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R Blostein

Publications and source records attributed to R Blostein.

At least 73 records · Page 4Linked to original sources

Energy depletion retards the loss of membrane transport during reticulocyte maturation.

The effect of metabolic depletion on the maturation-associated loss of membrane functions has been studied by using sheep reticulocytes incubated in vitro at 37 degrees C for periods up to 41 hr. ATP was either maintained with glucose, adenosine plus inosine, or depleted with 2-deoxyglucose plus arsenate. Two membrane transport systems were studied: Na+-dependent glycine transport activity and the sodium pump, estimated from measurements of the number of [3H]ouabain binding sites per cell. Both transport systems were decreased during maturation. However, the decrease was much less in ATP-depleted cells compared to ATP-replete cells. It is concluded that the loss of certain functions during reticulocyte maturation is retarded by metabolic depletion.

Adenosine Triphosphate↗

Changes in Na+-ATPase and Na,K-pump during maturation of sheep reticulocytes.

Changes in the sodium pump and sodium-activated ATP hydrolysis (Na+-ATPase) were followed during maturation of low potassium (LK) and high potassium (HK) sheep reticulocytes released into circulation following massive bleeding. In vitro maturation of LK cell reticulocytes resulted in a progressive decrease in cellular K+, ouabain-sensitive 86Rb+ uptake, and Na+-ATPase activity. Although in vitro maturation (up to 10 days) did not result in changes in kinetic behaviour from that typical of reticulocytes to that typical of mature cells, kinetic changes were clearly evident after longer term maturation in vivo. This was shown for HK cells by comparing the characteristics of Na+-ATPase (response to K+) of the lightest (youngest) and heaviest (oldest) cell fractions of blood obtained at various periods during recovery following massive bleeding. It is concluded that the kinetic difference between immature and mature cells is due to cell maturation and reflects either a selective change and (or) loss of certain type(s) of pump sites.

Anemia↗

Comparison of red cell and kidney (Na+ +K+)-ATPase at 0 degrees C.

Human red cell and guinea pig kidney (Na+ +K+)-ATPase were phosphorylated at 0 degrees C. Using concentrations of ATP ranging from 10(-6) to 10(-8) M, ATP-dependent regulation of reactivity is observed with red cell but not kidney (Na+ +K+)-ATPase at 0 degrees C. In particular, with the red cell enzyme only, the following are observed: (i) the ratio of enzyme-bound ATP (E.ATP, measured by the pulse-chase method of Post, R.L., Kume, S., Tobin, T., Orcutt, B. and Sen, A.K. (1969) J. Gen. Physiol. 54, 306s-326s) to steady-state level of total phosphoenzyme (EP) decreases with decrease in ATP concentration and (ii) the apparent turnover of phosphoenzyme (ratio of Na+-stimulated ATP hydrolysis to level of total EP at steady state) also varies as a function of ATP concentration. In addition, when EP is formed at very low ATP (0.02 microM), and then EDTA is added, rapid disappearance of a fraction of EP occurs, presumably due to ATP resynthesis, only with the red cell enzyme. These differences in behaviour of the red cell and kidney enzymes are explained on the basis of the observed predominance of K+-insensitive EP in red cell, but K+-sensitive EP in kidney (Na+ +K+)-ATPase at 0 degrees C.

Animals↗

Reversal of Na+-dependent glycine transport in sheep reticulocyte membrane vesicles.

Inside-out membrane vesicles have been prepared from sheep reticulocytes. With these vesicles, Na+-dependent glycine uptake and net accumulation have been demonstrated to occur in reverse, i.e., from extravesicular (normal cytoplasmic) to intravesicular (normal extravesicular) surface. Uptake and accumulation are inhibited by energization of the sodium pump by ATP whereby the Na+ electrochemical gradient is dissipated. Glycine-dependent Na+ uptake was also observed, providing evidence that Na+-dependent glycine influx into these vesicles, equivalent to normal efflux, is characterized by Na+-glycine co-transport.

