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A Roda

Publications and source records attributed to A Roda.

At least 73 records · Page 4Linked to original sources

Bioavailability study of a new, sinking, enteric-coated ursodeoxycholic acid formulation.

A new enteric-coated ursodeoxycholic acid (UDCA) formulation which sinks in the stomach and releases the drug only at a pH > or = 6.5 was developed. In 12 healthy subjects we measured, using a specific enzyme immunoassay, the serum levels of UDCA after a single oral dose of 450 mg of UDCA in three different formulations; enteric coated sinking tablet, stomach-floating enteric coated hard gelatin capsule and conventional gelatin capsule. The drug was given after a meal. Results are expressed as mean +/- SD. The area under the curve [AUC, mumol l-1 (8 h)] following oral administration of enteric-coated, sinking UDCA (39.0 +/- 8.5) was significantly higher than that obtained after both conventional UDCA (30.5 +/- 4.9) and floating enteric coated UDCA (29.3 +/- 3.4). Moreover, the maximum UDCA serum concentration (Cmax) was significantly higher with the enteric coated sinking UDCA formulation when compared to the other two formulations, while the time of maximum UDCA serum concentration (tmax) occurred later. These results may be explained by the hypothesis that the sinking tablet is expelled in the latter phase of gastric emptying along with the solid content. It therefore reaches the intestine at the highest alkalization phase caused by sustained biliary and pancreatic secretions. When released, the protonated insoluble UDCA is promptly solubilized by the alkaline pH thus giving a higher UDCA concentration gradient which facilitates its passive absorption. On the other hand, the floating capsule reaches the intestine too early, still in presence of an acidic pH; and in this condition UDCA is almost insoluble and consequently may be malabsorbed.(ABSTRACT TRUNCATED AT 250 WORDS)

Administration, Oral↗

Application of a low-light imaging device and chemiluminescent substrates for quantitative detection of viral DNA in hybridization reactions.

In this quantitative dot-blot hybridization assay for detecting B19 parvovirus DNA, we used three different chemiluminescent substrates [adamantyl-1,2-dioxetane phenyl phosphates (PPD and the new PPD-Plus) and the chloro-5-substituted adamantyl-1,2-dioxetane phosphate (CSPD) plus Emerald enhancer] and a high-performance, low-intensity-light imaging luminograph apparatus. The hybridization test uses digoxigenin-labeled DNA probes, which are immunoenzymatically revealed by anti-digoxigenin Fab fragments conjugated with alkaline phosphatase. All the detection systems with the various chemiluminescent substrates gave sensitive and reproducible results for calibrators and positive or negative reference clinical samples, with high reproducibility (CV 4-17%). The signal was measured after 45 min of incubation. The luminograph apparatus could detect 10 fg of homologous DNA with the PPD-Plus substrate, whereas the detection limit with the CSPD and PPD substrates was 20 fg and 20-50 fg, respectively. Analysis of 26 samples with the three substrates showed good sensitivity and specificity for viral detection.

DNA, Viral↗

Bile acid structure and intestinal absorption in the animal model.

A close structure-activity relationship exists between the transport of bile acids (BA) in the liver and intestine; hepatic and intestinal BA transport can be evaluated and compared by using perfused liver and perfused intestine in the rabbit. The passive intestinal absorption is limited to the unconjugated BA, which occurs throughout the small bowel and colon, and is conditioned by the apical membrane lipid composition. A higher diffusion component is found in the terminal ileum compared to the jejunum, and seems to be related to the higher cholesterol-to-phospholipid ratio of the ileal brush border membranes. The active transport system is well characterized and the brush border membrane receptor, cytosolic BA binding proteins and basolateral anion exchange protein have been identified. Recently, the ileal BA transporter has been cloned from the hamster and human ileum and the main cytosolic BA binding protein was cloned from the rat ileum. In the liver, the active transport predominates on the passive diffusion both for conjugated and unconjugated BA. The maximal transport capacity in the liver is tenfold higher than in the intestine, while the Km values are of the same order of magnitude, i.e. in the millimolar range. Neither system operates at its maximum transport rate with prevalent concentrations of BA in portal blood or luminal content.

