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Biomedical subjects

J W Findlay

Publications and source records attributed to J W Findlay.

54 records · Page 3Linked to original sources

Excretion of drugs in human breast milk.

The present report briefly discusses some of the morphological, physiological, and compositional aspects of animal and human breast milk and how these characteristics might be important for the accumulation of drugs and foreign compounds. In addition, a study is described confirming the presence of caffeine, codeine, morphine, phenacetin, acetaminophen, and salicylic acid in the breast milk of a lactating mother following oral administration of a combination analgesic containing aspirin, phenacetin, caffeine, and codeine. Although the study is limited to one subject, it has provided critically needed data on the rates of appearance in, and elimination of these drugs from, breast milk. A similar amount of information is presented on phenacetin, also a component of the analgesic mixture, which has not been previously reported to enter human milk. The distribution of these drugs between the slightly more acidic breast milk and the relatively neutral plasma is consistent with their weakly basic, acidic, or relatively neutral properties. In general, the study shows that codeine and morphine milk concentrations are higher than, salicylic acid milk levels are much lower than, and phenacetin, caffeine, and acetaminophen milk concentrations are relatively similar to their respective plasma levels. It is projected, from estimated steady-state milk concentrations of the drugs and their metabolites studied, that very low percentages of the therapeutic dosages (less than 0.7%) would be excreted in mother's milk, too low an amount to be clinically significant to the infant.

Analgesics↗

Radioimmunoassay and pharmacokinetic profile of bupropion in the dog.

A radioimmunoassay (RIA) procedure for the quantification of bupropion (dl-2-tert-butylamino-3'-chloropropiophenone) in biological fluids is described. Immunization of rabbits with conjugates of bovine serum albumin and p-succinoyl propylbupropion or p-carbomethoxybupropion resulted in the production of antisera which are capable of detecting less than 1 ng ml-1 (100 pg actual mass) of bupropion in the RIA, utilizing [6-3H] bupropion as radioligand. The antisera used in these studies have low cross-reaction (approximately 0.1% or less) with known side chain metabolites of bupropion, but exhibit significant cross-reaction with p-hydroxybupropion (30.3%). Excellent agreement was obtained between RIA and high-pressure liquid chromatography determinations of bupropion concentrations in human plasma samples, but plasma or serum from bupropion-treated dogs, rats and mice required extraction from basic medium to remove some interference before RIA. The assay was applied to a study of bupropion disposition in two beagles of each sex after i.v. and p.o. administrations of bupropion hydrochloride (100 mg). The pharmacokinetic profile in dogs was best described by an open two-compartment model after either route of drug administration. Peak plasma bupropion levels after oral dosing were highly variable, ranging from 12.9 to 63.5 ng ml-1 at 26 to 32 min after drug administration. The mean terminal phase half-life of bupropion was calculated to be 1.73 hr after either route and the absolute oral bioavailability of the drug varied from 2.0 to 6.5%.

Animals↗

Relationships between immunogen structure and antisera specificity in the narcotic alkaloid series.

We report the production and comparative specificities of antisera raised to different immunogens containing codeine, morphine, and oxycodone. Antisera raised to bovine serum albumin (BSA) conjugates of codeine-6-hemisuccinate, ethylmorphine-6-hemisuccinate, or oxycodone-6-carboxymethyloxime had greatest recognition of structural changes around the piperidine ring nitrogen atom and th 14-position. N-carboxypropylnormorphine-BSA, N-carboxypropylnorcodeine-BSA, and norcodeine-BSA (directly coupled) conjugates elicited antisera that recognized structural changes at the 3- and 6-positions best, but also clearly discerned changes in the 14-substituent. Attachment of codeine to BSA via the 8-position gave a conjugate that elicited antisera with specificity characteristics similar to those of the antiserum to N-carboxypropylnorcodeine-BSA. Thus clear relationships existed between immunogen structure and antiserum specificity. The utility of these antisera was illustrated by the application of antiserum to codeine-6-hemisuccinate-BSA and solvent extraction to a study of codeine disposition in the dog. The specific antisera of N-carboxypropylnormorphine-BSA and to norcodeine-BSA were applied directly to an examination of the distribution of codeine and metabolically produced morphine in the milk and plasma of a nursing mother.

