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Biomedical subjects

F Bochner

Publications and source records attributed to F Bochner.

At least 91 records · Page 5Linked to original sources

Plasma and synovial fluid gentisate in patients receiving salicylate therapy.

Our study was undertaken to assay gentisate, an oxidation metabolite of salicylate, in plasma and synovial fluid (SF) samples from patients taking antiinflammatory doses of aspirin. A close correlation between plasma and SF concentrations was found for (1) salicylate, (2) salicylurate, and (3) gentisate, in 20 patients studied. Our data suggest ready equilibration of these compounds between the plasma and synovial spaces. In vitro experiments confirmed that in the presence of an oxy radical flux, salicylate is oxidized to gentisate. However, no evidence was obtained to implicate peripheral conversion of salicylate to gentisate in inflamed joints where oxy radicals may be produced.

Arthritis, Rheumatoid

Disposition of and clinical response to salicylates in patients with rheumatoid disease.

The disposition of salicylic acid (SA) and its metabolites and the clinical response to long-term aspirin treatment at varying doses were assessed in patients with rheumatoid disease. Steady-state kinetics of SA (total and unbound), salicyluric acid (SUA), gentisic acid (GA), and clinical status were estimated weekly in 10 patients with rheumatoid arthritis. Eight received a soluble aspirin form and two received an enteric-coated form. The starting dose of aspirin in each patient was 1.8 gm (soluble) or 1.95 gm (enteric-coated) daily. Weekly increments in dose were made until a satisfactory clinical outcome was achieved. The final aspirin dose range was 3.6 to 8.1 gm daily, which resulted in mean steady-state plasma SA concentrations (CpSA) from 56 to 375 mg/l. Since the mean total CpSA increased approximately proportionately over the dose range, there was little change in total SA clearance. By contrast, increasing aspirin dosage resulted in decreased clearance and disproportionate increases in unbound SA (CpuSA). The maximum velocity of conversion of SA to SUA (Vm) increased significantly, from 57.3 +/- 11.7 mg/hr at an aspirin dose of 1.8 gm/day to 71.4 +/- 19.4 mg/hr at the next highest dose (2.7 to 3.6 gm/day), with no further change with increasing dosage. Km ranged from 0.4 to 1.2 mg/l for CpuSA and from 5.5 to 17.2 for total CpSA. Renal clearance of SUA (ClSUA) ranged from 124 to 893 ml/min and correlated with creatinine clearance. ClGA ranged from 23 to 164 ml/min, and ClSA ranged from 0.1 to 17.1 ml/min; neither correlated with creatinine clearance.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult

Dose and concentration dependent effect of ranitidine on procainamide disposition and renal clearance in man.

The pharmacokinetics of oral procainamide (1 g) were investigated in six healthy subjects during chronic dosing with ranitidine 150 mg twice daily, and in three of the subjects when ranitidine 750 mg was administered over 12 h. The procainamide area under the plasma concentration-time curve was significantly (PQ0.02) increased by ranitidine (27.761.5 vs 31.561.8 mg l-1 h) with a significant reduction in renal clearance (379632 vs 309630 ml/min, PQ0.02). There was no change in half-life. The N-acetylprocainamide (NAPA) area under the plasma concentration-time curve was also significantly (PQ0.02) elevated by ranitidine (8.661.2 vs 9.761.3 mg 1-1 h) due to a reduction in renal clearance from 187630 to 168628 ml/min. The larger dose of ranitidine produced greater alterations in the procainamide and NAPA pharmacokinetics. Ranitidine reduced the absorption of procainamide by 10% and by 24% at the higher dose level. Two-hourly renal clearance values of procainamide were significantly (PQ0.05) reduced in the 2 to 10 h period and for NAPA between 0 to 6 and 8 to 10 h. The larger ranitidine dose reduced the renal clearances of procainamide and NAPA over the control period at each 2-hourly time period. The reductions in renal clearance are most likely mediated by competition for the renal tubular cationic secretory pathway. Clinical implications arising from this study suggest a reduction in procainamide dosage may be necessary in a small, select number of patients with high plasma ranitidine concentrations, e.g., the elderly; furthermore, failure of therapeutic response for some drugs may be due to ranitidine-induced impaired gastrointestinal absorption.

Adolescent

Plasma cortisol delivery from oral cortisol and cortisone acetate: relative bioavailability.

