indirect relationship between dose, plasma concentration of the drug, and the blood pressure response and identified the dose producing maximal effect (i.e., 5 mg). Cilazapril had relatively long-lasting effects on ACE inhibition. In patients with severe chronic renal impairment or hepatic failure, the duration of ACE inhibition of cilazapril was prolonged. In these patients a reduction of the dose and/or less frequent dosing is recommended. There was no clinically relevant interaction of cilazapril with food or furosemide. The effects of hydrochlorothiazide on sodium and chloride excretion were potentiated by cilazapril. An additive effect of propranolol and nitrendipine on the blood pressure response to cilazapril was observed. An interaction with nonsteroidal anti-inflammatory drugs and cilazapril might occur, potentially reducing the blood pressure lowering effect. In general cilazapril was well tolerated.

Angiotensin-Converting Enzyme Inhibitors↗

The pharmacokinetics and bioavailability of cilazapril in normal man.

1. The pharmacokinetics of cilazapril and its active metabolite, cilazaprilat, were investigated in a three-part crossover study in 12 healthy male volunteers aged 19-38 years, excluding one subject who withdrew from the study. 2. Single 2.5 mg oral doses of cilazapril, and equivalent oral and intravenous doses of cilazaprilat were administered as aqueous solutions to the fasted subjects. There was an interval of 1 week between treatments. Concentrations of cilazapril and cilazaprilat in plasma and urine, and activities of angiotensin converting enzyme (ACE) in plasma were measured by radioenzymatic methods. 3. After 10 min infusion of cilazaprilat, the mean plasma concentration was 194 ng ml-1, and ACE inhibition was almost 100%. The decline in concentrations was polyphasic, with mean half-lives for the periods 1-4 h and 24-168 h of 0.90 and 46 h, respectively. Between 4 and 24 h the decline was non-linear, and ACE inhibition decreased from 91% to 67%. Urinary recovery of cilazaprilat averaged 91% of dose. 4. After oral cilazapril, the parent drug was rapidly absorbed and rapidly eliminated, with a mean maximum plasma concentration of 82 ng ml-1 at 0.83 h and a single elimination half-life of 1.3 h. Cilazaprilat peaked at 36 ng ml-1 about 1.7 h after dosing and the decline in concentrations was biphasic, with half-lives of 1.8 h and 45 h. After oral cilazaprilat, plasma concentrations were considerably lower, and the peak later (2.2 h). 5. Urinary recovery data indicated an absolute bioavailability for cilazaprilat of 57% (range 45-75%) from oral cilazapril, but only 19% (range 8-40%) from oral cilazaprilat.(ABSTRACT TRUNCATED AT 250 WORDS)

Administration, Oral↗

The pharmacokinetics and angiotensin converting enzyme inhibition dynamics of cilazapril in essential hypertension.

1. In a double-blind, placebo controlled, crossover study 12 patients with essential hypertension received single doses of 5, 10 and 20 mg of cilazapril. 2. Peak plasma levels of cilazaprilat and the 24 h areas under curve were directly proportional to dose. 3. The elimination half-life during the first 8 h was about 1.7 h. 4. From 24 h onwards there was a prolonged terminal elimination phase with a half-life of about 40 h, and strict dose proportionality of plasma concentrations was not maintained. 5. The pharmacokinetics of cilazaprilat and the pharmacodynamics of plasma ACE inhibition were well described by a one compartment model with saturable binding to ACE. 6. The coefficients of the model which related to plasma ACE and its interaction with cilazaprilat were in good agreement with model independent observations. 7. The values for kinetic and dynamic parameters in hypertensive patients were comparable with those reported for healthy volunteers.

Angiotensin-Converting Enzyme Inhibitors↗

A pharmacokinetic study of cilazapril in patients with congestive heart failure.

1. The pharmacokinetics of cilazapril and the inhibition of angiotensin converting enzyme (ACE) were investigated in 10 patients with congestive heart failure, NYHA class II-III, receiving diuretics with or without digoxin. 2. Patients received 0.5 mg and 1 mg cilazapril on the first 2 days, followed by 0.5 mg or 1 mg daily for the next 8 weeks, in a single-blind study. Plasma cilazaprilat concentrations and plasma ACE activities were measured by radioenzymatic methods up to 24 h after the first and last doses. 3. After the initial 0.5 mg dose of cilazapril, a mean maximum plasma concentration of cilazaprilat of 6.8 ng ml-1 was observed at 2.3 h. Concentrations declined up to 8 h with a mean half-life of 5.8 h, followed by slower decrease to 24 h. Total clearance, based on data to 24 h, was estimated at 8.5 l h-1, with three-fold inter-individual variation. Mean maximum plasma ACE inhibition was 87%, decreasing to 65% at 24 h. 4. In the multiple dose phase of the study, four patients received cilazapril 0.5 mg daily, and six patients 1 mg daily. Cilazapril accumulation for the 0.5 mg group averaged 77%, but steady state concentrations for the 1 mg group were less than double those of the 0.5 mg group. ACE inhibition profiles at steady state were similar for both groups, and they differed from first dose data only in a somewhat lower inhibition at 24 h. 5. Historical comparison of the first-dose data with those for healthy young volunteers at identical dosage revealed only minor differences in kinetic parameters.(ABSTRACT TRUNCATED AT 250 WORDS)

