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Plasma clearance and tissue distribution of radiolabeled leptin in the chicken.

Leptin is an adipose and liver tissue-derived secreted protein in chickens that has been implicated in the regulation of food intake and whole-body energy balance. In this study, the metabolic clearance and tissue uptake of leptin were examined in the chicken (Gallus gallus). Four-week-old broiler males were infused with (125)I-labeled mouse leptin. Chromatography of radiolabeled leptin in plasma produced two peaks, one at 16 kDa (free leptin) and a free iodine peak. No leptin binding protein in blood was detected. Leptin was cleared with a half-life estimate of 23 min. In order to investigate the tissue distribution and uptake of radiolabeled leptin, multiple tissues were removed from infused birds at 15 and 240 min post-infusion, and trichloroacetic acid (TCA)-precipitable radioactivity was determined. The amounts of radioactivity at 15 min post-infusion in the tissues in rank order were: kidney, testis, lung, spleen, heart, liver, small and large intestine, gizzard, pancreas, bursa, leg and breast muscle, adrenals, and brain. A slightly different pattern of distribution was observed at 240 min post-infusion. We conclude from these studies that unlike mammals, no circulating leptin binding protein is present in chickens. Leptin is metabolized and cleared very rapidly from blood by the kidney.

Animals↗

Pathogenicity, transmissibility, and tissue distribution of avian pneumovirus in turkey poults.

The pathogenicity, transmissibility, tissue distribution, and persistence of avian pneumovirus (APV) in turkey poults were investigated in three experiments. In the first experiment, we inoculated 2-wk-old commercial turkey poults oculonasally with APV alone or in combination with Bordetella avium. In the dually infected group, clinical signs were more severe, the virus persisted longer, the bacteria invaded more respiratory tissues, and the birds had higher antibody titer than the group exposed to APV or B. avium alone. In the second experiment, we studied the distribution of APV in different tissues in experimentally inoculated 2-wk-old commercial turkey poults. Only samples from sinuses, tracheas, and lungs were positive for APV by both reverse transcriptase-polymerase chain reaction and virus isolation. In the third experiment, we studied the ability of APV to spread among birds in 1-wk-old commercial turkey poults inoculated oculonasally. The virus was isolated and the viral RNA was detected in the inoculated and direct contact birds. The virus was not isolated, viral RNA was not detected, and no antibodies were detected in the indirect contact birds. These birds were placed in different cages in the same room where the airflow was directed from the infected toward the uninfected indirect contact group.

Animals↗

Tissue distribution of 2-amino-3,8-dimethylimidazo[4,5-f]quinoxaline (MeIQx) in two strains of male rats.

Albino and hooded male rats were administered 14C-labeled 2-amino-3,8-dimethylimidazo[4,5-f]quinoxaline (MeIQx) by gavage. The tissue distribution was investigated by means of whole-body autoradiography and liquid scintillation counting. MeIQx was rapidly absorbed from the alimentary tract and distributed to several tissues. The major predilection sites were the liver and kidneys. The amount of radioactivity decreased dramatically within a few days. However, unextractable radioactive material was still detectable in these organs 6 days after the administration.

Animals↗

Effect of parenterally administered ethanol on the tissue distribution of phencyclidine following percutaneous absorption.

At 1, 2, 3, and 4 hr after percutaneous absorption of phencyclidine hydrochloride in the hairless mouse, concentrations of the drug in blood, brain, liver, lung, and heart were much lower in mice that had been pretreated with hypertonic ethanol by intraperitoneal injection than in control mice pretreated with water. These findings are consistent with the hypothesis that hypertonic ethanol inhibits the percutaneous absorption of phencyclidine. The relative pattern of tissue distribution of phencyclidine, however, appeared to be essentially the same for both groups. It appears that the magnitude of percutaneous absorption of phencyclidine does not alter its relative tissue distribution.

Animals↗

CPI-0004Na, a new extracellularly tumor-activated prodrug of doxorubicin: in vivo toxicity, activity, and tissue distribution confirm tumor cell selectivity.