Plasma cortisol levels were measured before and for 6 h after the intravenous injection of 50 mg cortisol as sodium succinate and oral administration of 50 mg cortisol and 50 mg cortisone acetate in 10 subjects with primary or secondary adrenal failure and in two normal volunteers. Peak cortisol levels of 1518 +/- 190 nmol 1(-1) (mean +/- s.e. mean) and 739 +/- 74 nmol 1(-1) were found 1.46 +/- 0.25 and 1.79 +/- 0.16 h after oral cortisol and cortisone acetate respectively. The relative bioavailability of oral cortisol and cortisone acetate varied widely (cortisol 26-91%, mean 54 +/- 6.9%, cortisone acetate 21-95%, mean 44 +/- 6.5%) but despite this wide variation there was, in individual subjects, a highly significant correlation between the bioavailability of the two steroids (r = 0.870, P less than 0.001). This suggests that the wide interindividual variations in plasma cortisol levels seen after oral cortisone acetate are not related to variations in bioconversion of cortisone.

Administration, Oral

Aspirin kinetics and platelet aggregation in man.

Our aims were (1) to determine the effect of six commercially available aspirin (ASA) preparations on in vitro platelet aggregation, and (2) to relate changes in platelet function to ASA kinetics. Each of six subjects took a single dose of one of the following preparations--600 mg Asproclear, 600 mg Bufferin, 600 mg Bi-prin, 600 mg compressed ASA, 650 mg Ecotrin, or 650 mg S.R.A.--in random order every 3 wk. Venous blood was drawn before and at 2, 4, 6, and 24 hr after ASA dosage to measure platelet aggregation in response to collagen and adenosine diphosphate and, at more frequent intervals, to characterize ASA kinetics. Asproclear, Bufferin, Bi-prin, and compressed ASA yielded peak plasma ASA levels of 28 to 56 mumol/l (5 to 10 mg/l) within 15 to 60 min and peak salicylic acid (SA) levels of 72 to 290 mumol/l (10 to 40 mg/l) within 2 hr. Ecotrin and S.R.A. yielded plasma SA levels of 14 to 87 mumol/l (2-12 mg/l) within 4 to 24 hr and no measurable ASA at any time after dosing. Platelet aggregation was inhibited to an equal extent by all preparations. The time course for this inhibition was the same for all preparations but Ecotrin (which led to a more delayed effect). There was significant recovery of collagen-induced platelet aggregation at 24 hr with all preparations but Ecotrin. With Ecotrin and S.R.A. there was inhibition of platelet aggregation in the absence of measurable circulating ASA. We postulate that this was due to acetylation of cyclooxygenase in the portal circulation and that inhibition of peripheral cyclooxygenase may be spared.

Adult

Therapeutic drug monitoring: a survey of sub- and supra-therapeutic serum drug levels in a large teaching hospital.

One thousand five hundred serum drug levels lying outside the defined therapeutic range have been followed up by the clinical pharmacology service at the Royal Adelaide Hospital over a thirteen month period. It was found that digoxin, phenytoin and theophylline were the most frequently monitored drugs. Blood levels outside the therapeutic range tended to be on the high side with digoxin, but were usually sub-therapeutic for the other two. Drug related toxicity was observed in 11.2 percent of those with a high serum level. Several potential drug interacting situations were also noted during the study. The value of therapeutic drug monitoring, to maximise efficacy of therapy and minimise side effects, is stressed. However, correct blood sampling, based on a knowledge of the clinical pharmacology and pharmacokinetics of the drug, must be performed in order to obtain optimal benefit from this exercise.

Carbamazepine

Plasma levels of aspirin following effervescent and enteric coated tablets, and their effect on platelet function.

Single doses of effervescent tablets (1200 mg) and enteric coated (EC) tablets (1300 mg and 650 mg) of acetylsalicylic acid (aspirin, ASA) were given to healthy volunteers in random order. Plasma ASA and salicylic acid (SA) levels were measured and concurrent in vitro measurements of the volunteers' platelet aggregation were carried out. The effervescent preparation resulted in peak ASA concentrations of 17-40 mg/l, achieved 20 to 30 min after a 1200 mg dose, whereas peak ASA levels of 0.01-0.37 mg/l were observed 4-6 h after a 650 mg dose of the EC preparation. With all the aggregating agents that were added to the test system maximum inhibition of platelet aggregation (about 50% of pre dose levels) was seen 1.0 h after the effervescent ASA dose, and persisted to at least 24 h, but with the EC preparation not until 24 h, at which time the degree of inhibition was also about 50% of pre-dose levels. A 1.0 g dose of sodium salicylate had no effect on in vitro platelet function. It was concluded that mean plasma levels of ASA of less than 0.25 mg/l are sufficient to depress aggregation by approximately 50%. A low dose of ASA taken daily either as effervescent ASA or EC ASA, significantly inhibits platelet aggregation and so may reduce the risk of ischaemic episodes in susceptible patients.

