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Biomedical subjects

P Hajdú

Publications and source records attributed to P Hajdú.

14 recordsLinked to original sources

Pharmacokinetics of ramipril in the elderly.

Ramipril (HOE 498) is a pro-drug of which the main metabolite (HOE 498 diacid or ramiprilat) is a potent angiotensin converting enzyme inhibitor. Thirteen healthy white volunteers (5 females and 8 males, ages 65 to 76 years) participated in a study to investigate the pharmacokinetics of HOE 498 in the elderly. After administration of 10 mg of HOE 498, sequential urine and serum specimens were obtained for assay of HOE 498 and metabolites (HOE 498-glucuronide, diacid, diacid-glucuronide, diketopiperazine and diketopiperazine acid). Side effects, clinical chemistry and hematology were monitored. HOE 498 reached peak concentrations of 62.4 +/- 23.3 ng/ml in serum after 0.7 +/- 0.3 hours. Serum levels decreased with an apparent half-life of 0.9 +/- 0.4 hours. The diacid was rapidly formed in serum, reaching peak concentrations of 40.6 +/- 14.0 ng/ml after 2.0 +/- 0.6 hours and declining with a half-life of 2.2 +/- 0.5 hours. A prolonged terminal phase of serum concentration versus time curve was observed at concentrations less than 1 ng/ml. The mean recovery of HOE 498 and metabolites in urine, up to 26 hours after administration, was 35 +/- 14% of the dose. The apparent half-lives, calculated from urine parameters, for HOE 498 and the diacid were 2.6 +/- 0.9 and 4.0 +/- 1.1 hours, respectively. The mean peak concentration and half-life of HOE 498 in serum are slightly higher in the elderly than in younger volunteers. Complete urinary collection was not possible, but urinary recovery did not seem different from younger volunteers.

Aged

Influence of renal function on the pharmacokinetics of ramipril (HOE 498).

The pharmacokinetics of ramipril (HOE 498) were studied after oral administration of a single 10 mg dose to 24 hypertensive patients with different degrees of renal function. The creatinine clearance ranged between 4.1 and 126 ml/min/1.73 m2 and was below 35 ml/min/1.73 m2 in 16 patients. Angiotensin converting enzyme activity and the concentrations of ramipril and its active diacid metabolite ramiprilat were measured in plasma up to 10 days after drug intake. Urine levels of ramipril, ramiprilat, their glucuronides and 2 major metabolites (a diketopiperazine and a diketopiperazine acid) were measured up to 4 days after medication. The plasma concentration-time curve of ramiprilat was polyphasic with an initial steep decline after the peak level and a subsequent very long terminal phase at low concentrations. Impaired renal function resulted in higher peak levels of ramiprilat, longer times to peak and a markedly slower decline of plasma ramiprilat levels. Hence, the duration of angiotensin converting enzyme inhibition was considerably prolonged in renal failure and depended on the severity of renal impairment. The urinary excretion of ramipril and its metabolites decreased with decreasing renal function and was linearly related to the creatinine clearance, suggesting an alternative pathway of elimination. The pattern of excretion rates of ramipril and its various metabolites was not affected by renal failure. In contrast to the marked changes in the renal elimination, no relevant differences were observed in the absorption of ramipril from the gastrointestinal tract. Systolic and diastolic blood pressure decreased in all groups. The single 10 mg dose of ramipril was well tolerated.

Adult

Dose linearity and other pharmacokinetics of cefodizime after single-dose intravenous administration.