The search for cancer therapies that are more selective for tumor cells and spare normal sensitive cells has been very active for at least 20 years. The extracellularly tumor-activated peptidic prodrug of doxorubicin (Dox) CPI-0004Na (N-succinyl-beta-alanyl-L-leucyl-L-alanyl-L-leucyl-Dox) is potentially such a treatment. Here, we report the results of lethality studies performed with this compound in the mouse, showing that it is up to 4.6 times less toxic than Dox.HCl by the i.v. route and up to 16.2 times after i.p. administration. Pharmacokinetics and tissue distribution data indicate that this reduced toxicity is attributable to a lower uptake of Dox in normal tissues after treatment with CPI-0004Na than after the administration of an equimolar dose of Dox.HCl. For example, heart exposure to Dox is reduced >10-fold. Because of this reduced toxicity, higher doses of CPI-0004Na than of the parent drug could be used to treat nude mice bearing s.c. human breast (MCF-7/6) and colon (LS-174-T and CXF-280/10) tumors. In all three models, the prodrug showed a much improved efficacy as compared with Dox.HCl. Particularly, LS-174-T tumors that do not respond to Dox were inhibited by 68% after treatment with CPI-0004Na. Tissue distribution studies performed with MCF-7/6 tumor-bearing nude mice and comparing CPI-0004Na and Dox.HCl confirmed that the improved activity of the prodrug is actually the result of selective generation and uptake of Dox at the tumor site. Dox levels in tumor tissue were 2-fold higher after treatment with CPI-0004Na than after treatment with an equimolar dose of Dox.HCl, whereas normal tissue levels were reduced 1.4-29-fold.

Animals↗

Mechanism of the tissue distribution and biliary excretion of the cyclic peptide octreotide.

The hepatobiliary transport and tissue distribution of the cationic cyclooctapeptide octreotide were studies at steady state after its infusion, at various rates, in rats. After an increase in steady-state plasma concentration, marked decrease in the tissue to plasma concentration ratio was observed only in pancreas, the target organ of octreotide. A marked decrease in the biliary excretion clearance, defined with respect to the concentration in the liver, was also observed, suggesting that a transport carrier was involved in the biliary excretion. The plasma elimination and biliary excretion profiles of octreotide were determined in Eisai hyperbilirubinemic rats (EHBR), which have an hereditary defect of the active transport carrier for organic anions in bile canalicular membranes. Although biliary excretion of octreotide was significantly reduced in EHBR, compared with normal Sprague-Dawley rats, no difference was observed in biliary excretion clearance, defined with respect to the concentration in the liver, between Sprague-Dawley rats and EHBR. On the other hand, the liver to plasma concentration ratio in EHBR fell to half that in Sprague-Dawley rats. These results suggest that the decreased biliary excretion of octreotide in EHBR is due not to reduced biliary excretion ability but to reduced hepatic uptake of octreotide. We studied in vitro transport using bile canalicular membrane vesicles. A significant increase in the transport of octreotide by bile canalicular membrane vesicles was observed in the presence of ATP, and the estimated kinetic parameters K(m) and Vmax were 6.5 microM and 370 pmol/min/mg of protein, respectively. Similar ATP-dependent uptake was observed in bile canalicular membrane vesicles prepared from EHBR. We concluded that the biliary excretion of octreotide is by ATP-dependent primary active transport and that the carrier system for octreotide differs from the so-called "canalicular multispecific organic anion transporter," which is absent in EHBR.

Animals↗

Pharmacokinetics, biliary excretion, and tissue distribution of novel anti-HIV agents, cosalane and dihydrocosalane, in Sprague-Dawley rats.

Cosalane and dihydrocosalane are potent inhibitors of HIV replication with a broad range of activity. The purpose of this study was to investigate: 1) the pharmacokinetic disposition of both cosalane and dihydrocosalane in male Sprague-Dawley rats, and 2) biliary excretion, enterohepatic circulation, and tissue distribution of cosalane after i.v. and/or oral administration. Animals were administered i.v. (10 mg/kg) cosalane or dihydrocosalane through a jugular vein to obtain plasma profiles. Dose dependence of cosalane was studied over a dose range of 1.0 to 10 mg/kg. The extent of enterohepatic recycling, biliary excretion, and tissue distribution were studied after i.v. administration. Both cosalane and dihydrocosalane exhibited a biexponential disposition with very long half-lives of 749 +/- 216 and 1016 +/- 407 min, along with very large volumes of distribution 23.1 +/- 4.4 and 24.4 +/- 2. 5 liter/kg, respectively. Both cosalane (nondetectable) and dihydrocosalane (<1%) showed very poor oral bioavailability. The biliary and renal excretions of cosalane were found to be negligible with no detectable metabolites either in urine or bile. After oral administration, more than 87% of the cosalane dose was excreted in the feces as the parent compound. Also, cosalane was sequestered significantly in liver with quantifiable levels in all tissues tested, even 48 h after the dose was administered. Therefore it was concluded that the poor oral bioavailability of cosalane may be due to its poor enterocytic transport coupled with sequestration in liver parenchymal cell membrane layers.

