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Biomedical subjects

S Urien

Publications and source records attributed to S Urien.

At least 73 records · Page 4Linked to original sources

Comparative binding of etretinate and acitretin to plasma proteins and erythrocytes.

The interactions of etretinate and its main metabolite acitretin with human plasma proteins have been investigated in vitro by an erythrocyte partitioning technique that allows a quantitative estimation of the plasma and erythrocyte binding. Etretinate was extensively lipoprotein-bound (75% of plasma etretinate), with a binding constant for its main low density lipoprotein carrier of 40 x 10(6) M-1, accounting for 48% of the total plasma-bound drug. Acitretin was mainly albumin-bound (91% of plasma acitretin), with a binding constant of 0.7 x 10(6) M-1. The total plasma binding of both drugs was > 99% and, in blood, the fractions associated with erythrocytes were 14.5 and 8.1% of the total amount for etretinate and acitretin, respectively.

Acitretin↗

Binding of a new vinca alkaloid derivative, S12363, to human plasma proteins and platelets. Usefulness of an erythrocyte partitioning technique.

The interactions of S12363 with human plasma proteins have been investigated in vitro by an erythrocyte partitioning technique that allows a quantitative estimation of the plasma and erythrocytes binding. S12363 was 85-95% plasma-bound and 97-98% blood-bound. The main binding protein in plasma was alpha-acid glycoprotein, with a binding constant of 0.6 x 10(6) M-1, accounting for 70% of total S12363 in plasma. Owing to extensive binding to platelets (40-50% of total blood amount), S12363 was mainly distributed in the non plasma blood compartment, with blood-to-plasma concentrations ratio of 1.2-1.4. These results indicate that, in vivo, the fraction of blood S12363 available for tissue diffusion, i.e., the free drug fraction in blood, should depend on both alpha 1-acid glycoprotein concentration in plasma and blood platelet count.

Blood Platelets↗

Labelling of rat brain beta-adrenoceptors: (3H)CGP-12177 or (125I)iodocyanopindolol?

Binding of (125I)iodocyanopindolol (ICYP) and (3H)CGP-12177 to rat brain homogenates was characterized and compared. ICYP was shown to bind to both beta-adrenergic and serotonin1B (5HT1B) receptors whereas (3H)CGP-12177 only labelled the first ones. The addition of 10 microM serotonin (5HT) prevented ICYP binding to 5HT receptors and under these experimental conditions both ligands labelled a similar total number of beta-adrenoceptors in the different rat brain regions. ICYP displayed a higher affinity for cerebellar (mainly beta 2-subtype) than for cerebral cortex beta-adrenoceptors (mainly beta 1-subtype) suggesting a subtype selectivity. A multiple displacement binding approach using CGP-20712A, a beta 1-subtype ligand, as competitor revealed a 2.6 fold selectivity of ICYP for the beta 2-adrenoceptor subtype. On the other hand, (3H)CGP-12177 binds only to beta-adrenoceptors and is not subtype selective in the rat brain homogenate. Considering both its high specificity and its lack of subtype selectivity (3H)CGP-12177 seems to be a more suitable ligand than ICYP to non-selectively label beta-adrenoceptors in rat brain.

Adrenergic beta-Antagonists↗

Specific and high affinity binding of perindoprilat, but not of perindopril to blood ACE.

The bindings of perindopril and of its active metabolite perindoprilat to human serum, isolated proteins and to erythrocytes were studied by equilibrium dialysis. Within the therapeutic concentrations range, perindopril was 74% bound to serum involving a non-saturable process, NKa = 2.87. The main binders are serum albumin and alpha 1-acid glycoprotein. The serum binding of perindoprilat involved two successive steps. First, a saturable high-affinity binding (Ka: 2.8 x 10(9) M-1) occurred, involving probably the angiotensin converting enzyme (ACE). The second binding step was non-saturable with a very weak binding capacity, NKa = 0.15, quite superimposable to the HSA bound perindoprilat. Free fatty acids (FFA) did not alter the binding to HSA. The binding of both compounds to erythrocytes was low especially with perindopril, when measured in the presence of plasma. A significant correlation showed that the overall serum binding percentage of both drugs was essentially determined by HSA concentration. Serum binding was decreased in renal failure or cirrhosis, this result was principally linked to the hypoalbuminemia. Interactions with other drugs were limited to the binding of salicylate, tolbutamide and digitoxin to HSA.

