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T T Kararli

Publications and source records attributed to T T Kararli.

13 recordsLinked to original sources

Comparison of the gastrointestinal anatomy, physiology, and biochemistry of humans and commonly used laboratory animals.

In addition to metabolic differences, the anatomical, physiological, and biochemical differences in the gastrointestinal (G.I.) tract of the human and common laboratory animals can cause significant variation in drug absorption from the oral route. Among the physiological factors, pH, bile, pancreatic juice, and mucus and fluid volume and content can modify dissolution rates, solubility, transit times, and membrane transport of drug molecules. The microbial content of the G.I. tract can significantly affect the reductive metabolism and enterohepatic circulation of drugs and colonic delivery of formulations. The transit time of dosage forms can be significantly different between species due to different dimensions and propulsive activities of the G.I. tract. The lipid/protein composition of the enterocyte membrane along the G.I. tract can alter binding and passive, active, and carrier-mediated transport of drugs. The location and number of Peyer's patches can also be important in the absorption of large molecules and particulate matter. While small animals, rats, mice, guinea pigs, and rabbits, are most suitable for determining the mechanism of drug absorption and bioavailability values from powder or solution formulations, larger animals, dogs, pigs, and monkeys, are used to assess absorption from formulations. The understanding of physiological, anatomical, and biochemical differences between the G.I. tracts of different animal species can lead to the selection of the correct animal model to mimic the bioavailability of compounds in the human. This article reviews the anatomical, physiological, and biochemical differences between the G.I. tracts of humans and commonly used laboratory animals.

Animals↗

Solubilization and dissolution properties of a leukotriene-D4 antagonist in micellar solutions.

7-[3-(4-Acetyl-3-hydroxy-2-propylphenoxy)propoxy]-3,4-dihydro-8- propyl-2H-1-benzopyran-2-propionic acid (1) is a leukotriene-D4 antagonist that is quite insoluble in aqueous media. Increased solubilization of 1 was achieved in micellar solutions of polysorbate 80, sodium glycocholate, sodium taurocholate, lysolecithin, and sodium taurocholate plus monoolein. The intrinsic dissolution rate of 1 was measured in the presence and absence of polysorbate 80 at pH 7.0, 8.0, and 10.0. In all the micellar solutions tested, the solubility of 1 was significantly increased. The intrinsic dissolution rate of this compound was also enhanced in micellar solutions of polysorbate 80 and with increasing values of pH. However, the magnitudes of the enhancement of the intrinsic dissolution rate were much less than expected from the enhancement of aqueous solubility.

Benzopyrans↗

Rate-limiting steps in oral absorption of a leucotriene D4 antagonist in the beagle dog.

Oral administration of a leucotriene D4 antagonist drug (1) in the Beagle dog at doses of 2, 20, 100, 300, and 800 mg/kg resulted in dose-dependent bioavailability values (4-50%). To understand the dose dependence of the absorption of 1 in the dog, initial rates of absorption of 1, which were estimated from Loo-Riegelman analysis of the concentration in blood data, were analyzed in terms of dissolution and absorption rates. From the Loo-Riegelman plots, the initial rates of absorption of 1 were estimated as 8.2, 41.9, 41.1, 76.1, and 72.8 micrograms.mL-1.h-1, respectively, for the doses given earlier. These data, which indicate leveling of the initial absorption rates at high doses, were consistent with an absorption model in which the dissolution rate is the rate-controlling step in the intestinal absorption of 1 at doses less than 100 mg/kg. The powder dissolution rate of 1 in 17 mM bile salt solution was estimated as 14 and 700 micrograms.mL-1.h-1 for amounts of 1 equivalent to the amounts given to dogs at 2- and 100-mg/kg doses, respectively. After consideration of the volume of distribution and the volume of intestinal fluid in the dog, the value of the initial dissolution rate was much lower than the initial absorption rates at the 2-mg/kg dose. Oral administration of 1 at 2 mg/kg in a 3% polysorbate 80 solution enhanced both the rate and the extent of absorption of the compound. These results confirm the validity of the conclusion that the intestinal absorption of 1 is limited by dissolution rate at low doses.

Administration, Oral↗

Enhancement of nasal delivery of a renin inhibitor in the rat using emulsion formulations.

