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Changes in nucleoside transport of HL-60 human promyelocytic cells during N,N-dimethylformamide induced differentiation.

The rate of nucleoside transport decreased profoundly in human promyelocytic leukemia HL-60 cells after myeloid differentiation was induced by 5-6 days of exposure to 0.8% N,N-dimethylformamide (DMF). The facilitated diffusion of 100 microM radiolabeled adenosine and 2'-deoxyadenosine, measured by rapid transport assays, decreased 10- to 20-fold. The transport of 2 microM coformycin or 2'-deoxycoformycin, which is mediated by the same mechanism and was monitored by the adenosine deaminase titration assay, decreased 29-fold. The reduction in nucleoside transport capacity after DMF treatment was confirmed by a 19-fold decrease in the number of specific binding sites per cell (from 24-30 X 10(4) to 1.2-1.7 X 10(4)) for [3H]-6-p-nitrobenzylthioinosine, a nucleoside transport inhibitor. The binding affinity of 6-p-nitrobenzylthioinosine was not altered significantly and nucleoside transport remained sensitive to the transport inhibitors, 6-p-nitrobenzylthioinosine, dipyridamole, and dilazep after DMF-induced maturation. Time-dependence studies showed that the rate of 100 microM deoxyadenosine transport was unchanged for the first 24 h of exposure to DMF but fell to about 36% of control rates at 24-26 h and then gradually decreased further to about 4-5% of control rates after 5-6 days. In contrast, transport rates of the purine bases were reduced only 2- to 3-fold in HL-60 cells after 5 days of DMF treatment. The rates of adenosine and deoxyadenosine transport were unchanged or reduced by no more than 2-fold after 5-6 days of exposure to 0.8% DMF in the following human tumor cell lines that are not inducible with DMF: ARH-77 (multiple myeloma), KG-1 (acute myelogenous), and K-562 (chronic myelogenous). Thus, changes in nucleoside transport may serve as an early, membrane-associated marker of differentiation of the HL-60 cell line.

Adenosine↗

Mechanisms of transfer of steroid hormones and growth factors into milk.

In this paper we examine the ability of the mammary gland to remove from circulating blood three compounds which differ in their physico-chemical and structural properties. Mammary extraction of progesterone, oestrone sulphate and epidermal growth factor (EGF) is similar at peak lactation in goats, but the proportion of labelled infusate that is transferred into milk is greater for oestrone sulphate and EGF than progesterone which is rapidly metabolised by mammary tissue. The kinetics of transfer of progesterone, oestrone sulphate and EGF from blood into milk show that transcellular processes are involved, and on the basis of earlier hypotheses and new information reported here the results indicate the probable importance of simple and facilitated diffusion pathways for progesterone and oestrone sulphate, and secretory mechanisms for oestrone sulphate and EGF. Although evidence is lacking for a direct effect of hormones in milk on mammary function, their concentration in milk may reflect changes in local regulation of mammary secretion. Considerable practical value is attached to the immunodiagnostic use of milk hormone concentrations to determine ovarian and placental endocrine activity during pregnancy in domestic ruminants.

Animals↗

A dual, concentration-dependent absorption mechanism of linoleic acid by rat jejunum in vitro.

Linoleic acid absorption was studied using everted rat jejunal sacs. At low concentrations (42-1260 microM), the relationship between linoleic acid concentration and its absorption rate fitted best to a rectangular hyperbola. At high concentrations (2.5-4.2 mM) the relationship between the two parameters was linear. The separate additions of 2,4-dinitrophenol, cyanide, or azide, or decrease in the incubation temperature from 37 to 20 degrees C did not change the absorption rate of linoleic acid. Absorption rate of linoleic acid at low concentrations increased as the hydrogen ion and taurocholate concentrations were increased or as the unstirred water layer thickness was decreased. Linoleic acid absorption rate was decreased after the additions of lecithin, oleic, linolenic, and arachidonic acids or the substitution of taurocholate with the nonionic surfactant Pluronic F 68. These observations indicate that a concentration-dependent, dual mechanism of transport is operative in linoleic acid absorption. Facilitated diffusion is the predominant mechanism of absorption at low concentrations, while at high concentrations, simple diffusion is predominant. At low concentrations, the absorption rate of linoleic acid is influenced by the pH, surfactant type and concentration, the simultaneous presence of other polyunsaturated fatty acids, and the thickness of the unstirred water layer.

