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Immunolocalization of a Schistosoma mansoni facilitated diffusion glucose transporter to the basal, but not the apical, membranes of the surface syncytium.

Adult parasites of Schistosoma mansoni reside within vertebrate mesenteric veins where they consume immense quantities of host glucose after transporting the sugar through their surface syncytium or tegument. Previously we obtained cDNA clones encoding two functional facilitated diffusion glucose transporter proteins expressed by S. mansoni adult worms (Skelly et al. 1994). Antibodies specific for one transporter (SGTP1) have been generated against an extrafacial and an internal domain of the protein and used to localize the protein by light and electron microscopy. By light microscopy both antibodies stain a linear structure approximately 1-5 microns from the surface of the tegument of adult male and female schistosomes. Electron microscopic examination of frozen thin sections show binding of the antibodies to membranes in the base of the tegument and not to the membranes covering the outer surface or their invaginations. Analysis of the gold distribution suggests that the extrafacial domain is disposed toward the interstitial space beneath the tegument and the internal domain faces the syncytial plasm. The localization suggests that SGTP1 may function to transport free glucose from within the tegument and into the interstitial fluids that bathe the internal organs of these parasites.

Amino Acid Sequence↗

Transport of D-xylose in Lactobacillus pentosus, Lactobacillus casei, and Lactobacillus plantarum: evidence for a mechanism of facilitated diffusion via the phosphoenolpyruvate:mannose phosphotransferase system.

We have identified and characterized the D-xylose transport system of Lactobacillus pentosus. Uptake of D-xylose was not driven by the proton motive force generated by malolactic fermentation and required D-xylose metabolism. The kinetics of D-xylose transport were indicative of a low-affinity facilitated-diffusion system with an apparent K(m) of 8.5 mM and a V(max) of 23 nmol min(-1) mg of dry weight(-1). In two mutants of L. pentosus defective in the phosphoenolpyruvate:mannose phosphotransferase system, growth on D-xylose was absent due to the lack of D-xylose transport. However, transport of the pentose was not totally abolished in a third mutant, which could be complemented after expression of the L. curvatus manB gene encoding the cytoplasmic EIIB(Man) component of the EII(Man) complex. The EII(Man) complex is also involved in D-xylose transport in L. casei ATCC 393 and L. plantarum 80. These two species could transport and metabolize D-xylose after transformation with plasmids which expressed the D-xylose-catabolizing genes of L. pentosus, xylAB. L. casei and L. plantarum mutants resistant to 2-deoxy-D-glucose were defective in EII(Man) activity and were unable to transport D-xylose when transformed with plasmids containing the xylAB genes. Finally, transport of D-xylose was found to be the rate-limiting step in the growth of L. pentosus and of L. plantarum and L. casei ATCC 393 containing plasmids coding for the D-xylose-catabolic enzymes, since the doubling time of these bacteria on D-xylose was proportional to the level of EII(Man) activity.

Adenosine Triphosphate↗

Uptake of galactose into Escherichia coli by facilitated diffusion.

Strains of Escherichia coli devoid of systems for the active transport of galactose (galP mgl) still grow on galactose but at rates that are a function of the galactose concentration of the medium: half-maximal growth rates require more than 2 mM-galactose to be present. Evidence is presented that galactose is taken up by such strains by facilitated diffusion on a carrier specified by the umg gene (or by a gene highly co-transducible with it) which is thus a part of, or closely associated with, an enzyme II for glucose of the phosphoenolpyruvate-phosphotransferase system. However, the entry of galactose does not require phosphotransferase activity, and the sugar taken up appears in the cells as free galactose.

Diffusion↗

[Effect of levorin on the activity of facilitated diffusion systems in murine Ehrlich cancer cells].

Five-minute incubation of the cells of Ehrlich's mouse carcinoma with levorin in a concentration of 0.25 microgram/ml resulted in a release of 30% of K+ and 40-50% suppression of active transport of neutral amino acids. No changes in incorporation of nitrous compounds, nucleosides and cyclophosphamide, an antitumor drug transported by the systems of facilitated diffusion were observed under the same conditions.

Amino Acids↗

Pulsatile urea excretion in gulf toadfish (Opsanus beta): evidence for activation of a specific facilitated diffusion transport system.