Animals↗

Acquired gallstone opacification during cholelitholytic treatment with chenodeoxyholic, ursodeoxycholic, and tauroursodeoxycholic acids.

OBJECTIVES: The appearance of gallstone opacification during oral bile acid administration indicates that stones are no longer susceptible to dissolution and represents, therefore, a definitive treatment failure. Ursodeoxycholic acid (UDCA) has been imputed to facilitate gallstone opacification; however, data regarding the comparative occurrence of gallstone opacification during UDCA and chenodeoxycholic acid (CDCA) administration are not yet available. Our objectives were to evaluate the frequency of acquired opacification in gallstone patients taking UDCA and in gallstone patients taking CDCA, to verify whether or not gallstone opacification is a peculiar side effect of UDCA treatment and, further, to evaluate gallstone opacification in gallstone patients receiving tauro-UDCA (TUDCA) to verify whether the administration of the more soluble tauroconjugate might prevent the deposition of calcium salts on the stone surface. METHODS: 106 gallstone patients on UDCA, 125 gallstone patients on CDCA, and 31 gallstone patients on TUDCA were evaluated. Before treatment, all patients had radiolucent gallstones as assessed by oral cholecystography; further cholecystographic evaluations were performed every 6 months during treatment. RESULTS: The frequency of gallstone opacification was 13.2% (14/106) in UDCA patients, 8.8% (11/125) in the CDCA patients, and 12.9% (4/31) in the TUDCA patients. The differences were not statistically significant (p = NS). Sex, stone size, dose of bile acid, and duration of treatment were not significantly related to an increased frequency of gallstone calcification in any of the treatment groups. The frequency of gallstone opacification appeared to be higher in older patients. CONCLUSIONS: 1) UDCA rich bile is not a major predisposing factor for acquired gallstone opacification; 2) the administration of TUDCA does not prevent gallstone opacification; 3) opacification could be related to the natural history of gallstone disease.

Adolescent↗

Method for removal of surface-active impurities and calcium from conjugated bile salt preparations: comparison with silicic acid chromatography.

Some commercial preparations of common natural conjugated bile salts contain impurities (e.g., amines, lipids, and calcium) that are likely to affect their physicochemical properties. A method was developed for purifying commercial preparations of sodium salts of glycine- and taurine-conjugated bile acids. The method consists of passage of a dilute aqueous solution of the sodium bile salt through three columns in sequence: graphitized carbon, a hydrophobic bonded octadecylsilane (C18) cartridge, and a calcium-chelating resin. The final solution was extracted with chloroform, and the purified bile salt was then isolated by freeze-drying, with a yield of 65-75%. Each bile salt purified by this method was compared with the corresponding bile salt purified by conventional adsorption chromatography on a silicic acid column, using a mixture of methanol and chloroform as eluant. Purity was assessed by visible spectra, by surface tension measurements (using the maximum bubble-pressure method and a Wilhelmy wire method), by chloroform extractability of impurities in the conjugated bile acid, by liposome solubilization, and by chemical analysis of the calcium content. Both purification methods removed colored and surface-active impurities, but the new method was always as or more effective than silicic acid column chromatography. Calcium ion, present in commercial bile salts in concentrations up to 16 mmol/mol bile salt, was removed completely by the three-column method, but not by silicic acid chromatography. The new method is thus a simple, rapid, and efficient procedure for purification of the sodium salts of glycine- and taurine-conjugated bile acids for physicochemical measurements, in which elimination of surface-active impurities and polyvalent cations is desired.

Bile Acids and Salts↗

Improved intestinal absorption of an enteric-coated sodium ursodeoxycholate formulation.

