Search PubMedSearch

Biomedical subjects

R H Moseley

Publications and source records attributed to R H Moseley.

At least 19 recordsLinked to original sources

The Down regulated in Adenoma (dra) gene encodes an intestine-specific membrane sulfate transport protein.

A gene has been described, Down Regulated in Adenoma (dra), which is expressed in normal colon but is absent in the majority of colon adenomas and adenocarcinomas. However, the function of this protein is unknown. Because of sequence similarity to a recently cloned membrane sulfate transporter in rat liver, the transport function of Dra was examined. We established that dra encodes for a Na(+)-independent transporter for both sulfate and oxalate using microinjected Xenopus oocytes as an assay system. Sulfate transport was sensitive to the anion exchange inhibitor DIDS (4,4'-diisothiocyano-2,2' disulfonic acid stilbene). Using an RNase protection assay, we found that dra mRNA expression is limited to the small intestine and colon in mouse, therefore identifying Dra as an intestine-specific sulfate transporter. dra also had a unique pattern of expression during intestinal development. Northern blot analysis revealed a low level of expression in colon at birth with a marked increase in the first 2 postnatal weeks. In contrast, there was a lower, constant level of expression in small intestine in the postnatal period. Caco-2 cells, a colon carcinoma cell line that differentiates over time in culture, demonstrated a marked induction of dra mRNA as cells progressed from the preconfluent (undifferentiated) to the postconfluent (differentiated) state. These results show that Dra is an intestine-specific Na(+)-independent sulfate transporter that has differential expression during colonic development. This functional characterization provides the foundation for investigation of the role of Dra in intestinal sulfate transport and in the malignant phenotype.

4,4'-Diisothiocyanostilbene-2,2'-Disulfonic Acid

Organic cation transport by rat liver lysosomes.

Hepatic organic cation transport has been characterized in rat liver plasma membrane vesicles, using the quaternary amine tetraethylammonium (TEA) as a model substrate. Sinusoidal TEA uptake is stimulated by an inside-negative membrane potential; TEA transport across the canalicular membrane is mediated by electroneutral organic cation-H+ exchange. Substrates for these transport processes include procainamide ethobromide (PAEB) and vecuronium, cationic drugs that undergo biliary excretion. Given the apparent absence of sinusoidal transport mechanisms able to generate high hepatocyte-to-blood organic cation concentration ratios, intracellular transport of organic cations may involve sequestration and concentration within acidified organelles. Therefore, the characteristics of TEA uptake were examined in isolated rat liver lysosomes that are acidified by a well-described H(+)-adenosinetriphosphatase (ATPase). Lysosomal uptake of [14C]TEA was a time- and ATP-dependent process, reaching steady state after 30-60 min. Steady-state [14C]TEA uptake was significantly reduced by omission of ATP and by addition of monensin, conditions that alter lysosomal pH and membrane potential gradients, and by the H(+)-ATPase inhibitors, N-ethylmaleimide and bafilomycin A. ATP-dependent lysosomal [14C]TEA uptake was significantly inhibited by PAEB, vecuronium, and other organic cationic substrates of canalicular TEA/H+ exchange. These findings demonstrate that rat liver lysosomes sequester certain organic cationic drugs, most likely via organic cation/H+ exchange driven by H(+)-ATPase. Canalicular organic cation/H+ exchange may reflect, in part, the exocytic insertion of this transporter from an intracellular compartment to this membrane domain.

Adenosine Triphosphate

Ursodeoxycholate in primary biliary cirrhosis any--different from the rest?

Effective therapy for primary biliary cirrhosis is lacking but not for want of appropriate immunosuppressive, antifibrotic, and cupruretic agents. A consensus as to which agent, if any, to use has not been reached. Recent studies suggest that ursodeoxycholate may be both safe and effective. However, the long-term response to this hydrophilic bile acid is still unknown.

Humans

Cholestasis.

Explore the source record for details and available documents.

Algorithms

Liver biopsy in fever of unknown origin. A reappraisal.