Animals↗

[The character of human placental glucose and amino acid transport activity (using microvillous membrane vesicles)].

To elucidate the character of human placental D-glucose and L-alanine transport activity, we investigated the uptake of D-glucose and L-alanine into microvillous membrane vesicles prepared from human early and term placenta using the rapid filtration technique. 1. The uptake of D-glucose into microvillous membrane vesicles did not depend on the Na+ gradient (extravesicular greater than intravesicular). The uptake of D-glucose into vesicles was three times as great as that of L-glucose. And phloretin prominently inhibited the uptake of D-glucose into vesicles. So, it was indicated that the transport mechanism of D-glucose across microvillous membrane was facilitated diffusion. 2. The uptake of L-alanine into microvillous membrane vesicles depended on Na+ gradient (extravesicular greater than intravesicular), so that the transport mechanism of L-alanine across microvillous membrane was a secondary active one. The transport of L-alanine into vesicles prepared from term placenta increased prominently compared to that of early placenta. On the other hand, the transport activity of D-glucose into vesicles prepared from term placenta did not differ from that of early placenta.

Alanine↗

Restriction of placental size in sheep enhances efficiency of placental transfer of antipyrine, 3-O-methyl-D-glucose but not of urea.

When placental growth is restricted, fetal growth is reduced but the fetal to placental weight ratio increases, suggesting that the efficiency of placental transfer may have increased. Therefore, placental transfer of antipyrine, 3-O-methyl-D-glucose and urea was measured in control pregnant sheep and in sheep with restricted placental growth (pre-pregnancy excision of endometrial caruncles). Clearance of each decreased with placental weight but clearance of antipyrine and of 3-O-methyl-D-glucose per kg of placenta increased as placental weight decreased. The small placenta exhibited increased efficiency of flow-determined transfer of antipyrine and of facilitated-diffusion transfer of glucose but not of passive transfer of the hydrophilic substance, urea. These compensatory changes should help to maintain oxygen and glucose to the fetus when the growth of the placenta has been limited by reduction of the number of placental attachment sites.

3-O-Methylglucose↗

Nitrobenzylthioinosine-sensitive nucleoside transport system: mechanism of inhibition by dipyridamole.

Dipyridamole-mediated inhibition of nucleoside transport by the nitrobenzylthioinosine (NBMPR)-sensitive facilitated diffusion system in mammalian erythrocytes was investigated. [3H]Dipyridamole was a competitive inhibitor of uridine equilibrium exchange influx into guinea pig erythrocytes (apparent Ki 1 nM). Analysis of the results using total inhibitor levels instead of cell-free inhibitor concentrations increased the apparent Ki value to 7 nM. Similarly, [3H]dipyridamole inhibition of zero-trans-[14C] uridine influx was consistent with simple competitive inhibition (apparent Ki 1.4 +/- 0.7 nM). In contrast, [3H]dipyridamole behaved as a noncompetitive inhibitor of zero-trans-[14C]uridine efflux (apparent Ki 0.7 +/- 0.2 nM). In a second series of experiments, [3H]dipyridamole was found to bind to a single class of high affinity sites on plasma membranes from human erythrocytes (apparent Kd 0.65 +/- 0.07 nM) with a maximum number of binding sites similar to that determined with the nucleoside transport inhibitor NBMPR. Binding of dipyridamole to these sites was blocked by the nucleoside transport inhibitors NBMPR, nitrobenzylthioguanosine, and dilazep and in a competitive manner by adenosine and uridine (apparent inhibition constants 0.1 and 0.9 mM, respectively). These inhibition constants are similar to the apparent Km for adenosine and uridine equilibrium exchange in human erythrocytes. These results are consistent with the notion that, in mammalian erythrocytes, dipyridamole interacts with the NBMPR-sensitive transporter at the same site as NBMPR, which is preferentially located on the outer surface of the cell membrane totally or partially within the permeation site.

Animals↗

Proposed mechanism of therapeutic selectivity for 9-beta-D-arabinofuranosyl-2-fluoroadenine against murine leukemia based upon lower capacities for transport and phosphorylation in proliferative intestinal epithelium compared to tumor cells.