When toadfish are made ureotelic by a crowding/confinement protocol, they excrete approximately 90 % of their urea nitrogen (urea-N) production in large, irregular pulses (1-2 pulses per day) from the gill region. We investigated three hypotheses as to the mechanism of pulsatile excretion: (i) the presence of an active reabsorptive 'back-transport' mechanism that is periodically inhibited to allow urea-N excretion to occur; (ii) the periodic occurrence of a generalized, non-specific increase in gill permeability; and (iii) the presence of a specific facilitated diffusion transport system that is periodically activated. Exposure of toadfish during non-pulse periods to treatments designed to block a 'back-transport' mechanism (Na+-free sea water or the urea analogues 30 mmol l-1 thiourea or 30 mmol l-1 acetamide in the external water) did not stimulate a leakage of urea-N, thereby opposing the first hypothesis. The second hypothesis was opposed by several results. Neither injection of the potent branchial vasodilator L-isoprenaline (10(-5) mol l-1) nor infusion of NH4Cl, the latter at levels known to stimulate urea-N efflux in perfused gills, had any effect on urea-N excretion. Furthermore, during natural pulse events, when the normally very low gill permeability to urea (3x10(-7) cm s-1) increased at least 35-fold, there was no accompanying increase in permeability to either 3H2O (1.5x10(-5) cm s-1) or the paracellular marker [14C]PEG-4000 (10(-8) cm s-1). However [14C]thiourea permeability (1.5x10(-7) cm s-1) increased approximately fivefold, in support of the third hypothesis. Furthermore, when 30 mmol l-1 urea was placed in the external water, a concentration (60 000 micromol-N l-1) approximately three times that of blood (20 000 micromol-N l-1), each efflux pulse event (measured with [14C]urea) was accompanied by a net uptake, such that blood urea-N levels rose rather than fell. A proportional 1:1 relationship between influx per unit external concentration and efflux per unit internal (i.e. plasma) concentration indicated a fully bidirectional transport system. The simultaneous presence of 60 mmol l-1 thiourea in the external water inhibited the influx component by 73 %, further supporting this conclusion. These data, together with recent molecular, morphological and endocrinological evidence, strongly suggest that pulsatile urea-N excretion is caused by the periodic activation of a facilitated urea transporter in the gills, similar to the vasopressin-regulated urea transporter in the mammalian kidney.

Animals↗

Evidence for the facilitated diffusion of glucose into rabbit oviductal fluid.

Glucose movement into the oviductal fluid of rabbits was studied in anaesthetized animals. The oviducts were cannulated at each end, and 2 ml 0-9% NaCl at 37 degrees C were recirculated through the lumen for 4 h. D-Glucose appeared linearly in the fluid, reaching an average concentration of 2-6 mM. The rate of D-glucose appearance was 17 times greater than that of L-glucose, infused intravenously, suggesting that a component of the D-glucose movement operated by facilitated diffusion. The oviduct was unable to move glucose against an adverse plasma to lumen concentration gradient. We suggest that the glucose entering the oviductal fluid originates in the plasma and that the mucosal portion of the oviduct is responsible for this sugar transfer.

Animals↗

The physico-chemical mechanism of mediated transport. I. Facilitated diffusion.

On the basis of the currently accepted model for the cell membrane structure, a physico-chemical model for mediated transport is developed and solved for the case of polar non-electrolyte migration through the cell membrane. The model considers the interstitial space defined by the transport protein subunits to be the migration pathway for polar solutes. A Langmuir-type adsorption equilibrium is assumed at the interfaces and a multicomponent diffusion mechanism of solute and water is postulated within the migration pathway, where the polar residues of the transport protein represent another component of the system. Membrane selectivity is governed by the adsorption constants, which are shown to affect strongly the kinetics of transport. Isosmotic transport and the volume change of the cell are important features incorporated in the model, which is shown to fulfill the peculiar properties of facilitated diffusion systems. It is concluded that the same type of pathway can be used for the transport of other polar solutes through existing or induced hydrophilic channels, for which a similar approach is suggested.

Adsorption↗

Low-affinity, high-capacity system of glucose transport in the ruminal bacterium Streptococcus bovis: evidence for a mechanism of facilitated diffusion.

The glucose phosphotransferase system (PTS) of Streptococcus bovis could not account for the glucose consumption of exponential cultures, and the kinetics of glucose transport were biphasic. A PTS-deficient mutant lost the high-affinity, low-capacity system but retained its ability to take up glucose at high substrate concentrations. The low-affinity, high-capacity system did not require a proton motive force or ATP and could not be driven by an artificial membrane potential in the presence or absence of sodium. Since low-affinity transport was directly proportional to the external substrate concentration and exhibited counterflow kinetics, it appeared that a facilitated-diffusion mechanism was responsible for glucose transport at high substrate concentrations.

Animals↗

Facilitated diffusion of glucosamine-6-phosphate synthase inhibitors enhances their antifungal activity.

