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K F Sewing

Publications and source records attributed to K F Sewing.

At least 55 records · Page 3Linked to original sources

Characterization of CCKA receptor mediated pepsinogen secretion in porcine chief cells.

Cholecystokinin octapeptide (CCK-8s) is an endogenous stimulus of gastric pepsinogen secretion. Previous studies with isolated guinea pig chief cells indicated that this process is mediated through the CCKA receptor subtype, with an additional contribution from CCKB receptors. For comparison, we examined the mechanism of CCK-8s stimulated pepsinogen secretion in a larger nonrodent species, using highly enriched porcine chief cells as a functional in vitro model. Porcine chief cells responded weakly to stimulation by CCK-8s alone, but the efficacy was markedly enhanced in the presence of 10 mumol l-1 forskolin. Under these conditions, pepsinogen secretion was potently stimulated by CCK-8s and the CCKA receptor selective heptapeptide, A-71,378 (EC50 = 4.7 and 33 nmol l-1), but not by CCKB receptor selective agonists. The prototype CCKA receptor selective antagonist L-364,718 blocked pepsinogen secretion with approximately 2,000-fold higher affinity than the CCKB receptor selective analogue, L-365,260. This functional profile was consistent with the affinity rank order of all tested compounds at CCKA-receptor-like [125I]-BH-CCK-8s binding sites in the porcine gastric mucosa. Comparison with cloned CCKA receptors from other species revealed that the receptors mediating pepsinogen secretion in the pig have similar pharmacology, possibly with slight differences in agonist potencies. In contrast to the guinea pig, porcine CCKB receptors appear to have no direct role in pepsinogen secretion.

Animals↗

Role of protein kinase C in duodenal mucosal bicarbonate secretion in the guinea pig.

Since duodenal bicarbonate secretion (DBS) is increased by m-cholinoceptor agonists, it was postulated that protein kinase C (PKC) has a role in this secretion. This premise was examined in guinea pigs, using 12-O-tetradecanoyl-phorbol 13-acetate (TPA) to stimulate bicarbonate production in the perfused duodenum in vivo, and to activate PKC in isolated duodenal enterocytes. TPA (10(-7) mol.kg-1) infused intravenously stimulated active DBS from basal values of 3.64 +/- 0.66 to 8.73 +/- 1.59 mumol.cm-1.10 min-1. This effect was completely blocked by verapamil (4 x 10(-7) mol.kg-1). PKC activity in duodenal enterocytes in the basal state was most abundant in the cytosolic fraction (2,221 +/- 444 U/mg protein) and very low in the particulate fraction (227 +/- 51 U/mg protein). TPA (10(-7) mol.kg-1) caused a time-dependent translocation of the cytosolic, lipid-dependent activity of PKC into the particulate fraction. The effect was maximal at 5 min incubation and was reversed by 30 min. In the particulate fraction, this activity was no longer lipid-dependent, but could be stimulated by Ca2+ alone. These data support the hypothesis that translocation of PKC may contribute to DBS.

Animals↗

Sensitive and specific quantification of sirolimus (rapamycin) and its metabolites in blood of kidney graft recipients by HPLC/electrospray-mass spectrometry.

Sirolimus (rapamycin) has a macrolide structure and is under clinical investigation as an immunosuppressant after organ transplantation. An HPLC/mass spectrometry assay to quantify sirolimus in blood was developed. 28-O-Acetyl sirolimus was used as internal standard. Blood samples were extracted with C18 columns. The extracts were injected into an HPLC system and isocratically eluted with methanol/1% formic acid (90/10 by vol) from a 150 X 4 mm C18 analytical column. The HPLC system was connected to a triple-stage quadrupole mass spectrometer with an electrospray interface and positive ions were detected. The limit of quantification in 1 mL of blood was 0.25 microgram/L and the calibration curve in blood was linear up to 250 microgram/L. The recovery from blood was 88 +/- 26% and interassay variation at 1 microgram/L was 19% and at 15 microgram/L 9.3%. Hydroxy, dihydroxy, demethyl, and didemethyl sirolimus as well as sirolimus were detected in blood of kidney graft patients.