A new enteric-coated formulation of sodium ursodeoxycholate was prepared and administered to man. The barrier film disintegrates and releases the drug only at pH > or = 5.5. The sodium salt of glycoursodeoxycholate was also prepared and encapsulated like ursodeoxycholate. Serum levels of ursodeoxycholate and glycoursodeoxycholate were measured by specific enzyme immunoassay after oral administration of their sodium salts in an enteric-coated formulation at equimolar doses of 475 and 540 mg. The same subjects also received in separate experiments ursodeoxycholic acid, sodium ursodeoxycholate, and glycoursodeoxycholic acid in gelatin capsules. The mean area under the curve (mumol/L.hr) following administration of enteric-coated sodium ursodeoxycholate (45 +/- 8) was significantly higher than that of either ursodeoxycholic acid (26 +/- 5; P < 0.01) or sodium ursodeoxycholate (25 +/- 6; P < 0.001) administered in a conventional gelatin capsule. No differences were found when glycoursodeoxycholic acid was administered as an enteric-coated sodium salt or in acid form in gelatin capsules. Ursodeoxycholic was administered at a dose of 10 mumol/min/kg over 1 hr to bile fistula rats both intraduodenally (i.d.) and intravenously (i.v.). The experiment included administration of the sodium salt in solution and the acid as a suspension. A similar experiment was performed with glycoursodeoxycholic acid. The ratio of the amount recovered from bile in the i.d. to that in the i.v. experiment is almost 1 for the sodium salt of ursodeoxycholate in solution, while it drops to 0.55 for ursodeoxycholic acid. No differences were found between i.v. and i.d. administration when glycoursodeoxycholic acid was administered in acid form and as a soluble sodium salt.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Hepatic uptake and intestinal absorption of bile acids in the rabbit.

The existence of transporters for bile acids (BA) in liver and intestine has been well documented, but information is still needed as to their respective transport capacity. In the present investigation, we compared the hepatic and intestinal transport rates for BA, using perfused livers and intestines. The livers and intestines were separately perfused and dose-response curves (0.25-10 mM) for tauroursodeoxycholate, taurocholate and taurodeoxycholate were obtained. The intestinal and mesenteric concentration and bile acid pattern were also evaluated in six non-fasting rabbits. Taurocholic, tauroursodeoxycholic and taurodeoxycholic acid ileal absorption showed saturation kinetics in the intestine as in the liver; the maximal uptake velocity for each bile acid in the liver was tenfold higher than the respective maximal transport velocity in the intestine; the Km values obtained in the liver were of the same order of magnitude, i.e. in the millimolar range. Taurocholic, tauroursodeoxycholic and taurodeoxycholic acid transport differences in the liver paralleled those in the intestine. Although the intestine was not homogeneously filled, the bile acid concentration in the ileal content fell into the range of the Km for the three studied bile acids, while the portal blood total bile acid concentration was inferior to the observed Kms of liver uptake. Therefore, both the hepatic and intestinal systems do not operate at their maximal transport rates at the prevailing concentrations in portal blood and luminal content, and the hepatic transport occurs at its highest efficiency (below the Km values) in physiological conditions.

Animals↗

New 6-substituted bile acids: physico-chemical and biological properties of 6 alpha-methyl ursodeoxycholic acid and 6 alpha-methyl-7-epicholic acid.