Adult

Urinary excretion of aspirin.

Six human volunteers were each given single oral doses of aspirin (ASA) ranging from 300-1,500 mg. The unchanged ASA excreted in the urine was proportional to dose and urinary pH. The mean percent (+/- s.d.) of dose excreted was 1.9 +/- 0.67. The clearance for ASA was 1.42 +/- 0.28 1/h. The rate of in vitro hydrolysis of ASA to salicylic acid in urine at 37 degrees C was 4 micrograms/min for an initial ASA concentration of 7.5 mg in 100 ml human urine.

Adult

In vivo and in vitro studies on the binding of salicylate to human plasma proteins: evidence for one type of binding site.

In vivo and in vitro binding of salicylate to plasma proteins was studied by ultrafiltration at room temperature. The nonlinearity of the Scatchard and Klotz plots were explained by the presence of lipid-soluble substances in plasma. Delipidation of plasma resulted in changes of the binding characteristics of plasma in that more moles of salicylate could be bound per mole of protein. This changed the appearances of the Scatchard and Klotz plots so that a much larger range of salicylate concentration could be accommodated by the linear portion of the graphs. The equilibrium constant for the in vitro salicylate binding was identical for the delipidated and untreated plasma. However, the in vivo binding constant for salicylate in plasma was higher than the in vitro binding constant.

Adult

Hallucinogenic drug induced vasculitis.

A case of malignant hypertension in a 20-year-old man who self-administered various hallucinogenic drugs is described. Renal angiography showed arteritic changes with aneurysms in renal vessels and focal renal cortical infarction. A dramatic response in terms of resolution of arteritis occurred with prednisone therapy. The impressive use of minoxidil and labetalol in the initial control of the hypertension is also demonstrated.

Adolescent

Single-dose pharmacokinetics of metoclopramide.

The time courses of plasma metoclopramide concentrations were followed in six subjects after oral and intravenous single dose administration. Plasma concentration-time data following i. v. administration in each subject were found to fit a two compartment model with a mean terminal half-life of 4.55 h +/- 0.80 h and a mean distribution half-time of 0.35 h +/- 0.09 h. Volumes of distribution were high (3.43 +/- 1.181 . kg-1), and clearances (0.53 +/- 0.191 . kg-1 h-1) approached liver plasma flow. This suggests that metoclopramide occurs at higher concentrations in tissues than in plasma, and that its clearance is probably limited by liver blood flow rather than liver metabolic capacity. The postabsorption decline in metoclopramide plasma levels after oral administration was also biexponential in each subject. The terminal half-life was 5.17 h +/- 0.98 h. Mean volume of distribution and mean clearance were similar to intravenous values (after adjustment for bioavailability). Oral absorption was rapid with peak plasma concentrations being reached at a mean time of 0.93 h. A mean bioavailability of 0.77 was calculated for the six subjects, and it was postulated that this incomplete availability is due to a first-pass effect. The inter-individual variation in the degree of "first-pass' was considerable (0.47--1.14).

Administration, Oral

Salicylate metabolite kinetics after several salicylates.

Single oral doses of aspirin (ASA, 1,500 mg), sodium salicylate (NaSA, 1,500 mg, 1,200 mg), and salicyluric acid (SUA, 500 mg) were given to five subjects. Serial plasma and urine samples were collected for 24 hr (plasma) and up to 48 hr (urine); salicylic acid (SA), SUA, and gentisic acid (GA) were measured by high-pressure liquid chromatography. The plasma concentration/time profiles for SUA after ASA and NaSA were fitted to the empirical equation CpSUA = A-Bt-Ce-alpha t -- (A-C)e-beta t. Michaelis constants (Vm and Km) for the conversion of SA to SUA were calculated from the equation (formula see text), where Cl is the renal clearance of SUA, ke is the rate constant of elimination of SUA, CpSA is the plasma concentration of salicylic acid. The term Cl (formula see text) is the estimated rate of formation of SUA from SA at any time (t). The calculated values (mean +/- SD) of Vm, Km, and Kmf (Km in terms of unbound SA) were 43.4 +/- 10.1 mg SA/hr, 14.3 +/- 3.4 mg SA/l plasma, and 0.75 +/- 0.15 mg unbound SA/l plasma. The Vm values were in accord with those reported, but the value for Km was considerably lower. Renal clearances of SUA and GA were 340 +/- 51 and 65 +/- 10 ml/min.

Adult