Adenosine Triphosphate↗

Enzymic diversification of the sodium pump in sheep red cells.

It is well-established that sheep are genetically dimorphic with respect to the K+ content of their mature red cells and that high-K+ (HK) and low-K+ (LK) red cells differ with respect to the activity and kinetic properties of the sodium pump and Na+-ATPase. In contrast, reticulocytes of both types have a high K+ content and are similar with respect to their pump and Na+-ATPase kinetic characteristics. Reticulocytes differ, however, from mature cells of either HK or LK sheep. The first part of this paper describes a comparative study of the side-specificity of Na+ and K+ interactions with Na--ATPase of inside-out membrane vesicles prepared from mature HK and LK red cells. The results indicate that the genetic difference between the two is expressed as differences in apparent affinities for both Na+ and K+ and that these differences are evident at the cytoplasmic as well as at the extracellular membrane surface. The second part of this paper describes a study of the nature of the maturation-associated changes in the sodium pump system of sheep reticulocytes. Maturation was followed both in vitro (long-term incubation at 37 degrees of reticulocytes) and in vivo (changes in density gradient fractionated HK cells followed at intervals during recovery from massive bleeding. The results support the conclusion that the dimorphism in the sodium pump of sheep red cells is a result of specific changes in Na+-ATPase and that these changes proceed differently during maturation of the two types of sheep red cells.

Anemia↗

Interactions of K+ with (Na,K)-ATPase orientation of K+-phosphatase sites studied with inside-out red cell membrane vesicles.

Inside-out membrane vesicles from human red cells were used to investigate the side specificity of K+ interactions with the K+-activated phosphatase, a partial reaction of the (Na, K)-ATPase. In the absence of Na+ and ATP, K+ at moderate affinity sites at the extravesicular surface (cytoplasmic K+) stimulates activity, whereas intravesicular K+ (K+ normally at the extracellular surface) is without effect. In contrast, under conditions of phosphorylation of (Na, K)-ATPase (Na+ and ATP present), K+ ions acting at high affinity sites at both surfaces are required. It is concluded that an enzyme x K complex is involved in K+-activated phosphatase activity and that it is formed either by interaction of cytoplasmic K+ with the dephosphoenzyme, or as a consequence of extracellular K+ binding and dephosphorylation of the phosphoenzyme formed in the presence of Na+ plus ATP.

4-Nitrophenylphosphatase↗

Red cell sodium fluxes catalysed by the sodium pump in the absence of K+ and ADP.

In the absence of extracellular Na+ or K+, the sodium pump catalyses an ouabain-sensitive "uncoupled" Na+ efflux1-4. With red cell ghosts Glynn and Karlish5 showed that this Na+ efflux is accompanied by ATP hydrolysis and that extracellular sodium ions, at low concentrations, inhibit this efflux as well as the associated ATP hydrolysis. At higher concentrations, extracellular sodium ions restore the hydrolysis of ATP3,6 but it is not known whether there is an associated increase in Na+ efflux and, perhaps, an influx. To answer this question we have used inside-out red cell membrane vesicles which are specially suitable for controlling the composition of the medium at the two membrane surfaces while measuring 22Na+ fluxes in both directions. We report here that the sodium pump can operate in a mode in which influx and efflux of sodium are associated with ATP hydrolysis. This mode is different from the Na-Na exchange described by Garrahan and Glynn7, and Glynn and Hoffman8, which requires ADP as well as ATP9 and is probably associated with ADP-ATP exchage rather than ATP hydrolysis10,11.

Adenosine Diphosphate↗

Sodium and potassium interactions with Na+-ATPase of inside-out membrane vesicles from high-K+ and low-K+ sheep red cells.