New analogs of ursodeoxycholic acid and 7-epicholic acid containing a 6 alpha-methyl group were synthesized, and their physico-chemical properties were studied and compared with those of their natural analogs. The 6 alpha-methyl group slightly increases the lipophilicity and slightly lowers the critical micellar concentration with respect to the corresponding natural analogs. Simulated bile 50% enriched with 6 alpha-methyl ursodeoxycholic acid, with a total bile acid/phospholipid ratio of 10/1, demonstrated a higher cholesterol-holding capacity and a faster cholesterol gallstone dissolution rate with respect to ursodeoxycholic acid, while 6 alpha-methyl-7-epicholic acid and 7-epicholic acid were much less efficient in these processes. The 6 alpha-methyl analogs were highly stable toward 7-dehydroxylation when incubated with human stool in anaerobic conditions. Their transport, metabolism, and effect on biliary lipid secretion were evaluated both in rats and hamsters after acute intravenous and intraduodenal infusion at a dose of 10 mumol/min per kg. In both species, 6 alpha-methyl ursodeoxycholic acid is efficiently secreted in bile, with a cumulative recovery similar to that of ursodeoxycholic acid. The only metabolites of 6 alpha-methyl ursodeoxycholic acid identified were its glycine and taurine amidated forms. 6 alpha-Methyl-7-epicholic acid was efficiently secreted into bile when infused intravenously, and to a lesser extent when infused intraduodenally, in both rats and hamsters; it was secreted in bile as amidate and also as free acid. When 6 alpha-methyl ursodeoxycholic acid, 6 alpha-methyl-7-epicholic acid, ursodeoxycholic acid, and 7-epicholic acid were chronically administered to hamsters (for 3 weeks, at a dose of 50 mg/kg per day) their accumulation in gallbladder bile was, respectively, 25.1%, 4.0%, 15.2%, and 3.4% of the total bile acids. In conclusion, of the two analogs, only 6 alpha-methyl ursodeoxycholic acid shows potential as a cholesterol gallstone-dissolving agent. In this regard, its most important properties are moderate lipophilicity, good metabolic stability, and better conservation in the enterohepatic circulation, with respect to ursodeoxycholic acid.

Animals↗

Ursodeoxycholic acid administration on bile acid metabolism in patients with early stages of primary biliary cirrhosis.

Ursodeoxycholic acid has been proposed for the treatment of primary biliary cirrhosis. The aim of this study was to evaluate the effect of ursodeoxycholic acid administration on bile acid metabolism in patients with early-stage primary biliary cirrhosis. Biliary bile acid composition, primary bile acid pool sizes, synthesis, and fractional turnover rate were measured before and after four weeks of ursodeoxycholic acid administration (600 mg/day) in nine patients with biopsy-proven primary biliary cirrhosis (stages I-III). Molar percentages of chenodeoxycholic, cholic, and deoxycholic acids in bile were significantly decreased by ursodeoxycholic acid administration, while its biliary concentration increased to 34.2% at the end of the same four-week period. The cholic and chenodeoxycholic acid pools decreased, although not significantly, while the deoxycholic acid pool was reduced by 60% (from 0.7 +/- 0.12 to 0.29 +/- 0.07 mmol, P < 0.002). Primary bile acid synthesis was slightly increased, and fractional turnover rate was significantly increased. The conversion rate of cholic to deoxycholic acid was measured and found to be significantly increased (P < 0.05) after ursodeoxycholic acid administration; however, serum levels of both free and conjugated deoxycholic acid were significantly decreased (from 23.2 +/- 9.7 to 3.8 +/- 1.9 mumol/liter, P < 0.001). We conclude that in patients with primary biliary cirrhosis, ursodeoxycholic acid administration replaces endogenous bile acids in the enterohepatic circulation by increasing bile acid fractional turnover rate without significant increments of their hepatic synthesis.

Adult↗

HPLC study of the impurities present in different ursodeoxycholic acid preparations: comparative evaluation of four detectors.

The use of HPLC with different detectors has been investigated for the analysis of bile acid impurities present in four different commercially available ursodeoxycholic acid preparations. The bile acids were efficiently separated by C18 reversed-phase HPLC using methanol-water (3:2, v/v) as the mobile phase. The detectors used for bile acid detection were: UV at 200 nm refractive index (RI) and an evaporative light scattering mass detector (ELSD II). A prederivatization method with the formation of a fluorescent naphthacyl ester has also been used. GC-MS analysis of Me-TMS bile acid derivatives was included as a reference method. The four ursodeoxycholic acid samples were 98-99% pure. The main impurities present in the samples were chenodeoxycholic acid and to a lesser extent lithocholic acid. Only one sample was found to be almost 100% pure using all the detectors. Significant agreement of the data was found between RI, ELSD II detectors and the fluorescent method; the UV detector was unsuitable for use in this method. The analytical performances of the four detectors for bile acid analysis are reported and discussed. When the four-detector data were compared with the GC-MS method, reasonable agreement resulted. Discordant results were found in the quantitation of trace impurities like lithocholic acid and/or other minor bile acids present in amounts less than 0.1%.