Acetic Anhydrides↗

Tacrolimus (FK506) metabolite patterns in blood from liver and kidney transplant patients.

The metabolite patterns of tacrolimus in blood were evaluated in 41 kidney and liver graft recipients. Trough concentrations of tacrolimus and its metabolites were measured by HPLC-mass spectrometry and microparticle enzyme immunoassay in parallel. A statistically significant correlation between results of both assays was observed for kidney and liver transplant patients (r = 0.77, P <0.001 and r = 0.71, P <0.001, respectively). The main metabolites in blood were demethyl, demethylhydroxy, didemethyl, didemethylhydroxy, and hydroxy tacrolimus. These metabolites added up to 42% (range 0-145%) of the tacrolimus concentration in liver transplant patients and to 44.8% (range 16-152%) in kidney transplant patients. During episodes of impaired liver function, concentrations of tacrolimus and its metabolites were increased compared with normal liver function, indicating accumulation of metabolites, in particular second-generation metabolites such as didemethyl and didemethylhydroxy tacrolimus. Stepwise regression analysis including tacrolimus, its metabolites, and liver function parameters suggested a model including serum activities of gamma-glutamyltransferase, alkaline phosphatase, and alanine aminotransferase as predictors for increased concentrations of demethyl tacrolimus, didemethyl tacrolimus, and the parent drug.

Adolescent↗

Characterization of glucuronidated phase II metabolites of the immunosuppressant cyclosporine in urine of transplant patients using time-of-flight secondary-ion mass spectrometry.

The immunosuppressant, cyclosporine, is metabolized in the liver and small intestine to > 30 metabolites. Metabolism and immunosuppressive and toxic potentials of the metabolites are still unclarified. Therefore, search and determination of new metabolites remain an important part of cyclosporine research. In this study, cyclosporine metabolites were determined in 42 urine samples of transplant patients using time-of-flight secondary-ion MS. Besides the known metabolites of phase I and phase II, other groups of new phase II metabolites were detected, and most of them were identified as glucuronidated phase I metabolites. All metabolites were found in the urine of heart, kidney, and bone marrow graft patients, with frequencies in the range of 74% and 12%. The most intensive group of these metabolites was also detected in a HPLC fraction, together with the known glucuronidated AM1c. The concentration of this new metabolic group could be estimated to < or = 5/ml. In conclusion, this work demonstrated that time-of-flight secondary-ion MS is a powerful tool in pharmacological investigations. Furthermore this study showed that phase II metabolism is an important metabolic pathway of cyclosporine in transplant patients.

Animals↗

Structural identification of three metabolites and a degradation product of the macrolide immunosuppressant sirolimus (rapamycin) by electrospray-MS/MS after incubation with human liver microsomes.

Sirolimus is a macrolide immunosuppressant that is metabolized by cytochrome P450 3A enzymes to several demethylated and/or hydroxylated metabolites, the exact structures of which have not yet been identified. In addition, sirolimus undergoes degradation in organic solvents and biological fluids. The fragmentation pattern of sirolimus after collision activated dissociation was identified. We used electrospray/MS/MS in combination with collision activated dissociation to elucidate the structures of several sirolimus metabolites and that of a degradation product after incubation of sirolimus with human liver microsomes. The following metabolites were identified: 39-O-demethyl sirolimus, 16-O-demethyl sirolimus, 12-hydroxy sirolimus, as well as the structure of the degradation product 34-hydroxy sirolimus. After incubation with human liver microsomes, 69.7% of the sirolimus derivatives detected were sirolimus, 9.3% 39-O-demethyl sirolimus, 9.3% 34-hydroxy sirolimus, 4.6% 12-hydroxy sirolimus and other hydroxylated metabolites, 2.2% 16-O-demethyl sirolimus, 3% dihydroxylated metabolites (m/z of [M + Na]+ = 968.5), 1.2% trihydroxylated metabolites (m/z of [M + Na]+ = 984.5), and 0.9% tetrahydroxylated metabolites (m/z of [M +Na]+ = 1000.5). Analysis of the fragments of the di-, tri-, and tetrahydroxylated metabolites showed that the hydroxylated sites were located between C(10) and C(27). The intensities of additional fragments was not sufficient to completely identify their structures.