Studies have examined transport and phosphorylation of 9-beta-D-arabinofuranosyl-2-fluoroadenine (F-Ara-A), a deaminase resistant adenosine analogue, as mechanisms that could mediate the observed therapeutic efficacy of this agent against murine tumor models. Earlier finds by Avramis and Plunkett (Cancer Res., 42: 2587-2591, 1982) showed markedly less accumulation in vivo of administered F-Ara-A as cytotoxic triphosphate in gastrointestinal mucosa and bone marrow compared to P388 cells. We have pursued the basis for this difference in vitro using L1210 ascites and proliferative epithelial cells (85-95% crypt cells) isolated from mouse small intestine as representative sample populations of drug-sensitive tumor and drug-limiting normal regenerative host tissue. Using a rapid sampling technique, linear initial rates of substrate uptake were established at 25 degrees C for radiolabeled F-Ara-A and adenosine at a concentration range of 1-1000 microM. The relationship between velocity of initial transport and substrate concentration is indicative of Michaelis-Menten saturation kinetics for both substrates. Competition studies between F-Ara-A and adenosine suggest a common route of entry for both substrates in crypt epithelial cells. Results from double-reciprocal analysis of the velocity versus concentration data are consistent with a simple carrier-mediated facilitated diffusion process with Km, V25max, and Ki values of 317 +/- 44 (SE) microM, 49 +/- 7 nmol/s/g dry weight, and 301 +/- 34 microM for F-Ara-A, and 264 +/- 14 microM, 44 +/- 5 nmol/s/g dry weight, and 225 +/- 44 microM for adenosine, respectively. The presence of a single low-affinity carrier in the proliferative epithelial cells contrasts sharply with the high affinity (Km, 68 +/- 14 microM; V25max, 48 +/- 4 nmol/s/g dry weight) and low-affinity (Km, 326 +/- 48 microM; V25max, 124 +/- 44 nmol/s/g dry weight) routes of entry documented for L1210 cells. This differential in transport kinetics conveys a 7- to 8-fold greater capacity to L1210 ascites compared with crypt epithelial cells for uptake of the antitumor agent F-Ara-A. At pharmacologically achievable concentrations of F-Ara-A and in view of this differential, influx of F-Ara-A would be more rate limiting to phosphorylation of F-Ara-A in epithelial cells than in L1210 cells. Metabolism studies with L1210 ascites and proliferative intestinal epithelial cells show that intracellular phosphorylation of F-Ara-A is also elevated in L1210 cells.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

Glucose transport across plasma membrane in human platelets.

Studies have been carried out in the presence of 2-deoxyglucose, by utilizing a technique of platelet rapid filtration. Kinetic data suggest that glucose uptake across plasma membrane is the rate limiting step in its utilization. 2-deoxyglucose is transported by facilitated diffusion. L-glucose is transferred at only 1/1200 of the rate of glucose. Transport system shows high affinity for substrate. Transport is inhibited by cytochalasin B, phloretin and N-ethylmaleimide. Cytochalasin E does not affect 2-deoxyglucose uptake. Diamide can have activating or inhibitory effect. t-Butyl hydroperoxide is always activating. Insulin has no effect on rate transport. D-glucose, 3-O-methylglucose, non radioactive 2-deoxyglucose and D-mannose are strong competitors, whereas D-galactose and D-fructose compete weakly with 2-deoxyglucose transport.

Biological Transport↗

Biochemical characterization of a paraquat-tolerant mutant of Escherichia coli.

The biochemical basis for paraquat tolerance was investigated using one of the paraquat-resistant Escherichia coli mutants previously isolated. When grown in the absence of paraquat (PQ2+), the specific activities of glucose-6-phosphate dehydrogenase and NADPH:PQ2+-diaphorase, both required for the expression of PQ2+ toxicity, were comparable in the wild type and the mutant. However, growth in the presence of 1 mM PQ2+ resulted in greater induction of these two enzymes in the wild type than in the mutant. Nevertheless, when the mutant was grown in 50 mM PQ2+, the activities of these two enzymes were comparable to those of the wild type grown in the presence of 1 mM PQ2+. Measurement of cyanide-resistant respiration, an indication of intracellular superoxide generation, showed that the intracellular flux of superoxide mediated by subsaturating concentrations of paraquat was significantly lower in the mutant than in the wild type. Extracellular superoxide formation, as measured by superoxide dismutase-inhibitable cytochrome c reduction, was higher in the wild type than in the mutant whether grown in the absence or the presence of PQ2+. The mutant did not show cross-resistance toward juglone or plumbagin, compounds known to exacerbate superoxide generation. The kinetics of [14C]PQ2+ uptake showed that the wild type accumulated PQ2+ against a concentration gradient, whereas the mutant seemed to do so only by facilitated diffusion. The results indicate that the impaired paraquat uptake system in the mutant results in the physiological and biochemical differences observed between the wild type and mutant.