Angiotensin-Converting Enzyme Inhibitors↗

pH-dependency of basic ligand binding to alpha 1-acid glycoprotein (orosomucoid).

The binding interactions of a series of basic ligands with alpha 1-acid glycoprotein (AAG) were examined as a function of pH. The binding to AAG increased with increasing pH, and the binding data were satisfactorily fitted to a model that incorporates the effect of pH and discriminates the association constants of neutral (non-protonated) and protonated forms of ligands. It was shown that ligands in the neutral form have a markedly higher affinity for AAG than the protonated forms, resulting in a concomitant decrease in the pKa of bound ligands. The u.v.-visible difference spectra generated upon binding of a representative ligand to AAG also showed that there was a contribution to the binding arising from the deprotonation of the ligand. It is suggested that all tested ligands bind similarly to AAG and that hydrophobic interactions dominate high-affinity binding to AAG.

Hydrogen-Ion Concentration↗

In vivo evidence for carrier-mediated brain uptake of a new 2-amino-2-oxazoline (COR3224) via the purine transport system in rat.

We studied the brain uptake of a new 2-amino-2-oxazolamines derivative (COR3224) in the rat by means of the rapid intracarotid injection technique described by Oldendorf. The brain uptake index (BUI) of labelled COR3224 decreased progressively from 10% to 5% when concentrations of unlabelled compound were increased. The effect of various compounds indicated that COR3224 is transported into the brain by the purine carrier. The affinity of COR3224 for this carrier (Km = 5.68 microM) was higher than that of adenine.

Animals↗

How chronically administered valproate increases chlordiazepoxide transfer through the blood-brain barrier.

Sodium valproate (VPA) is a drug widely used in the treatment of epileptics often in association with benzodiazepines. Recent animal studies have shown that the addition of valproate increases diazepam levels in the cortex and the cerebellum (Hariton et al, 1985). The aim of our study was to determine the effect of VPA on the transfer of benzodiazepines through the blood-brain barrier. They were investigated using the intracarotid injection technique in rats as described by Oldendorf (1971). Our results show that the 14C-chlordiazepoxide brain extraction is significantly higher in rats on prolonged valproate treatment than in controls. With regard to plasma protein binding effects on chlordiazepoxide transport, our data indicate that a fraction of the protein-bound chlordiazepoxide could transfer from the intracapillary space to the brain tissue space because of enhanced drug dissociation from albumin in the brain microcirculation (Kd in vitro = 74.1 microM; Kd in vivo = 793.7 microM). Two distinct mechanisms can be deduced from this study: 1) chlordiazepoxide is displaced from HSA by valproate, 2) in addition, this fatty acid could increase drug permeation through the blood brain barrier (PS/F (chlordiazepoxide) = 0.60 in controls, PS/F (chlordiazepoxide) = 0.97 in treated rats). On the contrary, the washout of the benzodiazepine from the rat brain does not seem to be modified by the addition of valproate.

Animals↗

Assessment of cyclosporine A interactions with human plasma lipoproteins in vitro and in vivo in the rat.