Humans↗

Composition of phospholipid classes and phosphatidylcholine molecular species of gastric mucosa and mucus.

Phospholipids have been proposed to protect the gastric mucosa by forming a proton-repellant hydrophobic layer on the gastric luminal surface, acting as a so-called gastric surfactant. The composition of this hydrophobic phospholipid layer has not previously been analysed in detail. Therefore, we measured the composition of phospholipid classes and phosphatidylcholine (PC) molecular species in gastric mucosa and mucus of rats and pigs using high resolution HPLC techniques. The predominant phospholipids of both mucosa and mucus were PC and phosphatidylethanolamine (PE). Little phosphatidylglycerol was present. The most abundant PC species of rat mucosa were PC16:0/18:1, PC16:0/18:2, PC16:0/20:4 and PC18:0/20:4. Pig mucosa also contained PC16:0/18:1, PC16:0/18:2, and PC18:0/20:4, but was poor in PC16:0/20:4. Dipalmitoyl-PC (PC16:0/16:0), the surface-active component of pulmonary surfactant, comprised only 6.42 +/- 0.33% of total PC in rat mucosa and only 5.50 +/- 1.46% of total PC in pig mucosa. Gastric mucus, isolated from both rat and pig, contained largely PC16:0/18:1 and PC16:0/18:2. The content of PC16:0/16:0 was even lower in mucus than in mucosal PC (rat 2.86 +/- 0.40%, P < 0.01; pig 1.92 +/- 0.55%, P < 0.05). We conclude that, in contrast to pulmonary surfactant, any surfactant function of the hydrophobic barrier of the stomach is unlikely to be mediated by PC16:0/16:0.

Animals↗

Ultrastructural and functional differentiation of hepatocytes under long-term culture conditions.

BACKGROUND: Studies on hepatocytes grown in different culture systems have shown that these cells rapidly dedifferentiate on a single support with liquid medium on top (single gel technique). However, in systems sandwiching them between two layers of extracellular matrix (double gel technique), the cells are able to regain and maintain typical light microscopical appearance and function. Their ultrastructural morphology is as yet unknown. METHODS: Isolated, adult rat hepatocytes were grown in both systems, and their fine structure (thin section electron microscopy) and the functional ability of albumin production (immunoassay) were studied and compared in both culture systems after 2, 7, and 14 days. RESULTS: The hepatocytes in conventional single gel culture did not completely regain their normal morphology and rapidly underwent progressive dedifferentiation. This was characterized by loss of cell polarization in terms of obliteration of the bile canaliculi-like intercellular expansions, loss of cell membrane differentiations, and reduction of organelles. Cytoskeletal components gradually increased, building up large filamentous zones underneath the plasma membrane. In double gel culture, the hepatocytes reachieved and maintained intact morphology and polarity over at least 14 days. The bile canaliculi were formed, preserved, or even enlarged and were associated with dense peribiliary bodies and Golgi fields. The plasma membrane facing both collagen layers bore numerous cytoplasmic microprojections like the sinusoidal surfaces of the hepatocytes in situ. Cell organelles, glycogen particles, and lipid droplets were always present. CONCLUSIONS: The hepatocyte is a cell type in which ultrastructural and functional differentiation are strongly interdependent. For these cells, the morphological microenvironment (i.e. the bipolar position of the extracellular matrix) may be as important or even more decisive for maintenance of normal cell differentiation than modifications of the composition of the matrix itself or addition of other cell types, as focused in other studies.

Albumins↗

Effect of somatostatin-14 on duodenal mucosal bicarbonate secretion in guinea pigs.

