Search PubMed⌕ Search

Biomedical subjects

L I Harrison

Publications and source records attributed to L I Harrison.

45 records · Page 3Linked to original sources

Transport of L-4-azaleucine in Escherichia coli.

The uptake of L-4-azaleucine was examined in Escherichia coli K-12 strains to determine the systems that serve for its accumulation. L-4=Azaleucine in radio-labeled form was synthesized and resolved by the action of hog kidney N-acylamino-acid amidohydrolase (EC 3.5.1.B) on the racemic alpha-N-acetyl derivative of DL-[dimethyl-14C]4-azaleucine. L-4-Azaleucine is taken up in E. coli by energy-dependent processes that are sensitive to changes in the pH and to inhibition by leucine and the aromatic amino acids. Although a single set of kinetic parameters was obtained by kinetic experiments, other evidence indicates that transport systems for both the aromatic and the branched-chain amino acids serve for azaleucine. Azaleucine uptake in strain EO317, with a mutation leading to derepression and constitutive expression of branched-chain amino acid (LIV) transport and binding proteins, was not repressed by growth with leucine as it was in parental strain EO300. Lesions in the aromatic amino acid transport system, aroP, also led to changes in the regulation of azaleucine uptake activity when cells were grown on phenylalanine. Experiments on the specificity of azaleucine uptake and exchange experiments with leucine and phenylalanine support the hypothesis that both LIV and aroP systems transport azaleucine. The ability of external azaleucine to exchange rapidly with intracellular leucine may be an important contributor to azaleucine toxicity. We conclude from these and other studies that at least four other process may affect azaleucine sensitivity: the level of branched-chain amino acid biosynthetic enzymes; the level of leucine, isoleucine, and valine transport systems; the level of the aromatic amino acid, aroP, uptake system; and, possibly, the ability of the cell to racemize D and L amino acids. The relative importance of these processes in azaleucine sensitivity under various conditions is not known precisely.

Biological Transport, Active↗

Transdermal nitroglycerin systems: methods for comparison.

A number of transdermal nitroglycerin delivery systems are able to maintain a constant plasma level of nitroglycerin for up to 24 hours, even though the drug's elimination half-life is only a few minutes. Unfortunately, wide variations in plasma drug levels reported in studies of transdermal delivery systems can make plasma level comparisons between products inappropriate and misleading. Other measures of clinical performance include adhesive properties and patient preference. In one adhesion study, Minitran demonstrated superior adhesive properties when compared with Transderm-Nitro, Nitro-Dur II, and a medical reference tape. In patient preference studies involving several hundred patients with angina pectoris, patients consistently selected Minitran over Transderm-Nitro or Nitro-Dur II, citing patch size, shape, ease of application, comfort, better patch adhesion, and reduced instances of skin irritation.

Administration, Cutaneous↗

Performance of a new transdermal nitroglycerin adhesive patch formulation.

This two-period crossover study in 24 healthy men compared the transdermal absorption of nitroglycerin from a new 20-cm2 nitroglycerin adhesive transdermal patch applied for a single 24-hour period (q24hr) with that from one inch of 2% nitroglycerin ointment applied over a 50-cm2 area every eight hours (q8hr) during a single 24-hour period. The observed differences in pharmacokinetic parameters were expected, based on product design (q24hr vs q8hr) and surface area (20 cm2 vs 50 cm2); however, when corrected for surface area, the mean plasma AUC ratios indicated that the patch delivered about 1.5 times more drug than the ointment. The patch delivery of nitroglycerin was confirmed by patch residual results, which indicated nitroglycerin was released at a rate of 0.75 mg/cm2/24 hrs. The patch exhibited good skin adhesion throughout the 24-hour application period.

Administration, Cutaneous↗

Drug release rates from four sizes of a new transdermal nitroglycerin adhesive patch.

This study was conducted to determine the amount of nitroglycerin released from transdermal nitroglycerin patches of four different sizes: 3.3 cm2, 6.7 cm2, 13.3 cm2, and 20 cm2. Thirty healthy men received a single 24-hour application of each patch size according to a randomized, open-label, four-period crossover design. A 24-hour interval separated each treatment period. The total amount of nitroglycerin released by the four patches was proportional to size. All four patch sizes released nitroglycerin at a comparable rate. The mean overall 24-hour release rate of 0.76 mg/cm2 was similar to the release rate of 0.75 mg/cm2/24 hr observed in a previous study. Adverse experiences common to nitroglycerin administration were reported for all patch sizes, with headache, light-headedness, and nausea reported most frequently.

Administration, Cutaneous↗

Disposition of radiolabeled flumequine in rat and dog.

Single doses of 14C-flumequine (a urinary tract antibacterial) were given to rats and dogs. Unchanged drug accounted for more than 80% of the drug in plasma of rats but only 25-50% in plasma of dogs. Although only a small percentage of the dose was excreted in the urine of each species as unchanged drug, a wide differentiation in the urinary metabolite profiles was observed. No significant tissue retention was seen in rats or dogs.

Animals↗

Pharmacokinetics of digoxin in the rat.

Previous studies on the pharmacokinetics of 3H-digoxin in the rat have been based on total radioactivity in the plasma, even though the drug is extensively metabolized in this species. A comparison of total radioactivity vs. unchanged drug in rat plasma after administration of 3H-digoxin clearly showed the need to separate digoxin from its metabolites. The pharmacokinetics of digoxin were therefore examined using solvent extraction and thin-layer chromatography to isolate unchanged drug. Digoxin levels after a 1 mg/kg iv dose were measured in the plasma and urine of adult male rats in which the bile duct or the ureters had been ligated, as well as in sham-operated controls. In all cases, digoxin concentrations were best described by a two-compartment open model. Digoxin was rapidly eliminated from the plasma of controls, with a half-life of 2.5 hr, a volume of distribution of 3.6 liter/kg, and a renal clearance somewhat lower than the glomerular filtration rate. No significant change in these parameters was observed in rats with bile duct ligation. The total body clearance of 5.77 ml/min in the controls was reduced by only 10% in the bile duct-ligated rats. In animals with bilateral ureter ligation, the body clearance was reduced by 30% and the plasma half-life of digoxin was increased to 4 hr, although no significant change in the apparent volume of distribution was noted. Approximately 60% of the total body clearance was unaffected by bile duct and ureter ligations, and was assumed to be due to biotransformation. Biliary excretion was found to be important for digoxigenin bisdigitoxoside, inasmuch as rats with bile duct ligation showed elevated metabolite levels in the plasma as well as a 3-fold increase in renal excretion of the bisglycoside.

Animals↗