Adult↗

Plasma codeine and morphine concentrations after therapeutic oral doses of codeine-containing analgesics.

Plasma concentrations of codeine and morphine were determined by specific radioimmunoassays in healthy human subjects at various times following oral administration of analgesic preparations containing therapeutic doses of codeine phosphate. Following administration of codeine phosphate (60 mg) in combination with aspirin (650 mg) or acetaminophen (600 mg) to two separate groups, mean peak codeine plasma concentrations and beta-phase elimination half-lives were 159 ng/ml and 2.9 hr or 138 ng/ml and 2.4 hr, respectively. Mean maximum concentrations of metabolically produced morphine were 6.8 ng/ml (aspirin-codeine phosphate administration) and 7.4 ng/ml (acetaminophen-codeine phosphate). Following drug administration, the mean ratio of the areas under the respective plasma concentration-time curves for morphine and codeine was 0.095 for the aspirin-codeine phosphate study and 0.12 for the acetaminophen-codeine phosphate study. Thus, free morphine represented about 10% of the free codeine area in each case. These results support the hypothesis that metabolically produced morphine may influence or be responsible for the analgesic efficacy of codeine.

Acetaminophen↗

Codeine kinetics as determined by radioimmunoassay.

Radioimmunoassay (RIA) was used to determine several pharmacokinetic parameters of codeine in man, including the relative bioavailability after oral and intramuscular administration. The study followed a crossover design in 6 healthy, young (18 to 21 yr), male volunteers. Three subjects received 65 mg codeine phosphate orally in an analgesic mixture which also contained aspirin, phenacetin, and caffeine. At the same time a similar group received an equivalent dose of codeine phosphate in a single intramuscular injection. Two weeks later the study was repeated so that each group received the alternate treatment. Plasma samples were collected at various times after drug administration, and codeine concentrations were determined by a specific RIA procedure. The procedure can detect less than 50 pg of codeine. Following intramuscular administration, peak plasma concentrations (194 to 340 ng/ml) were observed between 0.25 to 1 hr; after oral dosing, peak codeine plasma concentrations (102 to 140 ng/ml) appeared within 0.75 to 1 hr. The mean plasma t1/2 and volume of distribution of codeine following intramuscular injection were 3.32 hr and 5.1 L/kg, respectively. Oral, relative to intramuscular, bioavailability of codeine, based on areas under the codeine plasma curves, was 42% to 71% (mean, 53%).

Administration, Oral↗

Specific radioimmunoassays for codeine and morphine. Metabolism of codeine to morphine in the rat.

Specific antisera to morphine have been raised in response to immunization with a conjugate of N-carboxypropylnormorphine with bovine serum albumin (BSA). These antisera effectively distinguish changes in substituents at the 3 and 6 positions of the alkaloid, thus reducing cross-reactivity with codeine and morphine-3-glucuronide to negligible levels. The utility of these antisera has been illustrated by their application in radioimmunoassay procedures, along with similarly specific anti-codeine sera (Findlay et al., 1976) to a study of the biotransformation of codeine to morphine in the rat. After oral administration of codeine, serum levels of morphine were low, but significantly higher than codeine levels after 15 min., indicating rapid metabolism of codeine to morphine in this species.

Animals↗

Disposition of acrivastine in the male beagle dog.

Three male beagle dogs were given 10 mg/kg iv and oral doses of [14C]acrivastine, a novel nonsedating antihistaminic agent, in a nonrandomized crossover experiment. Urine and feces were collected for 72 hr after dosing. After iv dosing, a mean of 34% was recovered in the urine, and 63% was recovered in the feces. After po dosing, a mean of 29% of the radiocarbon was recovered in the urine, and 63% was recovered in the feces (dose adjusted for 14% lost in vomitus). Acrivastine and three major metabolites were detected in the excreta. The metabolites were identified as a side-chain-reduced analog of acrivastine (metabolite 3, 270C81), a gamma-aminobutyric acid analog of 270C81 (metabolite 2), and a benzoic acid analog of 270C81 (metabolite 1). After iv dosing, 34% of the dose was excreted as parent drug, 21% as metabolite 3, 15% as metabolite 2, and 6% as metabolite 1, while after po dosing, 35% of the dose was excreted as parent drug, 18% as metabolite 3, 11% as metabolite 2, and 7% as metabolite 1. Pharmacokinetic analysis of acrivastine plasma concentration-time curves after both routes of administration indicated a mean total body clearance of 17.3 ml/min/kg, a Vss of 0.93 liter/kg, a terminal half-life of 0.7 hr, and an oral bioavailability of 40%. The apparent plasma half-life of the metabolite, 270C81, was 1.5 hr. Analysis of AUC values indicated that greater amounts of 270C81 than acrivastine circulated in plasma after both iv and po dosing, and that first-pass metabolism of acrivastine to 270C81 occurred. The results indicated that acrivastine was extensively metabolized in the dog to 270C81 and suggested that 270C81 itself underwent further metabolism to metabolites 1 and 2.