The role of somatostatin-14 in duodenal mucosal HCO3- secretion was investigated in anesthetized, indomethacin-treated guinea pigs. Net HCO3- output from the isolated, perfused (24 mM NaHCO3 + 130 mM NaCl) proximal duodenum was measured during intravenous infusion (alone or in combination) of somatostatin-14, carbachol, vasoactive intestinal peptide (VIP), and prostaglandin E2 (PGE2). In homogenates of duodenal enterocytes, the effect of these agents on adenylate cyclase activity was studied. Basal duodenal HCO3- secretion (3.5 +/- 0.2 mumol/cm/10 min) was reduced dose dependently by somatostatin-14 (10(-11) mol/kg, 10(-9) mol/kg, and 10(-7) mol/kg). Carbachol, VIP, and PGE2 (all 10(-8) mol/kg) increased basal duodenal HCO3- secretion two- to threefold. Somatostatin-14 (10(-7) mol/kg) abolished the stimulatory effect of carbachol and VIP, but not that of PGE2. Basal adenylate cyclase activity in isolated duodenal enterocytes (9.4 +/- 1.0 pmol cAMP/mg protein/min) was unaltered by somatostatin (10(-6) mol/liter) or carbachol (10(-3) mol/liter). VIP (10(-8) mol/liter) and PGE2 (10(-7) mol/liter) increased adenylate cyclase activity two- to threefold, and these effects were unchanged by somatostatin-14 (10(-6) mol/liter). In conclusion, somatostatin-14 inhibits basal and carbachol- and VIP-stimulated duodenal HCO3- secretion, and its mechanism of action is not via inhibition of adenylate cyclase activity in duodenal enterocytes.

Adenylyl Cyclases↗

Alternative cyclosporine metabolic pathways and toxicity.

There are some indications from clinical studies (41,43) for aberrant cyclosporine metabolism resulting in formation of potentially toxic metabolites. When the activity of cytochrome P450 3A enzymes is low, more substrate is available for hypothetical alternative pathways of cyclosporine. There are several reasons for low P450 3A activity in a liver graft such as inter-individual genetic variability (43,49,84), cold ischemia and reperfusion damage, changes of the P450 activity during cholestasis (85) or other liver diseases (86), the influence of cytokines (87) and drug interactions such as inhibition or enzyme induction (88). Furthermore, low concentrations of cytochrome P450 3A influence the cyclosporine blood trough concentrations. The P450 3A concentration as estimated by the erythromycin breath test can be used to calculate the initial cyclosporine dose required to obtain cyclosporine blood trough concentrations in the therapeutic window (89). In vitro such alternative pathways comprising 3-methylcholanthrene-inducible (44,46,47) and/or ethinyl estradiol-inducible cytochrome P450 enzymes (48) could be identified and resulted in production of cyclized cyclosporine metabolites. The exact identification of the P450 enzymes involved requires metabolism of cyclosporine using reconstituted purified enzymes or single P450 enzymes expressed in cell lines. In addition, it remains to be clarified whether cyclosporine itself or its metabolite AM1 is the substrate for cyclization. Because cyclized metabolites have a low affinity to cyclophilin (58,59) they are mainly found in plasma. When more cyclized metabolites are formed primarily the concentration of cyclosporine metabolites in plasma increases. The free fraction of cyclosporine at 37 degrees C was found to be 1%-1.5% (90,91) of the cyclosporine concentration in blood. To date, nothing is known about the free fraction of cyclosporine metabolites. Because distribution characteristics of the cyclized metabolites in blood and urine are different from those of cyclosporine, it can be speculated that the free fraction of the cyclized metabolites is higher than that of cyclosporine. This might be reflected by a higher renal clearance resulting in relatively higher concentrations in urine compared with blood (61; Figure 3). If this is the case, a shift in the metabolite pattern with increased concentrations of cyclized metabolites will lead to an overproportional increase of the free fraction of cyclosporine metabolites. Although it is tempting to assume that cyclization is the alternative pathway explaining cyclosporine toxicity in patients with low concentrations of P450 3A enzymes in the liver (Figure 6), this has not yet been proven and will require not only quantification of P450 3A but of the complete P450 enzyme pattern in the liver in combination with characterization of the cyclosporine metabolite pattern by HPLC with special respect to the cyclized metabolites AM1c and AM1c9. Also, it is still unclear whether or not the cyclized metabolites contribute to cyclosporine toxicity. At least, it is unlikely that they are involved in covalent binding to macromolecules in the liver and kidney (44,71). In a clinical study using an HPLC method which allowed the specific quantification of 16 cyclosporine metabolites it was shown that the blood trough concentrations of the cyclized metabolite AM1c9 is elevated during early nephrotoxicity in liver graft recipients (82) and it was shown in an in vitro model that AM1c9 increases endothelin production and therefore might have a negative effect on renal hemodynamics.(ABSTRACT TRUNCATED)