N3-(4-Methoxyfumaroyl)-L-2,3-diaminopropanoic acid (FMDP) and 2-amino-2-deoxy-D-glucitol-6-phosphate (ADGP) are strong inhibitors of the essential fungal enzyme, glucosamine-6-phosphate synthase, but their antifungal activity is poor, due to slow penetration of these agents through the cytoplasmic membrane. In the present studies we have exploited the possibility of enhancement of ADGP and FMDP antifungal activity by improving their transport properties. It has been found that membrane-permeabilising polyene macrolides amphotericin B (AMB) and its N-methyl-N-fructosyl methyl ester derivative (MF-AME), at subinhibitory concentrations, facilitate diffusion of ADGP through the fungal cell membrane, thus allowing a decrease of its minimal inhibitory concentration (MIC). Synergistic effects have been observed for combinations of ADGP with AMB or MF-AME. Fractional inhibitory concentration (FIC) indexes, determined against a number of Candida spp., have been in the 0.18-0.81 range. Weak antifungal synergistic effects have been found for combinations of FMDP with AMB or MF-AME. ADGP can be easily encapsulated into unilamellar lipid vesicles. Liposomal preparations of ADGP demonstrated stronger antifungal activity against some fungal strains than free ADGP.

Antifungal Agents↗

Facilitated diffusion of urate in avian brush-border membrane vesicles.

Membrane transport pathways mediating transcellular secretion of urate across the proximal tubule were investigated in brush-border membrane vesicles (BBMV) isolated from avian kidney. An inside-positive K diffusion potential induced a conductive uptake of urate to levels exceeding equilibrium. Protonophore-induced dissipation of membrane potential significantly reduced voltage-driven urate uptake. Conductive uptake of urate was inhibitor sensitive, substrate specific, and a saturable function of urate concentration. Urate uptake was trans-stimulated by urate and cis-inhibited by p-aminohippurate (PAH). Conductive uptake of PAH was cis-inhibited by urate. Urate uptake was unaffected by an outward alpha-ketoglutarate gradient. In the absence of a membrane potential, urate uptake was similar in the presence and absence of an imposed inside-alkaline pH gradient or an outward Cl gradient. These observations suggest a uniporter-mediated facilitated diffusion of urate as a pathway for passive efflux across the brush border membrane of urate-secreting proximal tubule cells.

Animals↗

Facilitated diffusion of lactic acid in the guinea-pig placenta.

In the guinea-pig placenta which was artificially perfused on the fetal side while maternal placental blood flow was controlled, the placental transfer per mean transplacental concentration difference (the transfer coefficient TC) was determined for lactate. TC for L-lactate (TCLL) was compared to that for D-lactate (TCDL) and measured for various concentrations of L-lactate, bicarbonate, pyruvate and CO2. Applying a "closed circuit" perfusion technique, L-lactate and proton concentrations on both sides of the placenta were followed during infusion of HCl and sodium L-lactate into the fetal circulation. It was found that TCLL is 3 times TCDL. TCLL is depressed by increasing concentrations of L-lactate while TC for Cl-36 is not. TCLL is also depressed by 50 mmol.1-1 pyruvate. Concentration changes of glucose do not affect TCLL. TCLL rises with the proton concentration, independently of the concomitant changes of the bicarbonate concentration. Transplacental proton concentration gradients produce L-lactate concentration gradients and vice versa. It is concluded that (1) facilitated diffusion of L-lactate occurs in the placenta and that (2) L-lactate transfer is coupled with proton transfer. Beside the well-known placental transport system for glucose this is the second passive transport system found in a placenta.

Animals↗

The mechanism of the search for homology promoted by recA protein. Facilitated diffusion within nucleoprotein networks.

recA protein promotes the homologous pairing of single strands with duplex DNA by polymerizing on the single strands to make presynaptic nucleoprotein filaments which are polyvalent with respect to duplex DNA and which consequently form large networks or coaggregates when duplex DNA is added. Previous work has shown that efficient homologous pairing occurs within these networks. In the experiments described here, we observed that the length of the duplex DNA determined the stability of coaggregates, their steady state level, and the yield of joint molecules. Correspondingly, heterologous duplex DNA when preincubated with presynaptic filaments excluded subsequently added homologous duplex DNA from coaggregates and inhibited homologous pairing; the extents of exclusion and inhibition were determined by the length of the heterologous duplex DNA. On the other hand, long heterologous duplex DNA when added together with short homologous duplex DNA was capable of stimulating the absorption of the homologous molecules into coaggregates and increasing the rate of homologous pairing. In reactions involving short duplex molecules, polyamines exerted comparable effects on coaggregation and homologous pairing. We conclude that coaggregates are instrumental in homologous pairing, that they constitute distinct domains that are responsible for the processive or first order character of the pairing reaction, and that they act by concentrating DNA and facilitating diffusion.

DNA Restriction Enzymes↗

Accumulation of N-arachidonoylethanolamine (anandamide) into cerebellar granule cells occurs via facilitated diffusion.