Pharmacokinetics of cefodizime, a broad-spectrum cephalosporin antibiotic, were determined after intravenous (IV) administration of single doses of 1.0, 1.5, and 2.0 gm to 12 healthy male volunteers in an open study. In a separate pilot study, data were obtained after IV administration of 0.5 gm of cefodizime to six healthy male volunteers. Determinations of cefodizime in serum and urine using a microbiological assay agreed with determinations using high-pressure liquid chromatography (HPLC), which specifically measures the unchanged drug. Active metabolites of cefodizime were not detected. After IV administration of 1.0, 1.5, and 2.0 gm of cefodizime, initial mean serum concentrations were 215, 322, and 394 mg/L, respectively (HPLC determinations). A linear response to dosage was shown (coefficient of correlation r = .89), as was the case for area under the serum concentration-time curve to infinity, AUC infinity (r = .82), and 48-hour urinary recovery of cefodizime (r = .94). In all cases, the corresponding values obtained after the 0.5-gm dose showed that the linearity extended to this dose. The kinetics of single-dose administration of cefodizime corresponded to a two-compartment open model with an apparent steady-state volume of distribution of about 40 L. Volume of distribution, terminal elimination half-life, serum and renal clearance, and percent urinary recovery were not dose dependent. Cefodizime combined a long terminal elimination half-life (mean, 2.5 hours) with a high urinary recovery (80%). After IV administration of cefodizime, urinary concentrations of the unchanged drug remained above 5 micrograms/ml for at least 24 hours after drug administration and were dose dependent. Mean values for the 1.0-gm and 2.0-gm doses were, respectively, approximately 12 mg/L and 30 mg/L, several times the minimal inhibitory concentrations (MIC90) for most clinically relevant bacteria. These results suggest that once- or twice-daily IV dosing with cefodizime (depending on the dose regimen) would be suitable for clinical use. The drug was safe and well tolerated.

Adult

Pharmacokinetics and dynamics of penbutolol in humans: evidence for pathway-specific stereoselective clearance.

The pharmacokinetics and dynamics of the D- and L-isomers of the beta-adrenergic blocking agent penbutolol were investigated in healthy human volunteers. In Study One, subjects received a single 40-mg oral dose of L-penbutolol (the pharmacologically active stereoisomer), and matching placebo on two occasions. A mean peak serum penbutolol concentration of 268 ng/ml was reached at 0.9 h after dosing. Elimination half-life averaged 1.6 h, and total clearance 16.6 ml/min per kg body weight. Changes in blood pressure, ventricular rate, and rate of circumferential fiber shortening (Vcf) did not differ between L-penbutolol and placebo. In Study Two, subjects received 40 mg D-penbutolol, L-penbutolol, and placebo on three occasions. Total clearance of D-penbutolol was higher than for the L-isomer (43.7 vs 15.9 ml/min/kg; P less than 0.01); this was reflected in correspondingly increased area under the serum concentration curve for conjugates of the oxidized metabolite 4-hydroxy penbutolol (2.25 vs 0.66 micrograms/ml X h; P less than 0.005). In contrast, direct conjugates of L-penbutolol achieved higher serum concentrations than conjugates of D-penbutolol. Alterations in blood pressure, ventricular rate, and Vcf for D-penbutolol, L-penbutolol, and placebo were quantitatively small. Thus the clearance of penbutolol after oral administration in humans is stereoselective, but the oxidative pathway is more stereosensitive than the parallel conjugative pathway. Penbutolol causes minimal alterations in parameters of cardiac function after single 40-mg doses in healthy humans.

Administration, Oral

Multiple-dose pharmacokinetics of ofloxacin, a new broad-spectrum antimicrobial agent.