Drug Resistance, Microbial↗

Effect of prazosin on the efflux of 3H-norepinephrine and metabolites from the intima and adventitia of the rabbit ear artery.

The spontaneous and stimulation-induced (SI) effluxes of 3H-norepinephrine (3H-NE) and its metabolites from the intimal and adventitial surfaces of perfused segments of rabbit ear arteries were determined; vessels were previously incubated with 3H-NE (0.6 microM). The total SI adventitial efflux of 3H was approximately 10-fold greater than the intimal efflux, contained a higher percentage of unchanged 3H-NE (48 vs. 12%) and a lower percentage of O-methylated metabolites (17 vs. 55%); there was little difference between the percentages of deaminated catechols (35 vs. 31%). Prazosin, at a concentration (0.24 microM) which prevented the arteries constricting during stimulation, had little effect on the composition of the SI effluxes; however, it caused 2- to 3-fold increases in the effluxes of 3H-NE and its metabolites into the lumen during the period of stimulation. This effect is attributed to the failure of the vessel wall to thicken during stimulation, thus facilitating diffusion of 3H-NE and its intraneuronally formed metabolites across the media. Prazosin decreased the percentage of unchanged 3H-NE and increased that of the deaminated catechols in the spontaneous efflux; these effects are attributed to a direct effect of prazosin on the intra-neuronal metabolism of 3H-NE.

Animals↗

Rapid kinetics of the glucose transporter from human erythrocytes. Detection and measurement of a half-turnover of the purified transporter.

The stopped flow method combined with fluorescence detection has been employed to study the rapid kinetics of the glucose transporter from human erythrocytes. Upon mixing the purified transporter reconstituted into unsealed membranes of erythrocyte lipids with 4,6-ethylidene D-glucose, a derivative that binds preferentially to the substrate site on the outer domain of the transporter, there was a rapid, first-order decrease in the intrinsic fluorescence of the protein. Three properties of this transient indicate that it represents a half-turnover of the transporter from a conformation with the substrate site facing inward to one with this site facing outward. The first-order rate constant decreased as the concentration of ethylidene glucose was increased; the value of the rate constant for the process is similar to that expected from steady-state kinetic studies of transport in the erythrocyte; and D-glucose at low concentration increased the rate of reaction. This study is the first determination of the kinetics of a half-turnover for a transport system of the facilitated diffusion type. The identification of this step provides direct evidence for the alternating conformation mechanism of transport.

Carrier Proteins↗

Fetomaternal placental transfer mechanisms of aromatic amino acids in Macaca mulatta.

We investigated aromatic amino acid transfer mechanisms from fetus to mother in third-trimester pregnancies in rhesus monkeys after the administration of radioactive phenylalanine to the fetal circulation. The results indicated that fetomaternal transfer takes place mainly by facilitated diffusion via specific membrane carriers. This mechanism might participate in regulating amino acid concentrations in the fetus.

Amino Acids↗

[Physiology of carbohydrate absorption (author's transl)].

The only enzymatic mechanism concerning carbohydrates in the chymus is starch decomposition by enzymes in the saliva and pancreatic juice, In contrast to the chymus the enterocytes dispose of all necessary enzymatic activities in their brush border, above all for disaccharide splitting. Furthermore these activities show relatively fast physiological adaptation. The activity of the disaccharidases and the transport of glucose depend on luminal sodium concentration. The transport of glucose and galactose takes place by active mechanisms, the transport of fructose by facilitated diffusion, other monosaccharides are absorbed passively.

Biological Transport↗

Transport of antiviral agent 9-(S)-(2,3-dihydroxypropyl) adenine to animal cells.

Transport properties of 9-(S)-(2,3-dihydroxypropyl) adenine (DHPA) in cell cultures were studied. Transport of DHPA into chick embryo (CE), ZP (a cell line derived from rabbit lungs) and HeLa cells reached equilibrium values after 10 min incubation. The concentration of intracellular DHPA varied from 30 to 50 per cent of that in the medium. DHPA transport was only slightly affected during the lag phase of vaccinia virus replication. The opinion that DHPA is transported into the cell by facilitated diffusion, is supported 1) by the data on DHPA transport as a function of temperature and extracellular concentration, 2) by evidence of countertransport, 3) by temperature-dependent exit of DHPA, 4) by specific inhibition of DHPA transport in the presence of adenosine and deoxyadenosine and 5) by the fact that intracellular concentration of DHPA in equilibrium does not reach the concentration of DHPA in the medium. V and KM values varied in the range of 2-17 pmoles/min per 10(6) cells and 4-7 microM, respectively.