N-Arachidonoylethanolamine (anandamide, AEA) is a putative endogenous ligand of the cannabinoid receptor. Intact cerebellar granule neurons in primary culture rapidly accumulate AEA. [3H]AEA accumulation by cerebellar granule cells is dependent on incubation time (t(1/2) of 2.6 +/- 0.8 min at 37 degrees C) and temperature. The accumulation of AEA is saturable and has an apparent Km of 41 +/- 15 microM and a Vmax of 0.61 +/- 0.04 nmol/min/10(6) cells. [3H]AEA accumulation by cerebellar granule cells is significantly reduced by 200 microM phloretin (57.4 +/- 4% of control) in a noncompetitive manner. [3H]AEA accumulation is not inhibited by either ouabain or removal of extracellular sodium. [3H]AEA accumulation is fairly selective for AEA among other naturally occurring N-acylethanolamines; only N-oleoylethanolamine significantly inhibited [3H]AEA accumulation at a concentration of 10 microM. The ethanolamides of palmitic acid and linolenic acid were inactive at 10 microM. N-Arachidonoylbenzylamine and N-arachidonoylpropylamine, but not arachidonic acid, 15-hydroxy-AEA, or 12-hydroxy-AEA, compete for AEA accumulation. When cells are preloaded with [3H]AEA, temperature-dependent efflux occurs with a half-life of 1.9 +/- 1.0 min. Phloretin does not inhibit [3H]AEA efflux from cells. These results suggest that AEA is accumulated by cerebellar granule cells by a protein-mediated transport process that has the characteristics of facilitated diffusion.

Animals↗

Glucose uptake occurs by facilitated diffusion in procyclic forms of Trypanosoma brucei.

The glucose transporter of Trypanosoma brucei procyclic forms was characterized and compared with its bloodstream form counterpart. Measuring the glucose consumption enzymatically, we determined a saturable uptake process of relatively high affinity (Km = 80 microM, Vmax = 4 nmol min-1 10(-8) cells), which showed substrate inhibition at glucose concentrations above 1.5 mM (Ki = 21 mM). Control experiments measuring deoxy-D-[3H]Glc uptake under zero-trans conditions indicated that substrate inhibition occurred on the level of glycolysis. Temperature-dependent kinetics revealed a temperature quotient of Q10 = 2.33 and an activation energy of Ea = 64 kJ mol-1. As shown by trans-stimulation experiments, glucose uptake was stereospecific for the D isomer, whereas L-glucose was not recognized. Inhibitor studies using either the uncoupler carbonylcyanide-4-(trifluoromethoxy)phenylhydrazone (5 microM), the H+/ATPase inhibitor N,N'-dicyclohexylcarbodiimide (20 microM), the ionophor monensin (1 microM), or the Na+/K+-ATPase inhibitor ouabain (1 mM) showed insignificant effects on transport efficiency. The procyclic glucose transporter was subsequently enriched in a plasma-membrane fraction and functionally reconstituted into proteoliposomes. Using Na+-free conditions in the absence of a proton gradient, the specific activity of D-[14C]glucose transport was determined as 2.9 nmol min-1 (mg protein)-1 at 0.2 mM glucose. From these cumulative results, we conclude that glucose uptake by the procyclic insect form of the parasite occurs by facilitated diffusion, similar to the hexose-transport system expressed in bloodstream forms. However, the markedly higher substrate affinity indicates a differential expression of different transporter isoforms throughout the lifecycle.

Animals↗

Measurement of Krogh's diffusion constant of CO2 in respiring muscle at various CO2 levels: evidence for facilitated diffusion.

Krogh's diffusion constant for CO2, KCO2, was determined in respiring muscle tissue at various levels of tissue PCO2, between 10 and 160 torr, using a technique described previously (Kawashiro et atl, 1975). With increasing mean tissue PCO2, KCO2 declined towards an apparently asymptotic value. The relationship between KCO2 (10(-9) mmol-cm(-1)-min(-1)-tor(-1)) and PCO2 (torr) at 37 degrees C could be approximated by the equation KCO2 = 17.3 [1 + 1.72 - exp(--0.027 - PCO2)]-At PCO2 = 0 torr KCO2 exceeded the asymptotic value, which was virtually attained at PCO2 = 100 torr, by more than a factor of two. Thus CO2 diffusion in muscle appears to be facilitated in the low PCO2 range. Specific CO2 production rate of tissue, which was determined simultaneously, did not vary with CO2 in the PCO2 range studied. Effects of facilitated CO2 transport on CO2 exchange in muscle are assessd using simple models. In the presence of CO2 facilitation muscle PCO2 is reduced, particularly during exercise.

Animals↗