Animals↗

Disposition and metabolism of triprolidine in mice.

The disposition of the antihistamine, triprolidine, was studied in male and female CD-1 mice after a single oral 50 mg/kg dose of [14C]triprolidine HCl. Urine and feces collected over 72 hr postdosing were analyzed for total radiocarbon, and for parent drug and metabolites by radiochromatography. Structures of metabolites were determined by GC/MS, direct probe MS, FAB/MS, LC/MS, NMR, and IR techniques. More than 80% of the dose was recovered in the urine, with the remainder recovered in the feces. The carboxylic acid analog of triprolidine (219C69) was found to be the major metabolite in urine and feces, accounting for an average of 57.6% of the administered dose. Three minor metabolites were identified as a gamma-aminobutyric acid analog of triprolidine, a pyrrolidinone analog of 219C69, and a pyridine-ring hydroxylated derivative of triprolidine. Parent drug could only be detected in urine and accounted for 0.3% (females) to 1.1% (males) of the dose. The results of this study showed that triprolidine was absorbed well but extensively metabolized when administered orally to mice.

Animals↗

Disposition of triprolidine in the male beagle dog.

Three male beagle dogs were given 2.5 mg/kg doses of [14C]triprolidine HCl monohydrate (2.09 mg/kg of the free base) by intravenous and oral routes, in a nonrandomized cross-over experiment. After either route of administration, approximately 75% of the dose was excreted in the urine, and the remainder was excreted in the feces. Triprolidine was extensively metabolized, with less than 1% of the parent drug recovered in the excreta after either route of administration. Three metabolites were isolated from excreta and identified, including the major metabolite (metabolite 1, 219C69), in which the toluene ring methyl group was oxidized to a carboxylic acid, a metabolite (metabolite 2) in which the pyrrolidine ring was opened with oxidation of the terminal carbon to a carboxylic acid (a gamma-aminobutyric acid), and a metabolite (metabolite 3) that was a pyrrolidinone derivative of 219C69. Other metabolites in urine and feces were present in amounts too small for quantitation or identification. Route of administration had little effect on the metabolic pattern of triprolidine. Thus, after oral administration of triprolidine, a mean of 49.1% of the dose was excreted as 219C69, 12.0% as metabolite 2, 3.4% as metabolite 3, and 0.6% as triprolidine, while after intravenous administration, a mean of 50.8% of the dose was excreted as 219C69, 11.1% as metabolite 2, 4.2% as metabolite 3, and 0.8% as triprolidine. Plasma contained triprolidine, 219C69, and metabolite 2, as well as other apparent metabolites that were present at levels too low for quantitation. Mean pharmacokinetic parameters calculated for triprolidine after intravenous dosing were: CL = 24.4 ml/min/kg, Vdss = 5.8 liters/kg, and Vc = 1.6 liters/kg.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Pharmacokinetics and O-dealkylation of morphine-3-alkyl ethers in the rat. A radioimmunoassay study.