Administration, Oral↗

Tissue distribution of dirithromycin: comparison with erythromycin.

In order to ensure effective in-vivo activity, high antibiotic concentrations need to be achieved rapidly at the site of the infection and effective post-dosage concentrations should be maintained. Dirithromycin, a new macrolide antibiotic, is converted in vivo to erythromycylamine, which has antimicrobial activity similar to that of the parent compound and a half-life of 20-50 h which allows for once-daily dosing. Both dirithromycin and erythromycylamine are released slowly from the tissue compartment and the major route of elimination is hepatic/faecal: approximately 10% of an oral dose is absorbed and rapidly leaves the circulation to localize in tissues. Dirithromycin and erythromycylamine achieve lung parenchyma concentrations of 1.58-3.81 mg/kg depending on the number of doses administered. Tissue concentrations are significantly higher than simultaneous serum concentrations. Studies in both healthy and pathological lung tissues have shown that significant antibiotic concentrations remain in the tissue 12 and 24 h post-dose. The presence of an inflammatory exudate, especially the phagocytic component, probably contributes to the increased local concentration of dirithromycin found in pathological tissues. The ability of macrolides to concentrate within phagocytes and alveolar macrophages accounts for the observed high lung tissue concentrations of dirithromycin. Dirithromycin also effectively penetrates bronchial secretions: concentrations of 1.04 mg/L 3 h and 1.3 +/- 1.5 mg/L 12 h after a single 250 mg dose. Following a single dose of 500 mg dirithromycin, bronchial mucosa concentrations of > 1.0 mg/kg were detected at 4-24 h post-dose; after multiple doses, concentrations increased to 1.30 mg/kg at 12 h post-dose. Single and multiple 500 mg doses resulted in mean nasal mucosa concentrations of 0.59 +/- 0.17 and 1.86 +/- 0.54 mg/kg (multiple dose) at 24 and 12 h, respectively. Administration of single oral doses of 500 mg 12 or 24 h before tonsillectomy resulted in 24 h post-dosing tonsillar concentrations of 0.60 +/- 0.55 mg/kg (56% of the 12 h concentrations) while doses of 1000 mg/day for two days, resulted in tonsillar antibiotic concentrations of 1.37 +/- 0.55 mg/kg which were maintained for 24 h after the last dose. Dirithromycin also penetrates prostatic tissue with concentrations of 4.1-6.5 mg/kg achieved 15-17 h after the second of two 500 mg doses. In conclusion, dirithromycin exhibits good tissue distribution within selected tissues, is rapidly distributed and persists in significant concentrations up to 24 h post-dose. These studies suggest that dirithromycin has an extremely large volume of distribution.

Anti-Bacterial Agents↗

Rat pregnane X receptor: molecular cloning, tissue distribution, and xenobiotic regulation.

An orphan nuclear receptor, termed the pregnane X receptor (PXR), has recently been cloned from mouse and human and defines a novel steroid signaling pathway (Cell 92, 73-82, 1998; Proc. Natl. Acad. Sci. USA 95, 12208-122313, 1998). Transient cotransfection experiments demonstrate that the PXR responds to structurally dissimilar compounds and confers the induction of cytochrome P4503A (CYP3A), a subfamily of enzymes that involve the metabolism of two-thirds of drugs and other xenobiotics. In this report, we describe the molecular cloning, tissue distribution, and xenobiotic regulation of a rat PXR designated rPXR-1. rPXR-1 exhibits a 95% sequence identity with the mouse PXR, but only 79% identity with the human PXR, providing the molecular basis that rats and mice have a similar CYP3A induction profile but differ from humans. rPXR-1 gene was expressed abundantly in liver, intestine, and, to a lesser extent, kidney, lung, and stomach. The tissue distribution and the relative abundance of rPXR-1 mRNA among these tissues resemble those of CYP3A, suggesting that PXR is important not only for induction but also for constitutive expression of these enzymes. Xenobiotics known to induce liver microsomal enzymes showed differential effects on the rPXR-1 expression as determined by Northern blot analysis. Dexamethasone, for example, increased the accumulation of rPXR-1 mRNA, whereas troleandomycin slightly suppressed it. Compounds that increase PXR expression (inducers) and compounds that interact with PXR (ligands) likely have synergistic effects on CYP3A induction, which provides a novel molecular explanation for drug-drug interactions.