Twelve healthy male volunteers received 14 oral doses of ofloxacin (300 mg each), and the concentrations of the unchanged drug were measured at various times in serum and urine over a period of 15 days. Serum and urine ofloxacin concentrations were determined in specific assays using high-pressure liquid chromatography (HPLC); urine levels were also determined by means of a microbiological assay. A washout period of 72 hours followed the first and 14th doses, allowing comparison of serum pharmacokinetics at the beginning and end of the multiple-dose regimen. Doses 2 to 14 were administered at 12-hour intervals. Maximum serum concentration (Cmax), concentration at 12 hours after dosing (C12), and area under the serum concentration-time curve (0 to 72 hours) were all 1.3 to 1.7 times greater after the 14th dose than after the initial dose. A 1.6-fold increase in C12 was already evident after the third dose; C12 remained more or less constant thereafter. Thus it is concluded that ofloxacin rapidly attained steady-state serum levels under a multiple-dose regimen, at levels only slightly above those following a single dose. High serum Cmax levels (4.6 and 5.9 micrograms/ml after the first and 14th doses, respectively) and long serum half-lives (6.0 and 7.3 hours after the first and last doses, respectively) indicated long-lasting, clinically relevant serum ofloxacin concentrations after oral administration. Serum ofloxacin levels 24 hours after the last dose were in the range of 0.3 to 0.7 microgram/ml, above the minimal inhibitory concentration (MIC90) for most bacterial strains. Cumulative urinary recovery remained high throughout the study. After 14 doses of ofloxacin (total, 4.2 gm), 88% of the unchanged drug was recovered in the urine; urinary concentrations remained above 1 microgram/ml, far above the MIC90 for most bacterial strains, for at least 108 hours after the final dose. High renal clearance values relative to total clearance (98%) confirmed the importance of the renal elimination route. Determinations of ofloxacin in urine using a microbiological assay were in close agreement with the HPLC determinations for all samples obtained throughout the study. Thus no detectable appearance of active metabolites occurred under the multiple-dose regimen. Ofloxacin was well tolerated; mild, probably drug-induced side effects were reported by three subjects, but they did not require any countermeasures.

Adult

Pharmacokinetics of pheniramine (Avil) and metabolites in healthy subjects after oral and intravenous administration.

The pharmacokinetics of pheniramine and its two metabolites (N-desmethyl pheniramine and N-didesmethyl pheniramine) were determined in six healthy male subjects after intravenous (n = 3) or oral (n = 3) administration (30.5 mg of pheniramine - free base). Serum and urine levels were measured by HPLC. After i.v. administration, serum concentrations of pheniramine between 231 and 894 ng/ml were reached and after oral administration peak serum concentrations between 173 and 274 ng/ml were reached after 1-2.5 h. AUC values up to 72 h were 3035-4662 (i.v.) and 3507-5768 (ng/ml X h) (oral). The terminal half-lives were estimated to range between 8 and 17 h (i.v.) and 16 and 19 h (oral). Serum levels of the N-desmethyl derivative remained very low (up to 21 ng/ml), but were still detectable after 72 h. Serum levels of the N-didesmethyl derivative were below the detection limit. The amount of pheniramine excreted in the urine for up to 120 h varied between 5.7 and 11.6 mg and 10.2 and 13.2 mg after i.v. and oral administration respectively. Unlike the serum, considerable fractions of the drug occurred as metabolites in urine. Values were 8.1-16.4 mg (i.v.) and 7.4-13.3 mg (oral) for N-desmethyl pheniramine, 0.4-2.9 mg (i.v.) and 0.2-0.8 mg (oral) for N-didesmethyl pheniramine.

Administration, Oral

Pharmacokinetics of single and multiple doses of clobazam in humans.

1. The pharmacokinetics of clobazam and its biotransformation product N-desmethylclobazam were investigated after single and multiple doses in normal subjects. 2. The relevant physicochemical properties of clobazam were measured and are presented. Different assay methods (radiochemical, fluorimetric and gas chromatographic) were applied and the results correlated. 3. After single doses the pharmacokinetic profile of clobazam includes time to peak levels 1--4 h after dosing, peak levels increasing linearly with the logarithm of dose, and terminal half-lives of about 18 hours. At least 87% of an oral dose is absorbed, as indicated by urinary recovery of labelled material. 4. In multiple-dose studies unchanged clobazam levelled off at minimum steady-state concentrations within one week of dosing. During 28 d of medication N-desmethylclobazam accumulated to near steady-state levels about eight times higher than those of the unchanged compound. 5. No pharmacokinetic interactions were discovered between clobazam and the antidepressant nomifensine.

Anti-Anxiety Agents

Physico-chemical and anlytical studies of penbutolol.

In the present paper physico-chemical and analytical studies on penbutolol sulfate (Hoe 893d) are reported. In addition to an interpretation of ultraviolet and fluorometric spectra, data are given regarding the dissociation constant, solubility, distribution, and protein binding. The substance and its major metabolte, as well as their glucuronides, are detectable by means of a selective fluormetric method. Moreover, mention is made of the results of a human pharmacokinetic study.