Animals↗

An organotypical in vitro model of the liver parenchyma for uptake studies of diagnostic MR receptor agents.

Testing of receptor-specific MR contrast agents targeted to the liver is hampered by a shortage of viable in vitro models with in vivo-like hepatocellular morphology. Coated pits are ultrastructural signs of an active receptor mediated endocytosis in hepatocytes. Expression of coated pits by matrix overlaid hepatocytes was studied by transmission electron microscopy. Binding of a rhodaminated asialoglycoprotein receptor agent (MION-ASF-rh) was assessed by fluorescence microscopy. Fluorescence of cells exposed to MION-ASF-rh with D(+)-galactose reduced fluorescent light emission to a level of 58% of MION-ASF-rh-induced fluorescence. After preincubation with the hepatotoxin CCl4 a dose-dependent decrease in fluorescent light emission resulted. Hepatocytes maintained a homogeneous cell surface expression, with microprojections, coated pits, and vesicles on both sinusoidal surfaces. Matrix overlaid primary hepatocytes constitute a viable, morphologically and functionally differentiated model. This model can be used to study receptor binding, uptake, and blockage of diagnostic magnetopharmaceuticals under controlled conditions.

Animals↗

Prostaglandin E2 alters terminal glycosylation of high molecular weight glycoproteins, released by pig gastric mucous cells in vitro.

The gastric mucus layer consists of high molecular weight glycoproteins (HMG). E-Type prostaglandins (PGs) stimulate total HMG release from isolated gastric mucous cells. We determined the effects of PGE2 on HMG glycosylation. Pig gastric mucous cells were cultured for 20 h with 1 mumol/l PGE2. Released HMG were isolated by gel chromatography and periodic acid-Schiff (PAS)-positive sugars and protein-bound [14C]GlcNAc were determined. Monosaccharides terminally linked to HMG oligosaccharide chains were monitored by lectin enzyme linked immunosorbent assay (ELISA): N-acetylglucosamine (GlcNAc) with Datura stramonium agglutinin, N-acetylgalactosamine (GalNAc) with soy bean agglutinin, fucose (Fuc) with Ulex europaeus I agglutinin and sialic acids (Sial) with Sambucus nigra agglutinin. PGE2 stimulated total HMG release, indicated by an increase of PAS-positive sugars to 170% and [14C]GlcNAc to 220% of controls. Terminal GlcNAc increased to 128%, GalNAc to 133%, Fuc to 165% and Sial to 182%. In addition to stimulation of total HMG release, PGE2 caused alterations of HMG glycosylation, which may modulate HMG viscosity and microbiological barrier function.

Acetylglucosamine↗

Parallel blood concentrations of second-generation cyclosporine metabolites and bilirubin in liver graft recipients.