We assessed the value of liver biopsy in the diagnosis of fever of unknown origin (FUO) in hospital-based patients by a retrospective analysis of all cases (24 cases) seen at the University of Michigan Medical Center over a 5-year period. Based on the findings of a liver biopsy performed in the course of the evaluation of FUO, patients were divided into two groups: a diagnostic group, in which an abnormal liver biopsy was helpful in determining the cause of the FUO, and a nondiagnostic group, which included those who had either normal biopsy results or abnormal biopsy results that did not lead to a final diagnosis. Four patients (16.7%) had diagnostic liver biopsy results (histoplasmosis in three and tuberculosis in one). Physical findings, such as hepatomegaly, and laboratory data, including routine liver chemistries, were not predictive of a diagnostic liver biopsy. Therefore, despite advances in diagnostic technology since this subject was last reviewed, liver biopsy continues to be useful in the diagnosis of FUO. Furthermore, in endemic or borderline endemic areas, histoplasmosis should be considered in the differential diagnosis of FUO, and liver biopsy can be helpful to confirm this diagnosis.

Adolescent

Thiamine transport by basolateral rat liver plasma membrane vesicles.

Hepatic thiamine transport is thought to be a saturable, Na(+)- and energy-dependent process. However, the transport of this organic cation has not been examined in experimental models that allow direct characterization of carrier-mediated processes. Recently, a sinusoidal organic cation/H+ antiport was identified, using N1-methylnicotinamide as a marker. To determine whether thiamine is a substrate for this antiport, the characteristics of thiamine uptake were examined in rat liver basolateral membrane vesicles. An inwardly directed Na+ gradient had no effect on thiamine uptake as compared with an identical K+ gradient. An outwardly directed H+ gradient stimulated thiamine uptake as compared with pH-equilibrated conditions, and H(+)-dependent uptake was not the result of an H+ diffusion potential. Identical pH gradients stimulated uptake under voltage-clamped conditions, consistent with electroneutral thiamine/H+ exchange. Unlabeled intravesicular thiamine trans-stimulated [3H]thiamine uptake. Choline and imipramine cis-inhibited thiamine/H+ exchange; a series of other organic cations and thiamine analogues had no effect. Carrier-mediated [3H]thiamine uptake showed two saturable systems. In conclusion, a thiamine/H+ antiport is present on the sinusoidal membrane, distinct from Na+/H+ and NMN+/H+ exchange.

Animals

A familial form of incomplete septal cirrhosis.

The clinical features and hepatic histology of a disorder resembling idiopathic portal hypertension and nodular regenerative hyperplasia but most consistent with incomplete septal cirrhosis, occurring in four family members, are described. This represents the first description of the familial occurrence of this entity. Features common to incomplete septal cirrhosis and the noncirrhotic nodular conditions of the liver that may present with complications of portal hypertension are discussed.

Adult

Organic cation transport by rat liver plasma membrane vesicles: studies with tetraethylammonium.

Recently, an organic cation:H+ antiport was selectively identified on the sinusoidal domain of rat liver with the use of the endogenous organic cation N1-methylnicotinamide (NMN). Absence of NMN+:H+ exchange on canalicular membrane suggested that this transport process was primarily involved in organic cation uptake, leaving the mechanism(s) for organic cation secretion into bile unknown. To further define hepatic organic cation transport, we examined the characteristics of tetraethylammonium (TEA) transport in basolateral (blLPM) and canalicular (cLPM) rat liver plasma membrane vesicles. In cLPM vesicles, under voltage-clamped conditions, an outwardly directed H+ gradient stimulated [14C]TEA uptake compared with [14C]TEA uptake under pH-equilibrated conditions, consistent with electroneutral TEA:H+ exchange. The proton ionophore carbonyl cyanide p-trifluoromethoxyphenylhydrazone had no effect on [14C]TEA uptake, demonstrating that pH-dependent [14C]TEA uptake was not the result of a H+ diffusion potential. In the absence of a pH gradient, the intravesicular presence of TEA trans-stimulated uptake of [14C]TEA. Procainamide ethobromide (PAEB), vecuronium, and tributylmethylammonium (TBuMA), organic cations selectively excreted in bile, cis-inhibited pH-dependent TEA uptake. In contrast, in blLPM vesicles, no pH gradient-dependent [14C]TEA uptake was demonstrated. Instead, basolateral [14C]TEA uptake was significantly stimulated by a valinomycin-induced intravesicular-negative K+ diffusion potential. Basolateral [14C]TEA uptake was also cis-inhibited by PAEB, vecuronium, and TBuMA, but not by NMN. Conversely, PAEB, vecuronium, and TBuMA had no effect on basolateral pH-dependent [3H]NMN uptake. These findings suggest that organic cation transport, with TEA as a model quaternary amine, across the canalicular membrane is driven by an electroneutral organic cation:H+ exchange and that the transport of certain organic cations across the basolateral membrane is via a carrier-mediated system stimulated by an inside-negative membrane potential.