Na+-ATPase of high-K+ and low-K" sheep red cells was examined with respect to the sidedness of Na+ and K+ effects, using inside-out membrane vesicles and very low ATP concentrations (less than or equal to 2 muM). With varying amounts of Na+ in the medium, i.e., at the cytoplasmic surface, Na+cyt, the activation curves show that high-K+ Na+-ATPase has a higher affinity for Na+cyt compared to low-K+. The apparent affinity for Na+cyt is also increased by increasing the ATP concentrations in high-K+ but now low-K+. With Na+cyt present, Na+-ATPase is stimulated by intravesicular Na+, i.e., Na+ at the originally external surface, Na+cyt, to a greater extent in low-K+ than high-K+. Intravesicular K+ (K+ext) activates Na+-ATPase in high-K+ but not in low-K+ vesicles and extravesicular K+ (K+cyt) inhibits low-K+ but not high-K+ Na+-ATPase. Thus, the genetic difference between high-K+ and low-K+ is expressed as differences in apparent affinities for both Na+ and K+ and these differences are evident at both cytoplasmic and external membrane surfaces.

Adenosine Triphosphatases↗

Side-specific effects of sodium on (Na,K)-ATPase. Studies with inside-out red cell membrane vesicles.

Using inside-out vesicles of human red cell membranes, the side-specific effects of Na+ on phosphorylation of (Na,K)-ATPase have been studied using low concentrations of [gamma-32P]ATP (less than or equal to 0.1 microM). Phosphorylation is stimulated by Na+ at the cytoplasmic membrane surface (extravesicular Na+) alone and not by Na+ at the external surface (intravesicular Na+). At 37 degrees C, external Na+ (less than or equal to 10 mM) does, however, increase the steady state level (approximately 2 1/2-fold) of phosphoenzyme above that observed with cytoplasmic Na+ alone; hydrolysis is increased to only a small extent. Little stimulation by external Na+ is observed at 0 degrees C. As Na+ at the cytoplasmic side is decreased to very low levels (less than or equal to 0.2 mM) several kinetic changes are observed: (i) the apparent turnover of phosphoenzyme (ratio Na+-ATP-ase/phosphoenzyme level) is markedly increased (approximately 3-fold, (ii) Rbext sensitivity (inhibition of (Na)-ATPase at low ATP levels) is reduced, and (iii) the ratio of Na+ ions transported per molecule of ATP hydrolyzed is decreased. These results are compatible with a reaction pathway involving a transition from one form of phosphoenzyme, E1-P, to another, E2-P of which the hydrolysis is decreased by moderate levels of external Na+. It is suggested also that an alternate reaction pathway for Na+-ATPase occurs at very low cytoplasmic Na+, one via hydrolysis of E1-P and not associated with Na+ translocation.

Biological Transport, Active↗

Electrogenic sodium-dependent glycine transport in sheep reticulocytes.

Na+-dependent glycine transport has been studied in reticulocyte-enriched fractions of blood obtained after massive bleeding of sheep. The activity is dependent on the sodium electrochemical potential and the membrane potential. The sodium chemical gradient was varied by changing either external or internal Na+ and the membrane potential, by addition of valinomycin. Similar results were obtained with resealed reticulocyte ghosts. Under conditions optimal for sodium pumping (intracellular Na+ greater than 50mM), ouabain inhibited glycine uptake prior to any measurable change in the cellular Na+ suggesting that in these cells an electrogenic sodium pump is sufficiently active to contribute to the membrane potential. Na+-dependent glycine transport undergoes a marked decrease during long-term incubation at 37 degrees C. During this time, the cells maintain their integrity and ATP content but undergo maturation as evidenced in the decrease in cells with reticulocyte morphology.

Adenosine Triphosphate↗

Changes in amino acid transport during red cell maturation.