Bile Acids and Salts↗

HPLC-fluorescence determination of bile acids in pharmaceuticals and bile after derivatization with 2-bromoacetyl-6-methoxynaphthalene.

2-Bromoacetyl-6-methoxynaphthalene was used as a pre-chromatographic fluorescent labelling reagent for the high-performance liquid chromatographic (HPLC) analysis of bile acids. The derivatization reaction was performed in an aqueous medium in the presence of tetrahexylammonium bromide by ultrasonication at 40 degrees C to give fluorescent esters which were separated by reversed-phase HPLC and detected fluorimetrically (lambda ex = 300 nm, lambda em = 460 nm). Applications to the determination of ursodeoxycholic acid (UDCA) and chenodeoxycholic acid (CDCA) in their pharmaceutical formulations are described. The method was also applied to the determination of free and conjugated bile acids in human bile samples.

Bile↗

Effect of simvastatin, ursodeoxycholic acid and simvastatin plus ursodeoxycholic acid on biliary lipid secretion and cholic acid kinetics in nonfamilial hypercholesterolemia.

It has been recently shown that the newest hypocholesterolemic agent, simvastatin, lowers the biliary cholesterol saturation index and that its association with ursodeoxycholic acid renders it more effective. To determine the mechanism by which simvastatin decreases the biliary cholesterol saturation index, we evaluated hepatic secretion rates of cholesterol, bile acids and phospholipids, and cholic acid pool size, turnover and synthesis in eight hyperlipidemic patients (five women and three men, age range = 38 to 65 yr). These assessments were conducted before treatment, after 4 wk of simvastatin (40 mg/day), after 4 wk of ursodeoxycholic acid (600 mg/day) and after a further 4 wk of a combination therapy of simvastatin (40 mg/day) plus ursodeoxycholic acid (600 mg/day). The cholesterol saturation index was significantly reduced with simvastatin (from 1.51 +/- 0.10 to 0.94 +/- 0.05, mean +/- S.E.; p less than 0.02), with ursodeoxycholic acid (from 1.51 +/- 0.10 to 0.86 +/- 0.03, mean +/- S.E.; p less than 0.02) and with the combination of simvastatin plus ursodeoxycholic acid (from 1.51 +/- 0.01 to 0.70 +/- 0.05, p less than 0.02). The cholesterol saturation index during combination therapy was significantly lower (p less than 0.02) than that reached during the use of simvastatin and ursodeoxycholic acid. Both simvastatin and ursodeoxycholic acid significantly reduced the hepatic secretion rate of cholesterol (from 130 +/- 14 mumols/hr to 81 +/- 12 mumols/hr, p less than 0.01, and 70 +/- 9 mumols/hr, p less than 0.01) without affecting bile acid and phospholipid outputs.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult↗

Effect of basic cholane derivatives on intestinal cholic acid metabolism: in vitro and in vivo activity.

A representative series of hydroxy-5 beta-cholanyl-24-amines were tested both in vitro and in vivo with respect to their activity against the intestinal bacteria responsible for bile acid metabolism. For the in vitro studies, radiolabeled [14C]cholic acid was incubated with human stools both in aerobic and anaerobic conditions in the presence of the title compounds at a dose of 10 micrograms/mL, and the biotransformation of cholic acid into radiolabeled deoxycholic acid and other metabolites was followed by TLC-radiochromatography. Of the compounds studied, 3 alpha, 12 alpha-dihydroxy-5 beta-cholan-24-N-methylamine showed the highest activity. This compound was used for the in vivo studies and was shown to inhibit the formation of endogenous secondary bile acids when chronically administered to rats at a dose of 60 micrograms/day for 15 days. The treated rats showed an increased ratio of taurocholic acid (primary bile acid) to taurodeoxycholic acid (secondary bile acid) in bile, a fact further suggesting a potent antibacterial activity of the compound toward bacteria responsible for bile acid metabolism.

Aerobiosis↗

Basic cholane derivatives. XI: Comparison between acid and basic derivatives.