Amino Acid Sequence↗

Pharmacokinetics of ethylene glycol. II. Tissue distribution, dose-dependent elimination, and identification of urinary metabolites following single intravenous, peroral or percutaneous doses in female Sprague-Dawley rats and CD-1 mice.

1. [1,2]-14C-Ethylene glycol (EG) was given to female CD (Sprague-Dawley) rats and CD-1 mice in order to determine tissue distribution and metabolic fate after intravenous (iv), peroral (po), and percutaneous (pc) doses. Rats were given doses of 10 or 1000 mg/kg by each route, and additional pc doses of 400, 600 or 800 mg/kg. Mice were also given iv and po doses of 10 or 1000 mg/kg, and intermediate po doses of 100, 200 or 400 mg/kg. Mice were given po doses of 100 or 1000 mg/kg, and both species were given a 50% (w/w) aqueous po dose to simulate antifreeze exposure. 2. For both species, EG is very rapidly and almost completely adsorbed after po doses. Perorally administered EG doses produced similar dose-dependent relationships described in prior studies for the disposition and excretion of iv doses. 3. The tissue distribution of EG following either iv or po routes was essentially the same, with similar percentages recovered for each dose by both routes and for either species. 4. Cutaneously-applied EG was slowly and rather poorly adsorbed in both species, in comparison with po-dose administration, and urinalysis after undiluted po doses indicated that EG probably penetrates rat skin in the parent form. There was an absence in both species of dose-dependent changes in disposition and elimination following the pc application of EG. 5. 14C-labelled EG, glycolic acid and/or oxalic acid accounted for the majority of the detectable radioactivity in the urine samples from all dose routes in the rat, while glycoaldehyde and glyoxylic acid were not detected in any of the urine fractions evaluated. Similar increases in glycolate production with increasing dose were also observed in mouse urine samples from iv and po dosing. Also, glyoxylate and oxalate were absent from mouse urine. 6. Oxidative metabolic pathways appeared to be saturated at high po doses in both species, resulting in a shift from principally 14CO2 exhalation to urinary 14C excretion, while the onset of capacity-limited metabolic changes appears to occur at lower doses for mice than for rats. 7. In summary, rats and mice displayed several similarities in the manner in which low doses of EG by several routes are distributed, metabolized, and excreted, but the onset of capacity-limited changes in metabolism occurs at lower doses for mice than for rats. Such differences in the disposition of EG may provide important interpretive information to help explain differences observed in developmental toxicity and nephrotoxic responses between these two rodent species.

Administration, Oral↗

Assessing the plasma pharmacokinetics, tissue distribution, excretion and effects on cholesterol pharmacokinetics of a novel hydrophilic compound, FM-VP4, following administration to rats.

PURPOSE: The purpose of this project was to 1) assess the disposition kinetics of [3H]-cholesterol following co-administration with a novel hydrophilic compound, FM-VP4, and 2) determine the pharmacokinetics, tissue distribution and excretion of [3H]FM-VP4 following single oral (150 mg/kg which includes 100 mCi of radiolabel) and intravenous (15 mg/kg which includes 10 mCi of radiolabel) doses. METHODS: Following an overnight fast (12-16 h) and 48 h post-surgery, adult male Sprague Dawley rats were divided into six treatment groups (n=4/group). Groups received single oral doses of 25 mCi/ml [3H]cholesterol alone or with 5, 10, 20, 50 and 100 mg/kg FM-VP4 at 0700 h. Ten percent Intralipid was used to solubilize and co-administer [3H]-cholesterol and FM-VP4. LC-MS analysis confirmed minimal cholesterol and vegetable stanol content within 10% Intralipid. Thin layer chromatography was used to confirm that the majority of radioactivity measured in plasma was associated with either esterified or unesterified cholesterol. In a second study pharmacokinetics of [3H]FM-VP4 were studied following intravenous or orally gavaged doses (n=8). Tissues, urine and feces were also collected in FM-VP4 kinetics study to measure tissue distribution of radioactivity. Plasma [3H]-cholesterol and [3H]FM-VP4 were tested for radioactivity. RESULTS: FM-VP4 co-administration significantly decreased [3H]-cholesterol AUC0-48h and Cmax, and increased CL/F and Vd/F of [3H]-cholesterol as compared to controls in a dose-dependent manner. Following oral administration of [3H]FM-VP4, the majority of radioactivity following was recovered in the feces and gastrointestinal (GI) tract. The compound exhibited an oral bioavailability of 6.5%. Following IV administration, a two-compartment pharmacokinetic model was observed and the majority of the radioactivity was recovered in the GI tract. CONCLUSIONS: FM-VP4 reduces plasma concentration of [3H]-cholesterol in fasting rats. [3H]FM-VP4 has a very low oral bioavailability.