Adenine↗

Characterization of a calcium/proton antiporter and an electrogenic calcium transporter in membrane vesicles from Azotobacter vinelandii.

Ca2+ transport across the membrane of vesicles derived from Azotobacter vinelandii was studied in the absence of respiration or functioning ATPase. Two facilitated diffusion systems were found. One, an electroneutral Ca2+/2H+ antiporter, responded to an artificially imposed deltapH, was heat-labile, and was insensitive to low concentrations of ruthenium red and lanthanides. The second, an electrogenic transporter, responded to an electrical membrane potential, was heat-stable, was inhibited by ruthenium red, lanthanides, monovalent cations, and certain anions. In vivo, when coupled to the protonmotive force, the systems would provide for the cell: (i) a mechanism to keep intracellular Ca2+ concentration low (Ca2+/2H+ antiporter); (ii) a mechanism for Ca2+ entry (electrogenic transporter).

Antiporters↗

Exochelin-mediated iron uptake into Mycobacterium leprae.

Iron chelated to the exochelins from Mycobacterium neoaurum was taken up by a suspension of M. leprae, prepared from the liver of an infected armadillo, over 15 hr. No uptake occurred when the iron was chelated with exochelins from M. bovis BCG or M. smegmatis or to a single exochelin from M. vaccae. Uptake appeared to be by facilitated diffusion since it was not inhibited by either HgCl2, NaN3, or 2,4-dinitrophenol. This was similar to the mode of uptake of ferriexochelin into M. neoaurum itself.

2,4-Dinitrophenol↗

Sugar and amino acid transport in animal cells.

The molecular basis of intracellular metabolism of nutrients and its control is quite well understood in animal cells. Comparable knowledge about solute entry into cells is still lacking, as, in contrast to metabolism, no chemical reactions seem to be directly associated with the known nutrient transport. Nevertheless, translocations of sugars and amino acids across the plasma membrane are specific and controlled processes, biologically as well as chemically. Recent advances in techniques for isolation of plasma membranes have made it feasible to study transport properties of animal cells without the complications encoutered in viable cells. This approach has been applied to sugar and amino acid transport in plasma membranes of several tissues, and intact transport systems for D-glucose, D-fructose, neutral L-amino acids, and dipeptides have been demonstrated. This demonstration of intact transport systems in an in vitro setting accomplishes the first step in the direction of molecular isolation of transport systems. Furthermore, the information obtained about the transport mechanism catalyzed by some systems has settled controversies on active nutrient transport. For example, electrogenic cotransport of sodium and D-glucose or of sodium and neutral L-amino acids has been shown to form the basis for active, sodium-dependent absorption of these nutrients. A consequence of this type of mechanism is interaction between sugar and amino acid transport via the common charged cosubstrate sodium. Moreover, different types of transport systems for the same substrate have been demonstrated in the luminal and contraluminal regions of the plasma membrane of epithelial cells, which explains unidirectional transepithelial transport. The luminal membrane contains sodium-dependent, active transport systems, and the contraluminal membrane passive, facilitated diffusion systems. In vivo, the lower intracellular sodium potential would result in concentrative nutrient uptake from the lumen, but would not influence exit on the contraluminal side. Variations in the electrical components of the sodium potential, which have not been measured, may explain apparently contradicting results on active sugar and amino acid transport with various tissue preparations.

Amino Acids↗

[Intestinal carbohydrate absorption--correlation between morphology and biochemistry (author's transl)].

After a short description of the morphology of the small intestinal mucosa the physiological processes of carbohydrate digestion and absorption are discussed. While starch is hydrolyzed by amylase in the lumen of the duodenum, the disaccharide hydrolysis does not take place in the intestinal lumen, but at the brush border membrane of the enterocyte. The liberated monosaccharides are--at least in part--absorbed by a specific active transport system. This mechanism is different from those which are responsible for the active transport of primary monosaccharides, i.e. monosaccharides which do not result from oligosaccharide hydrolysis. The exit process for monosaccharides out of the enterocyte into the extracellular space occurs by "facilitated diffusion". Passage through "fenestrated" capillaries is discussed as a possible mechanism for the entry of monosaccharides into the blood vessel system.

Animals↗