Aged↗

Pharmacokinetics of cilazapril in patients with renal failure.

1. The pharmacokinetics of a single 1 mg dose of cilazapril were determined in six subjects with normal renal function and in 19 uraemic patients with various degrees of renal impairment. 2. Significant decreases in systolic and diastolic blood pressure were noted in all groups of subjects between 2 and 8 h after administration of 1 mg cilazapril. 3. There was a significant correlation between ACE inhibition at 24 h and creatinine clearance (CrCL). 4. For cilazapril, Cmax and tmax were independent of creatinine clearance. AUC(24) was inversely related to CrCL and apparent plasma clearance (CL/F) was directly related to CrCL. 5. For cilazaprilat, Cmax and tmax were related to creatinine clearance. AUC(24) was inversely related to CrCl and apparent plasma clearance (CL/F) was directly related to CrCL. 6. Dialysis clearance was approximately 2 l h-1 for cilazapril and for cilazaprilat. 7. The effects of renal impairment on cilazapril and cilazaprilat kinetics were similar to those observed for other inhibitors of angiotensin-converting enzyme such as captopril, enalapril and lisinopril. 8. It may be necessary to modify doses of cilazapril for the treatment of essential hypertension in uraemic patients. When creatinine clearance was below 15 ml min-1 cilazaprilat concentrations were increased, half-lives were prolonged and ACE inhibition remained above 90% for at least 24 h. A reduced dosage is indicated for these patients. 9. In patients requiring haemodialysis, maintenance doses of 0.5 mg given after each haemodialysis session are sufficient.

Adult↗

Kinetic investigations into the possible cause of low serum histidine in rheumatoid arthritis.

To investigate the cause of low serum histidine in rheumatoid arthritis (RA) single oral and intravenous doses of L-histidine were administered to patients with active RA, and to an equal number of age and sex matched control subjects. In the first study 13 patients and their controls received a 100 mg kg-1 dose of L-histidine as an aqueous slurry. Significant differences were seen in body weight, predose baseline serum histidine concentration, Cmax, t1/2, and area under curve, AUC0-infinity. In a second study six patients and six controls each received a 50 mg kg-1 dose of L-histidine both orally and intravenously on two separate occasions. The patients with RA had a lower baseline serum histidine concentration, a lower volume of distribution, and a shorter plasma half life than the controls, but these differences were not statistically significant. No difference was seen in bioavailability or clearance. Low serum histidine in RA is unlikely to be due to malabsorption from the gut, uptake by abnormal gut flora, or increased metabolism.

Adult↗

Effects of single doses of the converting enzyme inhibitor cilazapril in normal volunteers.

The new converting enzyme inhibitor cilazapril, or RO 31-2848, was evaluated in 14 healthy male volunteers. In a pilot study in two subjects, the inhibiting capacity of single oral doses of 5 and 10 mg on the pressure and heart rate response to exogenous angiotensin I was assessed. Both doses reduced the blood pressure response to angiotensin I to 10% of control within 45 min and for the 4 h tested. In the main study, 12 volunteers each received two single oral doses of cilazapril at a 2-week interval, and plasma converting enzyme and renin activity, blood angiotensin I, plasma immunoreactive angiotensin II and aldosterone were measured serially. Single doses of 1.25, 2.5, 5, and 10 mg of cilazapril were tested in groups of six subjects each. All doses inhibited plasma converting enzyme activity by 90% for at least 8 h and induced the expected pattern of changes of the renin-angiotensin-aldosterone system. Only slight dose-dependent variations in the effect were observed. Basic heart rate and blood pressure were not altered by any of the doses, which all were well tolerated. These data suggest that cilazapril is a very potent and long-acting new converting enzyme inhibitor.

Angiotensin I↗

Pharmacokinetics of the converting enzyme inhibitor cilazapril in normal volunteers and the relationship to enzyme inhibition: development of a mathematical model.