Animals

Hepatic Na(+)-dicarboxylate cotransport: identification, characterization, and acinar localization.

Rat liver perfusion studies suggest that the transport of alpha-ketoglutarate (KG) and related dicarboxylates exhibits acinar heterogeneity, in that the uptake and subsequent metabolism of these organic anions appears to occur predominantly in the perivenous region. However, the isolated perfused liver as an experimental model cannot distinguish intra-acinar differences in either the rate of solute uptake and/or efflux or intracellular binding and/or metabolism. Therefore, the driving forces and acinar localization of KG transport were examined using rat basolateral liver plasma membrane vesicles (blLPMV) isolated from control animals and animals treated 24 h before with selective perivenous and periportal toxins [carbon tetrachloride (CCl4) and allyl alcohol (AA), respectively]. In control blLPMV, [14C]KG uptake into an osmotically sensitive space was markedly stimulated by an inwardly directed Na+ gradient but not by inwardly directed gradients of other monovalent cations. The Na+ ionophore, gramicidin, had a small but significant inhibitory effect on Na(+)-dependent KG uptake, demonstrating that KG uptake was not the result of an intravesicular positive Na+ diffusion potential. The protonophore, carbonyl cyanide-p-trifluoromethoxyphenylhydrazone, had no effect on Na+ gradient-driven KG uptake, indicating that KG uptake was not the indirect result of coordinated activities of Na-H and KG-OH exchange. Na+ gradient-driven KG uptake was electrogenic (occurring with the net transfer of positive charge), and cis-inhibited by other tricarboxylic acid cycle intermediates, including succinate, fumarate, and malate and by citrate, but not by the dicarboxylates oxalate and malonate nor by glutamate and taurocholate (TC).(ABSTRACT TRUNCATED AT 250 WORDS)

1-Propanol

Adenosine transport in rat liver plasma membrane vesicles.

Liver plasma membrane ecto-ATPase activity is largely restricted to the bile canalicular membrane. To determine whether a transport process is also selectively present on this membrane surface to reclaim adenosine derived from the intracanalicular degradation of ATP, the characteristics of hepatic nucleoside transport were examined in canalicular (cLPM) and basolateral (blLPM) rat liver plasma membrane vesicles. In the presence of the adenosine deaminase inhibitor, deoxycoformycin, an inwardly directed Na+ gradient markedly stimulated [3H]adenosine uptake in cLPM vesicles. Canalicular Na(+)-dependent [3H]adenosine uptake was enhanced by an intravesicular-negative membrane potential and inhibited by dissipation of the Na+ gradient with gramicidin D. Both purine and pyrimidine nucleosides inhibited canalicular adenosine transport. 6-[(4-Nitrobenzyl)thio]-9-beta-D-ribofuranosylpurine, an inhibitor of nucleoside transport in erythrocytes and nonepithelial cells, had no effect on canalicular adenosine transport. Canalicular Na(+)-dependent [3H]adenosine uptake exhibited saturability with a Michaelis-Menten constant of 8.3 microM and a maximum transport rate of 7.6 pmol.5 s-1.mg protein-1. In contrast, [3H]adenosine uptake in blLPM vesicles was not stimulated by an inwardly directed Na+ gradient. These findings demonstrate asymmetric distribution of hepatic Na(+)-dependent nucleoside transport. Reclamation of intracanalicular adenosine resulting from ecto-ATPase activity may explain the presence of this transport process selectively on the bile canalicular membrane.

Absorption

Modulation of Na+/alanine cotransport in liver sinusoidal membrane vesicles by internal divalent cations.