Administration, Oral↗

Plasma transport and tissue distribution of [14C] beta-carotene and [3H]retinol administered orally to pigs.

The absorption, plasma transport, and tissue distribution of beta-carotene and vitamin A were studied in pigs after the oral administration of radiolabeled beta-carotene and retinol. Plasma radioactivity as well as retinol and beta-carotene were measured over a 24-h period, after which the pigs were killed. Plasma radioactivity increased within 4 h and 5 h for beta-carotene and retinol, respectively. The administration of radiolabeled retinol resulted in highest levels in the liver (83016 +/- 17614 dpm/g of tissue), followed by the kidney (5598 +/- 1309 dpm/g), the duodenum (2783 +/- 300 dpm/g), the colon (835 +/- 117 dpm/g), and the lung (756 +/- 68 dpm/g). Twenty-four hours after beta-carotene administration, tissue radioactivity distribution showed highest accumulation in the lung (22772 +/- 11997 dpm/g) and the liver (2328 +/- 694 dpm/g). The identification of the radioactive component 14C in the lung and colon indicated that the radioactivity was associated with beta-carotene only. This indicates that pigs may absorb intact beta-carotene. In other tissues such as liver, kidney, and intestine, only retinol-associated radioactivity was found after saponification of retinyl esters. The physiological importance of the unique accumulation of beta-carotene in lung tissue remains speculative.

Administration, Oral↗

Tissue distribution of gentamicin in lambs: effect of postnatal age and acute hypoxemia.

Gentamicin tissue distribution and uptake were studied in chronically catheterized lambs in relation to their possible role in postnatal age- and hypoxemia-related effects on serum gentamicin concentration. Gentamicin serum concentration (SGent) was proportional to dose and was paralleled by gentamicin delivery to specific organ tissues (DGent) and tissue gentamicin content (TGent). SGent per dose was higher in older lambs (2-5 weeks of age) and in hypoxemic (pO2 36 +/- 7 Torr) lambs. DGent to liver, heart and adrenal tissues per unit dose was increased in response to hypoxemia. TGent paralleled SGent under these conditions. Hypoxemia- and age-related effects on SGent were not explained by differences in TGent in these lambs.

Aging↗

Tissue distribution and chemical induction of multiple drug resistance genes in rats.

Multiple drug resistance (mdr) genes encode P-glycoprotein, which is responsible for resistance to some cancer chemotherapeutic drugs and efflux of xenobiotics of cells. Thus, mdr can protect organs from xenobiotics. In rats, there are two mdr1 genes capable of xenobiotic transport, mdr1a and mdr1b. The purpose of this study was to determine the tissue distribution of rat mdr1a and mdr1b mRNA and whether microsomal enzyme inducers that increase phase I and II drug-metabolizing enzymes coordinately regulate mdr1a and/or mdr1b. The mRNA levels of mdr1a and mdr1b were determined using branched-DNA signal amplification technology. The highest level of expression of mdr1a mRNA was observed in the gastrointestinal tract, with levels increasing, respectively, from duodenum, jejunum, and ileum to large intestine. Expression levels of mdr1a mRNA in the cerebral cortex, cerebellum, kidney, lung, and liver were less than one-tenth of that in the ileum. The tissue distribution of mdr1b mRNA was similar to mdr1a with highest expression in the gastrointestinal tract but only about 3-fold higher than in most other tissues. The induction of mdr1a and mdr1b mRNA transcripts in liver, kidney, and ileum by treatment of rats with 18 chemicals representing aryl hydrocarbon receptor ligands, constitutive androstane receptor ligands, pregnane X receptor ligands, peroxisome proliferator-activated receptor ligands, electrophile-response-element activators, and CYP4502E1 inducers was assessed. Hepatic, renal, and intestinal expression of mdr1a and mdr1b mRNA were not significantly altered by treatment of rats with any of these classes of ligands. In conclusion, the primary expression of rat mdr1 genes is in the gastrointestinal tract where they are thought to function to decrease the absorption of some xenobiotics. Rat mdr1 gene expression is not readily increased by microsomal enzyme inducers in rats through coordinate mechanisms with phase I and II drug-metabolizing enzymes.