A series of hydroxycholan-24-amines was synthesized; the carboxyl group of starting unconjugated bile acids was transformed into a basic moiety [-NH2, -NHCH3, -N(CH3)2, or -NHCH2C6H5] at C-24. Solubilities, acidities, partition coefficients, and critical micellar concentrations were measured and compared with those of the corresponding bile acids. Because the steroid nucleus in the amines is the same as that in the bile acids, most of the physical-chemical properties of the two compound classes were similar. The amines were more soluble than the corresponding acids; solubilities depended mainly on the number of steroid hydroxyls and, to a lesser extent, on the side chain. Amines are strong bases in water, whereas unconjugated bile acids can be classified as weak acids. N-Benzylamino derivatives have higher log P (P is partition coefficient) values, as a consequence of the bulky hydrophobic substituent; the log P values were almost the same for the amines and the bile acids and depended on the steroid hydroxyls. Amines can self-aggregate at an acidic pH and form cationic micelles; the critical micellar concentrations of amines were of the same order of magnitude as those of bile acids. The introduction of a basic function in the side chain of the cholane moiety increased the antimicrobial activity toward most gram-positive strains.

Bile Acids and Salts↗

Effect of intraduodenal administration of 23-methyl-UDCA diastereoisomers on bile flow in hamsters.

3 alpha,7 beta-Dihydroxy-23-methyl-5 beta-cholan-24-oic acid (MUDCA) and its two diastereoisomers, alpha- and beta-MUDCA, were infused intraduodenally in biliary fistula hamsters in order to evaluate the effect on bile flow and their hepatic biotransformation processes compared with the natural analog ursodeoxycholic acid (UDCA). In addition, the corresponding glycine conjugates were compared. The bile acids were administered at different doses (0.7-6 mumol/min/kg) over periods of 90 min. The results indicate that the racemic mixture exhibits a potent choleretic effect at both low and high doses, while the two individual diastereoisomers show this effect only at high doses. The presence of a C-23 methyl group in the side chain prevents hepatic amidation and alternative conjugations occur, such as glucuronidation, in order to facilitate their biliary secretion. Biotransformation of the methyl derivatives of UDCA occurred mainly by conversion to more polar glucuronide conjugates. There was little alteration to the molecule and, unlike UDCA, very little amidation occurred. These data indicate that the presence of a C-23 methyl group prevents the usual side-chain amidation common to the most naturally occurring bile acids and that glucuronidation is a requisite for efficient biliary excretion.

Acute Disease↗

Pathophysiology and pharmacotherapy of cholelithiasis.

Several factors are involved in the development of gallstone formation: formation of supersaturated bile; nucleation; formation, retention and adhesion of cholesterol crystals and eventually stone growth. The dynamics of the gallbladder may play a key role in the overall process. The pathophysiologic theory of cholesterol gallstone formation and the knowledge of their physico-chemical properties support the modern concept of gallstone therapy. Chenodeoxycholic and ursodeoxycholic have been widely used as cholesterol gallstone dissolving agents and evaluated in terms of efficacy and safety.

Bile Acids and Salts↗

Hepatic uptake and biliary secretion of bile acids in the perfused rat liver.

Hepatic uptake and biliary secretion have been evaluated in the isolated perfused rat liver for cholic, chenodeoxycholic, ursodeoxycholic acid, both free and taurine-conjugated; the physicochemical properties of the bile acids have also been calculated and related to these experimental parameters. Cholic acid disappearance rate from the perfusate was the fastest, followed by that of ursodeoxycholic and chenodeoxycholic; it was also faster for taurine-conjugated bile acids than for their respective unconjugated forms. The recovery in bile was higher for conjugated than for unconjugated bile acids, and among each class, was higher for cholic than for chenodeoxycholic and ursodeoxycholic. The hepatic uptake correlated negatively (r = -0.99) with the bile acid lipophilicity, while the biliary secretion correlated with the solubility of the molecules. These results show the effect of the physicochemical properties of BA on their hepatic handling, at the physiological concentration of BA in the portal blood.

Animals↗