Rat liver basolateral plasma membrane (blLPM) vesicles resuspended in 5 mM Mg2(+)-, Ca2(+)-, Mn2(+)- or Co2(+)-containing media exhibited a markedly lower rate of Na(+)-stimulated L-alanine transport. Divalent cation inhibition of L-alanine uptake was dose dependent, and was observed only when the vesicles were pre-loaded with the divalent cations. The presence or absence of the metal ions in the extravesicular incubation media had no effect on L-alanine transport. Conversely, pretreatment of the vesicles with 0.2 mM of either EGTA or EDTA resulted in higher initial rates of L-alanine transport. This stimulation was overcome by addition of excess divalent cation to the vesicle suspension solution. Since these blLPM vesicles are primarily oriented right-side-out, the divalent cation inhibition of L-alanine transport appears to be a result of their interaction with cytosolic components of the cell membrane. Total Na+ flux as measured with 22Na+ was not affected by intravesicular 5 mM Mg2+ or Ca2+, indicating that the inhibition was not due to dissipation of the Na+ gradient. These observations suggest that intracellular divalent cations may serve to modulate L-alanine transport across the liver cell plasma membrane.

Alanine

Transport of N1-methylnicotinamide by organic cation-proton exchange in rat liver membrane vesicles.

The characteristics of hepatic organic cation transport were examined in basolateral (blLPM) and canalicular (cLPM) rat liver plasma membrane vesicles, using the naturally occurring organic cation, N1-methylnicotinamide (NMN). In blLPM vesicles, an outwardly directed H+ gradient (pHin 5.9/pHout 7.9) stimulated [3H]NMN uptake compared with [3H]NMN uptake under pH-equilibrated conditions. The time course of [3H]NMN uptake exhibited a transient "over-shoot" phenomenon, consistent with active transport. The proton ionophore, carbonyl cyanide-p-trifluoromethoxyphenylhydrazone, had no effect on [3H]NMN uptake, demonstrating that pH-dependent [3H]NMN uptake was not the result of a H+ diffusion potential. An outwardly directed H+ gradient also stimulated [3H]NMN uptake under voltage-clamped conditions, consistent with electroneutral NMN-H+ exchange. Under conditions that effectively dissipated the H+ gradient, no active transport of [3H]NMN was observed. In the absence of a pH gradient, the intravesicular presence of NMN trans-stimulated the uptake of [3H]NMN. NMN-H+ exchange was differentiated from sinusoidal Na(+)-H+ exchange by determining sensitivity to amiloride. The substrate specificity of NMN-H+ exchange in blLPM vesicles was examined by determining the cis-inhibitory effects of typical endogenous and exogenous substrates of other epithelial organic cation-H+ exchangers. Kinetic analysis of initial rates of carrier-mediated [3H]NMN uptake over a NMN concentration range of 0.05-15 mM demonstrated that uptake occurred via two saturable transport systems, one a high-affinity low-capacity process and the other a low-affinity high-capacity type. In contrast, in cLPM vesicles, no pH gradient-dependent [3H]NMN uptake was demonstrated. These findings are consistent with the presence of an organic cation-H+ antiport on the sinusoidal membrane, with features distinct from the renal antiport, such as substrate specificity and membrane localization, that may account for differences in drug disposition by these two organs.

Amiloride

Inhibition of bile acid transport by cyclosporine A in rat liver plasma membrane vesicles.

In selectively isolated basolateral (bILPM) and canalicular (cLPM) rat liver plasma membrane vesicles, the in vitro effect of cyclosporine A (CsA) on specific hepatic membrane transport processes was examined. CsA (0.1-200 microM) caused a concentration-dependent inhibition of initial rates of Na(+)-dependent taurocholate uptake in bILPM and cLPM vesicles and Na(+)-independent taurocholate efflux from cLPM vesicles. In contrast, CsA had no effect on Na(+)-dependent L-alanine uptake in bILPM and in cLPM vesicles. In addition, electroneutral pH gradient-driven Na+ uptake in bILPM vesicles was unaffected by CsA treatment. CsA-induced inhibition of taurocholate transport in bILPM and cLPM vesicles was competitive in nature. A hydroxylated (OL-17) and a N-demethylated (OL-21) metabolite of CsA had no effect on taurocholate transport in either membrane vesicle population. These findings suggest that the mechanism of CsA-induced cholestasis is, in part, the result of selective inhibition of bile acid transport by the parent compound at both domains of the hepatocyte plasma membrane.

Alanine