Cyclosporine, a cyclic undecapeptide, is currently the major immunosuppressant used after liver transplantation. Since it is unclear whether or not cyclosporine metabolites play a part in toxicity, high concentrations of metabolites should be avoided. The quantification of cyclosporine metabolites requires immunoassays using nonspecific antibodies cross-reacting with metabolites or high-performance liquid chromatography (HPLC) analysis. Since no guidelines are available to date concerning when such additional analysis is required, it was the aim of this study to define biochemical parameters that parallel cyclosporine elimination and indicate whether or not cyclosporine elimination is impaired, requiring quantification of cyclosporine metabolites. One hundred and thirty adult liver graft recipients were included in a prospective study during their first hospital stay. Cyclosporine and 11 metabolites were quantified in blood every second day using radioimmunoassay and HPLC. When the cyclosporine metabolite patterns in trough blood samples of patients with impaired liver function were compared with those of patients with good liver function, concentrations of metabolites AM19 and AM1A were found to be elevated. Serum concentrations of conjugated and total bilirubin were significantly correlated with blood trough concentrations of AM19 and AM1A, while there was no correlation with cyclosporine or its first-generation metabolites. Distribution statistics showed that liver graft patients with impaired cyclosporine elimination had total bilirubin concentrations in serum > 60 mumol/l L. No correlation was found between bile acids and the concentrations of metabolites AM19 and AM1A, suggesting that the ion-coupled transport system is not quantitatively involved in cyclosporine excretion and that bilirubin and cyclosporine metabolites are eliminated by the same transport system through the biliary membrane. It is concluded that bilirubin and cyclosporine metabolite concentrations are strictly parallel and that the total bilirubin concentration in serum may be used as an indicator of impaired cyclosporine elimination.

Administration, Oral↗

Simplified high-performance liquid chromatography-mass spectrometry assay for measurement of tacrolimus and its metabolites and cross-validation with microparticle enzyme immunoassay.

In this study, a modified, specific assay for measurement of tacrolimus and its metabolites in blood and urine from transplant patients using high-performance liquid chromatography (HPLC) linked to mass spectrometry (MS) is described. Samples were prepared for HPLC-MS by modified solid-liquid extraction. The original two-step washing procedure was replaced by a single washing step, and samples were eluted with acetonitrile/water instead of dichloromethane, thus avoiding an evaporation step. Samples were injected automatically every 3 min into the HPLC-MS system. Time-consuming gradient elution was replaced by isocratic elution. This procedure resulted in a lower limit of quantitation of 0.2 microgram/L. The interassay variability was 14.5% for 5 micrograms/L and 15.8% for 25 micrograms/L. The intrassay variability was 11.2% for 5 micrograms/L and 4% for 25 micrograms/L. The recovery for tacrolimus in blood was 90.4% for 1 microgram/L, 78.9% for 10 micrograms/L, and 81.3% for 25 micrograms/L. Measurement of tacrolimus and its metabolites in samples from various transplant patients showed that the main metabolites found in blood and urine are demethyl-tacrolimus, di-demethyl-tacrolimus and demethyl-hydroxy-tacrolimus. Cross validation of the modified HPLC-MS assay with a microparticle enzyme immunoassay showed a significant correlation between the two assays, with r = 0.915.

Acetonitriles↗

Pharmacological regulation of gastric mucous glycoprotein secretion.

Gastric mucous glycoproteins (GMGs) are an important protective component of the gastric 'mucus bicarbonate barrier'. The characterization of drug effects on GMG metabolism is difficult because the quantification of GMGs poses analytical problems and because indirect drug effects (e.g. on other gastric secretory functions) can influence GMG metabolism or quantification and thereby complicate the interpretation of in-vivo experiments. The use of suitable in-vitro systems, in particular of isolated gastric mucous cells, helped to resolve the latter problem and enabled the characterization of direct effects of prostaglandins, gastric acid secretagogues, peptide hormones, growth factors, adrenoceptor agonists, and synthetic compounds (e.g. teprenone) on GMG metabolism. Furthermore, from these experiments, evidence has accumulated that the cyclic AMP system, the inositol trisphosphate/calcium/protein kinase C system and the cyclic GMP system are involved in the intracellular transmission of drug effects on GMG metabolism.

Animals↗