The interaction of cyclosporine A (cyclosporine) with human plasma lipoproteins has been investigated by combining in vitro and in vivo methods. Binding parameters were derived in vitro from an erythrocyte partitioning method, and provided reliable Ka (product of the number of binding sites by the association constant) estimates: high-density lipoprotein, 2.21 +/- 0.48; low-density lipoprotein, 1.23 +/- 0.12; and very low-density lipoprotein, 0.53 +/- 015 liters/g, showing that high-density lipoprotein was the major carrier of plasma cyclosporine. The effects of cyclosporine binding to lipoproteins were investigated in vivo by the intracarotid injection technique of Oldendorf in the rat. The brain extraction of cyclosporine was related inversely to the lipoprotein concentration in the injected solution, allowing estimation of nKa in vivo: high-density lipoprotein, 2.25 +/- 0.59; low-density lipoprotein, 0.62 +/- 0.13; and very low-density lipoprotein, 0.57 +/- 0.14 liters/g. This showed that brain uptake occurred from the free drug pool and possibly from a small part of the originally lipoprotein-bound pool of cyclosporine, at least for low-density lipoprotein-bound cyclosporine. These results allow the calculation of an index of the unbound plasma cyclosporine fraction.

Animals↗

Evidence for isoxicam binding to site I as a primary site and to site II as a secondary site of human serum albumin.

Isoxicam binding to HSA was studied using equilibrium dialysis and fluorescence methods. It was shown that this drug binds to or near site I (warfarin or azapropazone site) and to site II (the diazepam site) as a secondary site, although it is generally considered that their respective drug structural requirements are often exclusive. The binding parameters were calculated with different mathematical models; a site oriented model with or without fixing the number of binding sites as integer values and a stoichiometric model. The relevant results are in good agreement under the selected experimental conditions. The stoichiometric method indicates that no positive cooperativity occurred during the binding process but other interactions between the two sites cannot be excluded.

Anti-Inflammatory Agents, Non-Steroidal↗

Differences in the serum binding determinants of isradipine and darodipine--consequences for serum protein binding in various diseases.

1. Serum protein binding of isradipine and darodipine, and serum concentrations of alpha 1-acid glycoprotein (AAG), albumin (HSA) and non-esterified fatty acids (NEFA) were measured in three groups of patients, I: healthy subjects (n = 20); II: patients with inflammatory disorders (n = 15) and III: patients with hepatic insufficiency (n = 17). 2. AAG was increased significantly in group II patients (P less than 0.001) and decreased in group III patients (P less than 0.001); HSA was decreased significantly in group II and group III patients (P less than 0.001). 3. The free percentage of isradipine was decreased significantly in group II patients (P less than 0.05) and increased in group III patients (P less than 0.05) and multivariate analysis showed that these variations were inversely related to changes in AAG concentration. 4. The free percentage of darodipine was increased significantly in group II and III patients (P less than 0.05) due to a decrease in HSA concentration, as shown by multivariate analysis. 5. The changes in free serum percentages of isradipine and darodipine were inversely related to concomitant changes in the concentration of the serum protein for which they showed the highest affinity, AAG for isradipine and HSA for darodipine, respectively. 6. The unexplained variability in the binding data was greater when AAG was the major determinant of binding (isradipine).

Adult↗

Blood distribution of tenoxicam in humans: a particular HSA drug interaction.

Blood binding of tenoxicam was studied in vitro by equilibrium dialysis. Isolated human plasma proteins and blood cells were checked, and the distribution of the bound form was then calculated. The results showed that tenoxicam is mainly bound to HSA and that binding percentages are not different when measured in plasma (98.4%) and in an HSA solution at physiological concentration (704 microM, 98.15%). In these conditions, within the range of 1-150 microM, the tenoxicam binding percentage remained constant, evidence of a nonsaturable process. When a lower HSA concentration (10 microM) was used, the binding parameters of the tenoxicam interaction were calculated by using the same equilibrium dialysis data, by 3 methods of analysis- a stoichiometric method and site-oriented methods, fixing or not the number of HSA binding sites (n) as integer values. The best fit was observed with the first method, suggesting that two main interactions occurred. The site-oriented method gave lesser fits, the better being observed when n was not fixed. Its value, 1.77, suggest the possibility of two binding sites, one of them not preformed. The effects of known markers of site I, warfarin and apazone, of site II, diazepam and ibuprofen and of palmitic acid showed that tenoxicam is bound simultaneously to both sites I and II. The binding capacity of site I for tenoxicam is enhanced by diazepam: as this compound alone is bound to site II, this result suggests that the two HSA binding sites are not independent.