ATP Binding Cassette Transporter, Subfamily B↗

Tissue distribution and biotransformation of potassium oxonate after oral administration of a novel antitumor agent (drug combination of tegafur, 5-chloro-2,4-dihydroxypyridine, and potassium oxonate) to rats.

S-1, a new oral 5-fluorouracil (5-FU)-derivative antitumor agent, is composed of tegafur, 5-chloro-2,4-dihydropyridine, and potassium oxonate (Oxo). Oxo, which inhibits the phosphorylation of 5-FU, is added to reduce the gastrointestinal (GI) toxicity of the agent. In this study, we investigated the tissue distribution and the metabolic fate of Oxo in rats after oral administration of S-1. Oxo was mainly distributed to the intracellular sites of the small intestines in a much higher concentration than 5-FU, but little distributed to other tissues, including tumorous ones in which 5-FU was observed after oral administration of S-1. Plasma concentration-time profiles of Oxo and its metabolites after i.v. and oral administration of S-1 revealed that Oxo was mainly converted to cyanuric acid in the GI tract. Furthermore, the analysis of drug-related radioactivity in GI contents and in vitro studies suggested that Oxo was converted to cyanuric acid by two routes, the first being direct conversion by the gut flora in the cecum, and the second, conversion by xanthine oxidase or perhaps by aldehyde oxidase after degradation to 5-azauracil (5-AZU) by the gastric acid. These results indicate that, although a part of the administered Oxo was degraded in the GI tract, Oxo was mainly distributed to the intracellular sites of the small intestines in a much higher concentration than 5-FU and that little was distributed to other tissues, including tumors. We conclude that this is the reason why Oxo suppresses the GI toxicity of 5-FU without affecting its antitumor activity.

Administration, Oral↗

Pharmacokinetic interaction of paeoniflorin and sinomenine: pharmacokinetic parameters and tissue distribution characteristics in rats and protein binding ability in vitro.

The root of Paeonia lactiflora and the stem of Sinomenium acutum are two herbs widely used in Chinese herbal medicine for the treatment of inflammatory and arthritic diseases. Studies on the interaction of the active constituents of these herbs, i.e., paeoniflorin and sinomenine, in pharmacokinetic parameters, tissues distribution, and protein binding ability could provide empirical data to support their clinical application. Following oral administration to rats, the pharmacokinetic alterations were compared. The results showed that the pharmacokinetic parameters (Cmax, Tmax, AUC, MRT, C(L), and Vd) of paeoniflorin were markedly enhanced when co-administrated with sinomenine. At 45 min after oral administration, the concentrations of paeoniflorin in the main internal organs were significantly increased when co-administrated with sinomenine. These phenomena were not ascribable to the alteration of the protein binding ability of paeoniflorin by sinomenine because obvious interactions of paeoniflorin and sinomenine in protein binding abilities in vitro to rat and rabbit plasma, human albumin, and alpha-1-acid-glycoprotein were not observed. However, with respect to the in vivo influence of paeoniflorin on sinomenine, the results showed that co-administration of paeoniflorin did not affect the pharmacokinetic parameters and tissue distribution of sinomenine.

Animals↗

Investigations on the role of hemopexin and albumin in plasma clearance and tissue distribution of Sn-protoporphyrin.