Nasal absorption of O-(N-morpholino-carbonyl-3-L-phenylaspartyl-L-leucinamide of (2S,3R,4S)-2-amino-1-cyclohexyl-3,4-dihydroxy-6-methylheptane (I), a renin inhibitor, was evaluated in two rat nasal models, one involving surgery and the other requiring no surgical intervention. Oleic acid/monoolein emulsion formulations were tested along with a control PEG 400 solution. The percent absolute bioavailability of the compound was enhanced from 3-6% (PEG 400 solution) to 15-27% when the emulsion formulations were used. The different nasal model techniques (with and without surgery) did not produce any statistical difference in the absolute bioavailability values for I. Emulsion formulations did not produce appreciable damage as assessed morphologically. It is suggested that emulsion formulations containing membrane adjuvants such as oleic acid and monoolein can be used to enhanced the nasal delivery of low-bioavailable, lipid-soluble drugs.

Administration, Intranasal↗

Oral delivery of a renin inhibitor compound using emulsion formulations.

The oral delivery of O-(N-morpholino-carbonyl-3-L-phenylaspartyl-L- leucinamide of (2S,3R,4S)-2-amino-1-cyclohexyl-3,4-dihydroxy-6-methylhetane (I), a new renin inhibitor, was studied in the in vivo rat model using emulsion formulations. The components of the emulsion formulations were chosen based on their proposed effects on membrane structure, membrane fluidity, and solute transport. The percent absolute bioavailability (%AB) of I was increased from 0.3% (water suspension) to 5.1% when long-chain unsaturated fatty acid (oleic acid, linoleic acid, etc.)- and mono- and diglyceride (monolein, dilaurin, etc.)-containing emulsion formulations were used. Considering very high first-pass liver extraction of the compound (80%), it is suggested that emulsion formulations increased the intestinal transport of the compound significantly. The solubility of I in aqueous media with and without bile salt (20 mM) was found to be low (approximately 1 micrograms/ml). Incubation in 0.01 N HCl did not affect the particle size of the emulsion. The titration of oleic acid/monoolein emulsion in a pH 6.5 medium with a mixed bile salt system indicated reduction in the particle size of the emulsion. Drug precipitation was observed above 30 mM bile salt concentrations. No drug crystals could be detected in the intestinal contents of the rats when emulsion formulations were ingested. These results suggest that in the intestine of the animals, the particle size of the emulsions is reduced in the presence of bile fluid while the drug resides primarily in the oil phase. The mechanism of enhanced transport of I from the emulsion formulations is discussed along with the possibility of cotransport for the drug and oil. Emulsion formulations can be a potential delivery form for low-bioavailable lipid-soluble drugs.

Absorption↗

Mechanism of misoprostol stabilization in hydroxypropyl methylcellulose.

The stability of misoprostol oil is significantly improved in a hydroxypropyl methylcellulose (HPMC) dispersion (1:100). In order to understand the enhanced stability of misoprostol oil in HPMC, the physical state of misoprostol oil in HPMC films was investigated using differential scanning calorimetry (DSC), dynamic mechanical analysis (DMA), and transmission IR (TIR). Further, to determine the effect of polymer structure and the mobility of both water and misoprostol on misoprostol stability, the rate of misoprostol degradation was investigated in the misoprostol/HPMC dispersion (1:100) at 55 degrees C. The water sorption isotherm of the dispersion at 55 degrees C was determined, at seven different relative humidities, ranging from zero to 81%. The DSC and DMA measurements indicated that misoprostol oil, up to 29% in dry weight, is molecularly dispersed in the glassy HPMC. The TIR studies showed no evidence of complexation between misoprostol and HPMC. Stability studies of the misoprostol/HPMC (1:100) dispersion indicated that the first-order rate constants for misoprostol degradation increased in a concave-up fashion as the water content of the dispersion increased. Below two percent water content, the rate of misoprostol degradation was found to be minimal. Overall, it is suggested that misoprostol is stabilized in the dispersion by being molecularly dispersed in HPMC. Further, the glassy state of HPMC should reduce the mobility of misoprostol and water, leading to a minimal rate of degradation for misoprostol at low moisture levels.

Calorimetry, Differential Scanning↗

Glass-rubber transitions of cellulosic polymers by dynamic mechanical analysis.