Radioimmunoassay procedures were used to investigate the relationship between the chemical structure and disposition of morphine, codeine, ethylmorphine, t-butylmorphine, and pholcodine. Male Sprague-Dawley rats received po or iv doses of each drug equivalent to 10 mg/kg free base. Blood samples were collected at various times over the 6-hr period after each drug administration, and plasma concentrations of the parent drugs and metabolically produced morphine were determined. A single ethylmorphine antiserum was used for analysis of codeine, ethylmorphine, t-butylmorphine, and pholcodine in separate experiments, whereas a specific morphine antiserum was used in the radioimmunoassay of this compound. The absolute oral bioavailabilities of morphine, codeine, ethylmorphine, and t-butylmorphine all were below 10%, whereas that of pholcodine was over 40%. Terminal half-lives of morphine, codeine, ethylmorphine, and t-butylmorphine after iv administration all were less than 45 min, while that of pholcoline was over 2 hr. Codeine, ethylmorphine, t-butylmorphine, and pholcodine did not appear to undergo conjugation, as evidenced by the similarity between areas under the curve for total (unconjugated plus conjugated) and parent (unconjugated) drugs. Amounts of metabolically produced morphine in rats treated with codeine, ethylmorphine, t-butylmorphine, or pholcodine differed markedly. After oral administration, presystemic O-dealkylation of codeine and ethylmorphine was much greater than that of t-butylmorphine or pholcodine, presumably due to the presence of much bulkier 3-alkyl substituents in the latter compounds. Thus, the ratio of the morphine AUC to that of parent drug after po administration was 1.37 for codeine and 1.60 for ethylmorphine, but only 0.08 for t-butylmorphine and 0.01 for pholcodine.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Bioavailability of pseudoephedrine and triprolidine from combination and single-ingredient products.

The bioavailability of pseudoephedrine and triprolidine from combination and single-ingredient products was evaluated in a randomized, four-way crossover study. Healthy men volunteers received single doses of a tablet containing triprolidine hydrochloride and pseudoephedrine hydrochloride, a syrup containing the same two drugs, and single-ingredient tablets of each drug. Blood samples were collected before each dose and at 13 sampling times over 24 hours for determination of drug concentrations by radioimmunoassay. Observed peak concentration (Cmax), corresponding observed peak time (tmax), area under the plasma drug concentration-time curve from dosing to time infinity (AUC), and the ratio between plasma clearance and extent of bioavailability (CL/F) were determined. Nonlinear regression analysis was used to obtain estimates of lag time for absorption, first-order rate constant for absorption, first-order rate constant for elimination, and ratio between volume of distribution and extent of bioavailability. Data were analyzed for 19 of 20 men entering the study; data were complete for 16 of these. Pseudoephedrine concentrations were significantly different for the combination tablet and the syrup at four sampling times; no significant differences were found between pseudoephedrine concentrations for the combination tablet and single-ingredient tablet. Cmax, tmax, AUC, and CL/F for pseudoephedrine were not significantly different for the three formulations. Triprolidine concentrations at 8 hours were significantly higher for the combination tablet than for the single-ingredient tablet, and tmax for triprolidine was significantly higher for the combination tablet than for the syrup. For both pseudoephedrine and triprolidine, the combination tablet was bioequivalent to the syrup and to the single-drug tablets.

Adolescent↗

Codeine toxicokinetics in rats during a two-year dosed feed study.

Codeine toxicokinetics in F344 rats of both sexes were determined during a 2-year chronic toxicology study using dosed feed as the exposure route with a 12-hr light/dark cycle starting at 7:00 a.m. Rats were allowed to access to dosed feed formulations ad libitum with codeine concentrations at 0, 400, 800, and 1600 ppm. Blood samples were collected from individual rat on days 7, 21, and 90 at 7:00 p.m., 11:00 p.m., 3:00 a.m., and 7:00 a.m. Additional samples were collected at 16 and 24 months between 6:00-8:00 a.m. Plasma concentrations of codeine and morphine were determined directly by radioimmunoassay. Concentrations of their conjugates were determined indirectly by measuring the total amount of free codeine and morphine released after samples were treated with beta-glucuronidase. Results indicated that plasma concentrations of both codeine and morphine steadily decreased from day 7 to 16 months and then rebounded at 24 months. Results also indicated that plasma concentrations of both codeine and morphine correlated well with the amounts of codeine added to the feed. Bioavailability of codeine using the dosed feed route increased with dose, varying from 10% to 25%, which was somewhat higher than the previously reported approximately 8% bioavailability using the gavage route. Concentrations of conjugated codeine were very low, whereas concentrations of conjugated morphine were very high. These results suggested that demethylation of codeine to morphine in rats is the main metabolic pathway and was maintained over the course of the study.

Animals↗