The mechanism of the clearance of circulating tin-protoporphyrin (Sn-PP), a competitive inhibitor of heme oxygenase in the degradation of heme to bilirubin, is unknown. Two serum proteins, albumin and hemopexin, which are instrumental in the delivery of iron-protoporphyrin (heme) to the liver, also bind metalloporphyrins with high affinity and may aid in targeting their tissue distribution. After intravenous injection of 1 mumol Sn-PP/kg, the serum concentration of hemopexin decreased in human subjects, rats, and rabbits within 24 hours to a similar extent (30% to 50%). This finding suggested that hemopexin may have a role in the tissue distribution of Sn-PP. However, when rats were injected with Sn-PP in saline solution or complexed with albumin, more Sn-PP was taken up by the liver and testes than when Sn-PP was complexed with hemopexin. These results indicate that hemopexin does not preferentially target Sn-PP to the liver and may not be the preferred vehicle for clearance of circulating Sn-PP.

Albumins↗

Pharmacokinetics and tissue distribution of halofuginone (NSC 713205) in CD2F1 mice and Fischer 344 rats.

PURPOSE: Halofuginone (HF) inhibits synthesis of collagen type I and matrix metalloproteinase-2 and is being considered for clinical evaluation as an antineoplastic agent. Pharmacokinetic studies were performed in rodents to define the plasma pharmacokinetics, tissue distribution, and urinary excretion of HF after i.v. delivery and the bioavailability of HF after i.p. and oral delivery. MATERIALS AND METHODS: Studies were performed in CD2F1 mice and Fischer 344 rats. In preliminary toxicity studies in mice single HF i.v. bolus doses between 1.0 and 5.0 mg/kg were used. Pharmacokinetic studies were conducted in mice after administration of 1.5 mg/kg HF. In preliminary toxicity studies in male rats HF i.v. bolus doses between 0.75 and 4.5 mg/kg were used. In pharmacokinetic studies in rats an HF dose of 3.0 mg/kg was used. Compartmental and non-compartmental analyses were applied to the plasma concentration versus time data. Plasma, red blood cells, various organs, and urine were collected for analysis. RESULTS: HF doses > or = 1.5 mg/kg proved excessively toxic to mice. In mice, i.v. bolus delivery of 1.5 mg/kg HF produced "peak" plasma HF concentrations between 313 and 386 ng/ml, and an AUC of 19,874 ng/ml min, which corresponded to a total body clearance (CLtb) of 75 ml/min per kg. Plasma HF concentration versus time data were best fit by a two-compartment open linear model. The bioavailability of HF after i.p. and oral delivery to mice was 100% and 0%, respectively. After i.v. bolus delivery to mice, HF distributed rapidly to all tissues, except brain. HF persisted in lung, liver, kidney, spleen, and skeletal muscle longer than in plasma. In the oral study, HF was undetectable in plasma and red blood cells, but was easily detectable in kidney, liver, and lung, and persisted in those tissues for 48 h. Urinary excretion of HF accounted for 7-11% of the administered dose within the first 72 h after i.v. dosing and 15-16% and 16% of the administered dose within 24 and 48 h, respectively, after oral dosing. There were no observed metabolites of HF in mouse plasma or tissues. In rats, i.v. bolus delivery of 3.0 mg/kg produced a "peak" plasma HF concentration of 348 ng/ml, and an AUC of 43,946 ng/ml min, which corresponded to a CLtb of 68 ml/min per kg. Plasma HF concentration versus time data were best fit by a two-compartment open linear model. After i.v. bolus delivery to rats, HF distributed rapidly to all tissues, with low concentrations detectable in brain and testes. HF was detectable in some tissues for up to 48 h. HF could be detected in rat plasma after a 3 mg/kg oral dose. Peak HF concentration (34 ng/ml) occurred at 90 min, but HF concentrations were less than the lower limit of quantitation (LLQ) by 420 min. Urinary excretion of HF accounted for 8-11% of the administered dose within the first 48 h after i.v. dosing. No HF metabolites were detected in plasma, tissue, or urine. CONCLUSIONS: HF was rapidly and widely distributed to rodent tissues and was not converted to detectable metabolites. In mice, HF was 100% bioavailable when given i.p. but could not be detected in plasma after oral administration, suggesting limited oral bioavailability. However, substantial concentrations were present in liver, kidney, and lungs. HF was present in rat plasma after an oral dose, but the time course and low concentrations achieved precluded reliable estimation of bioavailability. These data may assist in designing and interpreting additional preclinical and clinical studies of HF.

Animals↗