The pharmacokinetics of the new converting enzyme inhibitor cilazapril were investigated in 12 healthy male volunteers. Single oral doses of 1.25, 2.5, 5, and 10 mg of cilazapril were tested in groups of six subjects, each of whom received two different doses. A 2-week interval was allowed between treatments. Plasma levels of cilazaprilat, the active form of cilazapril, were measured for up to 3 days after drug administration. Peak plasma levels and 24-h areas under the curve (AUCs) were almost directly proportional to dose, and the elimination half-life (t1/2) during the first 8 h after dosing was 1.5 h. From 24 h on, there was a prolonged terminal phase with a t1/2 of approximately 50 h, and there was only slight dose-dependency during this phase. These data suggest that the pharmacokinetics of cilazapril are nonlinear. A physiologically realistic model based on saturable binding to converting enzyme was developed to account both for the drug kinetics and for the relationship of the kinetics to the dynamics of plasma converting enzyme inhibition. A number of conclusions relevant to the therapeutic application of cilazapril in hypertension are drawn from the data and from the pharmacokinetic-pharmacodynamic model.

Angiotensin-Converting Enzyme Inhibitors↗

Repeated administration of the converting enzyme inhibitor cilazapril to normal volunteers.

Cilazapril 1.25 and 5.0 mg p.o. q.d. was administered in double-blind fashion to two groups of six normal volunteers on 8 consecutive days. Blood pressure, heart rate, and plasma converting enzyme activity were measured each day prior to drug administration and up to 72 h after the last dose. Plasma renin activity, blood angiotensin I, plasma angiotensin II, and aldosterone as well as plasma cilazaprilat levels were determined on the first and the last day of active treatment at times 0, 4, and 24 h. The drug was very well tolerated by all volunteers. At 4 h postdrug, plasma converting enzyme activity was reduced in dose-dependent fashion on the first and the eighth day; plasma cilazaprilat levels were also clearly dose dependent. Nevertheless, 24 h postdrug cilazaprilat levels were similar on the first and last day of drug administration, and plasma converting enzyme activity was also stable throughout the 8 days. The various components of the renin-angiotensin system responded in the usual fashion. These results provide strong evidence that cilazapril is a very potent and highly effective converting enzyme inhibitor. Doses well below 5 mg/day will probably suffice for therapeutic efficacy. These data also confirm the hypothesis formulated in the preceding article, i.e., that there is no accumulation of the drug with repeated administration despite its long pharmacological half-life (t1/2).

Adult↗

Pharmacokinetics of single and multiple doses of flusoxolol (Ro 31-1411) in healthy subjects.

Flusoxolol (Ro 31-1411) is the pharmacologically active optical isomer of Ro 31-1118, a potent cardioselective beta-adrenoceptor antagonist with partial agonist activity. It was given to 6 healthy volunteers in a single dose, 40 mg, and then in multiple doses, 40 mg daily for 8 days. Plasma concentration data were best described by a linear two-compartment pharmacokinetic model with first order absorption, and the results confirmed linear kinetics. Pharmacokinetic data for flusoxolol were comparable to those for the racemate Ro 31-1118.

Adrenergic beta-Antagonists↗

Pharmacodynamic and pharmacokinetic studies on bufuralol in man.

Observations were made in eight subjects who exercised before and at 1, 2, 4, 6, 8 and 24 h after the double-blind oral administration of placebo, bufuralol 7.5, 15, 30, 60 and 120 mg and propranolol 40 and 160 mg. The exercise heart rate remained constant after placebo. Bufuralol 7.5 mg and propranolol 40 mg reduced exercise heart rate up to 6 and 8 h respectively after dosing but bufuralol 15, 30, 60 and 120 mg and propranolol 160 mg were still active at 24 h. The lowest exercise heart rate occurred at 2 h after all active treatments. Bufuralol 60 and 120 mg produced similar reduction in exercise tachycardia as propranolol 40 mg but less than propranolol 160 mg. Plasma levels of bufuralol and its two major metabolites were measured. The peak plasma concentrations of bufuralol occurred at 1.5 h after 7.5 mg and at 2 h after the other doses of bufuralol. In six subjects the plasma elimination half-life of bufuralol was 2.61 +/- 0.18 h and in the other three subjects 4.85 +/- 0.35 h. There was a corresponding longer time to peak concentration and plasma elimination half-life of the two metabolites in these three subjects. These findings show that bufuralol is a potent beta-adrenoceptor antagonist with partial agonist activity. It has a long duration of action and there is bimodal metabolism of the drug in man.

Adrenergic beta-Antagonists↗