Bilirubin↗

Pipequaline transport from blood to brain and liver: role of plasma protein-bound drug.

Brain uptake of pipequaline (45319 RP) has been studied in-vivo after a single capillary transit by intracarotid injection to rats. Pipequaline is extensively bound to plasma proteins: i.e. human serum albumin (HSA), alpha-1-acid glycoprotein (AAG), lipoproteins and blood cells, mainly erythrocytes. The dialysable drug fraction as measured in-vitro by equilibrium dialysis at 37 degrees C, was inversely related to the concentration of binding component. Similarly, the brain uptake of pipequaline was inversely related to the protein concentration of the injected solution. However, the measured brain uptake of pipequaline was higher than those predicted by in-vitro measurements of dialysable drug for all proteins and erythrocytes, except HSA. These results show that a fraction of bound pipequaline as measured in-vitro is available for transport through the blood brain barrier. HSA-bound pipequaline is an exception as it is restricted to the vascular space. Pipequaline was totally cleared by the liver through a single passage.

Adult↗

In vitro studies on the blood distribution of almitrine.

Blood binding of almitrine, a highly lipophilic drug, was investigated in vitro. [3H]-Almitrine was incubated in a serum pool and isolated protein and lipoprotein fractions. The investigations were performed by using ultracentrifugation and another method which measures the uptake by proteins from glass beads coated with almitrine. Our results with ultracentrifugation show that the distribution of almitrine in serum takes place predominantly in the lipoprotein fraction (78%) and to a minor extent (22%) in the fraction of d greater than 1.20 (albumin-rich fraction). Experiments using glass beads coated with almitrine were then conducted to measure the binding of almitrine to isolated plasma proteins. The maximal uptake values (mol almitrine/mol lipoprotein) of almitrine by isolated lipoproteins decrease from VLDL (260) to LDL (20) to HDL (3) and seem to be related to the lipid content of the particles. The uptake by albumin and alpha 1-acid glycoprotein was low. The molar ratios of [almitrine]/[lipoprotein] are roughly proportional to almitrine concentrations within the therapeutic range. When almitrine was incubated in erythrocytes suspended in several dilutions of serum, almitrine partitioned less in erythrocytes as the serum protein concentration increased in the suspension.

Almitrine↗

Pharmacological profile of binedaline, a new antidepressant drug.

The interactions of binedaline (binodaline), a new antidepressant drug, and its main metabolites with neurotransmitter receptors and monoamine uptake sites were studied. In receptor binding assays, binedaline was compared to amitriptyline, imipramine, maprotiline and mianserin. Unlike these drugs binedaline did not show any significant affinity for an alpha adrenergic, muscarinic cholinergic, histamine H1 or serotonin2 (5-HT2) receptors. Binedaline and desmethylbinedaline were potent inhibitors of the uptake of norepinephrine in synaptosomes from rat cerebral cortex (Ki = 25 and 29 nM, respectively). Binedaline also inhibited 5-HT uptake with a weak affinity (Ki = 847 nM) but was inactive as an inhibitor of dopamine uptake in synaptosomes from rat striatum (Ki greater than 2 microM). No specific binding was found using [3H]binedaline. After 2 weeks of daily administration of binedaline (20 mg/kg i.p.), the number of beta adrenergic recognition sites labeled with [3H]CGP 12177 remained constant in rat forebrain, as did 5-HT2 receptors and benzodiazepine receptors. In contrast a prolonged treatment with maprotiline (20 mg/kg i.p.) increased the apparent Kd value of [3H]CGP 12177 by 43% and the apparent maximal binding value of [3H]RO 15-1788 by 20% as compared to control. Our results indicate that binedaline is comparable to a tricyclic antidepressant drug in inhibiting the norepinephrine uptake but, however, it is devoid of affinity for neurotransmitter receptors. This probably explains why this drug does not induce the classical side effects of tricyclic antidepressant drugs. These results also suggest that a reduction in beta adrenergic, 5-HT2 or benzodiazepine receptors is not always related to an antidepressant chronic treatment.

Aged↗