The glass-rubber transition temperatures (Tg) of several cellulosic polymers [hydroxypropyl methylcellulose (HPMC), hydroxypropyl cellulose (HPC), hydroxyethyl cellulose (HEC)] have been examined using dynamic mechanical analysis (DMA). The melting temperatures of the above polymers were examined using a hot stage melting point apparatus. The primary Tg of three different grades of HPMC (3, 6, and 15 cps) were determined to be 160, 170, and 175 degrees C, respectively. The primary Tg of the HEC film was determined as 120 degrees C. The HPC film did not indicate a primary Tg. These cellulosic polymers also displayed secondary transitions. Hot stage melting of HPMC and HPC was observed at 225 to 254 degrees C and 190 to 195 degrees C, respectively. The HEC powder did not exhibit a melting temperature, but became darker at temperatures greater than 150 degrees C.

Cellulose↗

Physical state of misoprostol in hydroxypropyl methylcellulose films.

Scanning electron (SEM) and light microscopy (LM), differential scanning calorimetry (DSC), and dynamic mechanical analysis (DMA) techniques were utilized to determine the miscibility of misoprostol and HPMC in the films with a misoprostol content from 0 to 29%, prepared using ethanol and methylene chloride/methanol (MeCl2/methanol, 50:50). Transmission infrared (TIR) analysis was used to look for evidence of any interaction between misoprostol and HPMC. The LM and SEM analysis of the ethanol cast films indicated no oil droplets. The DSC thermograms of the films showed no evidence of a -33 degrees C transition, which is characteristic of pure misoprostol. The DMA showed that the glass-rubber transition temperature (Tg) of the pure HPMC was lowered from 163 to 125-130 and 85-87 degrees C in the presence of 10 and 27-28% misoprostol. Based on these results it is suggested that misoprostol is solubilized in HPMC at concentrations up to 29%. The TIR analysis of the films showed no evidence of interaction between misoprostol and HPMC.

Alprostadil↗

Stabilization of misoprostol with hydroxypropyl methylcellulose (HPMC) against degradation by water.

The stability of misoprostol oil is significantly improved in a hydroxypropyl methylcellulose (HPMC) dispersion (1:100). In order to assess the effect of water on misoprostol stability, the rate of misoprostol degradation was investigated in the misoprostol/HPMC dispersion at 55 degrees C, along with the water sorption isotherm, under seven different relative humidity (RH) conditions ranging from 0 to 81%. The results indicated that the first-order rate constants of misoprostol degradation increased in a concave-up fashion as the water content of the dispersion increased. Below 30% relative humidity (approximately 2% water), the first-order rate constants of misoprostol degradation were found to be minimum. The results of the stability study were interpreted in terms of the changing structure of HPMC as it related to the mobility of water and misoprostol within the HPMC dispersion.

Adsorption↗

Solid-state interaction of magnesium oxide and ibuprofen to form a salt.

During formulation development work involving ibuprofen, a solid-state interaction between MgO and ibuprofen was observed. In this study the interaction of MgO and ibuprofen was investigated for 1:1 and 2:1 M mixtures of ibuprofen and MgO, which had been stored at 55 degrees C, using the differential scanning calorimetric (DSC), thermogravic analysis (TGA), and multiple internal reflectance infrared (MIR) techniques. Evidence for the reaction was the disappearance of the melting endotherm at 79 degrees C and appearance of a new endotherm at 161 degrees C after less than 1 day of storage at 55 degrees C and, also, the change in the physical appearance of the mixtures. Comparison of the DSC, TGA, and MIR data for the reacted ibuprofen and MgO mixtures and synthetic Mg(ibuprofen)2 indicated that MgO and ibuprofen react to form the Mg salt of ibuprofen. The interaction of ibuprofen and MgO was also studied at 30 and 40 degrees C, using 1:1 M mixtures. At 30 degrees C no significant interaction was observed for up to 80 days; however, at 40 degrees C a reaction was evident on day 1. NaHCO3, K2CO3 1.5H2O, CaO, and Mg(OH)2 also showed solid-state reactions with ibuprofen. MgCl2 and Al(OH)3 did not show this reaction.

Calorimetry, Differential Scanning↗

Gastrointestinal absorption of drugs.

In this paper, those subjects that are important to drug absorption in the gastrointestinal tract are reviewed. First the anatomy of the gastrointestinal system is discussed in some detail. This is followed by a general review of the some of the animal models that are used to study drug absorption. In later sections, the physiological factors that affect drug absorption (pH and bile fluid), different mechanisms of drug absorption (passive, facilitated, and active transport, peptide and macromolecule absorption, and lymphatic uptake), and adjuvants (promoters of drug absorption) are discussed.

Animals↗