Blood Proteins

High performance liquid chromatography in research of pharmacokinetics and metabolism.

High performance liquid chromatography in connection with monochromatic UV-detection has proved to be a powerful tool for separation and quantitative determination of drugs and their metabolites in body fluids. Serum samples from volunteers medicated with the psychotropic drugs fosazepam and nomifensine are analysed by this method. Separation times are less than 5 min; the detection limits are within the range of 30-50 ng/ml serum. The reliability of the method is discussed: The results are compared to those from the same serum samples obtained by measurement of total radioactivity and by quantitative mass spectrometry in order to confirm the accuracy of the method. Examples of the pharmacokinetic profile of the two drugs and their metabolites in serum are presented, based on analysis by the methods described.

Anti-Anxiety Agents

[A new fluorometric method for the determination of drugs in biological material (author's transl)].

A description is given of a new method for fluorometric determination of drugs in biological material. The assay is based on photochemical transformation of non-fluorescent compounds in fluorophors by short-wave UV light. The pharmacokinetics of the 2-[4-(4'-chlorophenoxy)-phenoxy]-propionic acid (HCG 004) serves as an example to demonstrate the usefulness of this method; reference is also made to analogously successful studies of other drugs.

Animals

[Analytical methods I].

The most frequently used methods such as spectrophotometry, fluorometry, etc., for the analysis of drugs in biological fluids are compiled. The usefulness of quantitative chromatographical procedures is also mentioned. Reliability criteria of these assays are extensively discussed and some results are compared to those found by other methods like labelling and microbiology.

Biological Assay

Dose linearity testing of intravenous cefpirome (HR 810), a novel cephalosporin derivate.

After intravenous injection of single doses of 0.25, 0.5, 1.0, 1.5 and 2.0 g of cefpirome (HR 810) to 46 healthy male volunteers in an open manner, concentrations of unchanged drug were estimated at various times in serum and urine, over 24 h and 48 h, respectively. Cefpirome concentrations were determined using both high pressure liquid chromatography (HPLC) and a microbiological assay. The measurements obtained were compared by linear distribution independent regression, and were found to be equivalent. A linear relationship between dose and AUC00 (r = 0.96) for both HPLC and microbiological assay was demonstrated for the doses tested (0.25 g to 2.0 g). The biological half-life (t1/2,beta) was determined by fitting a two-compartment open model to the data: t1/2,beta was about 2 h (HPLC, median values) and was not relevantly dose dependent. A general twice daily dosing will be recommended for the treatment of infections. Clinically relevant high concentrations of unchanged cefpirome were detected in urine already after the lowest dose (0.25 g) for about 12 h, and after the highest dose (2.0 g) for at least 24 h. General tolerance was good, only slight temporary taste disturbances immediately after injection were claimed by one volunteer after both 0.5 g and 1.0 g doses and by four volunteers receiving 2.0 g of cefpirome; however, no counter-measures were needed.

Adult

Single and multiple dose pharmacokinetics of intravenous cefpirome (HR 810), a novel cephalosporin derivative.

After intravenous injection of single doses of 1.0 g of cefpirome (HR 810) and multiple doses of 1.0 g b.i.d. for five days to the same ten healthy male volunteers in an open design, concentrations of unchanged drug were estimated at various times in serum and urine, over 24 h and 48 h, respectively. Cefpirome concentrations were determined using both high pressure liquid chromatography (HPLC) and a microbiological assay. The measurements obtained were compared by linear distribution independent regression, and were found to be equivalent, indicating no major antimicrobially active metabolites of cefpirome. Biological half-life (t1/2,beta) was determined by fitting a two-compartment open model to the data: t1/2,beta was 2 h (HPLC, median values). During the multiple dose phase of cefpirome (1.0 g b.i.d.) no accumulation of the serum levels could be detected with this dosage regimen. Urinary concentrations of unchanged cefpirome remained clearly above the minimal inhibitory concentration for Escherichia coli (0.03 mg/l) for about 36 h (microbiological assay). The general tolerance was good.

Adult