We studied amino acid transport in sheep red blood cells (RBCs) as a function of cell maturation. Transport of amino acids is decreased strikingly in the mature mammalian RBC compared to the immature reticulocyte. Blood obtained 5-6 days after massive bleeding was fractionated on dextran gradients. In the mature erythrocyte amino acids are taken up only slowly, and in the normal experimental interval (60 min) the concentration in the cell does not reach that of the medium. In contrast, the reticulocyte-rich (top) fraction (50-90% reticulocyte) accumulates certain amino acids, particularly histidine, methionine, and leucine. The underlying process is ATP-independent and Na+-insensitive, and has properties consistent with exchange diffusion, i.e., accelerated uptake or efflux when unlabeled solute is present on the trans side. The process is apparent not only in intact cells but also in resealed ghosts. The decrease in activity of amino acid transport is a function of red cell maturation. Thus it can be shown that (a) separation of cells according to their density 1, 2, and 3 weeks after bleeding leads to progressively lower amino acid transport activity with increasing cell density; and (b) during in vitro long-term incubation at 37 degrees C of reticulocyte-rich, unfractionated blood (5-10% reticulocytes), amino acid transport decreases while red cell integrity is maintained, as evidenced by the retention of a normal K+ gradient and the absence of hemolysis. The progressive loss is seen with resealed ghosts as well as with intact cells. Not all the amino acids examined participate in this exchange process. The most actively exchanged are histidine, leucine, methionine, and phenylalanine. Glycine, proline, arginine, and a-amino isobutyric acid do not participate in the exchange process.

Amino Acids↗

Decreased iodination of the red cell surface following phospholipase C treatment.

Human red blood cells were treated with phospholipase C from Clostridium welchii. Lipase concentrations which produced less than 1% hemolysis and 10-15% hydrolysis of the membrane phospholipids reduced markedly (greater than 80%) the accessibility of membrane proteins to the external surface as measured by lactoperoxidase-catalyzed iodination.

Clostridium perfringens↗

Sidedness of (sodium, potassium)-adenosine triphosphate of inside-out red cell membrane vesicles. Interactions with potassium.

Inside-out membrane vesicles of human red cells, prepared according to the method of Steck et al. (1970) Science 168, 255-257) have sufficiently low cation permeability to allow the examination of the side-specific interactions of ligands with the asymmetric sodium pump complex. In accordance with the known properties of the pump in intact cells the following results were observed: (a) ATP-dependent sodium influx and (b) maximal (sodium, potassium)-ATPase with K+ present inside the vesicles with larger than or equal to 20 micronM ATP. With much lower [ATP], K+ inhibited sodium-activated ATPase. K+ was inhibitory at either surface. Inhibition was different on the two sides since cytoplasmic (extravesicular) Na+ counteracted inhibition by cytoplasmic (extravesicular) K+ but not inhibition by K+ at the plasma or external membrane surface, i.e. intravesicular K+. A decrease in the steady state level of the phosphenzyme intermediate of sodium-activated ATPase was caused also by K+ at either surface. The effect of cytoplasmic K+ is compatible with its competitive inhibition of activation of phosphorylation of the enzyme by cytoplasmic Na+. At 37 degrees, the inhibitory effect of external K+ is due to interaction with the phosphoenzyme to form a stable complex of K+ with the dephosphenzyme resulting in a decreased overall reaction rate but increased turnover of the phosphoenzyme (E-P + K leads to EK + Pi). At 0 degree, external K+ inhibits by interacting with the unphosphorylated enzyme to form an occluded enzyme-K complex. This results in a decreased overall rate but relatively small change in apparent turnover of the phosphoenzyme. At 0 degree, but not at 37 degrees, external Na+ counteracted the inhibitory effects of external K+.

Adenosine Triphosphatases↗

Active potassium transport in reticulocytes of high-K+ and low-K+ sheep.

The kinetics of active K+ transport were studied in immature red blood cells cells from high-K+ and low-K+ sheep particulary with respect to the effects of varying intracellular K+ concentration, [K]i. Comparison was made with active transport, or pump, activity in mature high-K+ and low-K+ red cells. Reticulocytes from both types of sheep had much higher maximal active K+ influxes than did mature cells. In both types of reticulocytes, and in mature high-K+ cells as well, the pump was relatively insensitive to increasing [K]i. In contrast, intracellular K+ markedly inhibited the pump in mature low-K+ cells. Active K+ transport in low-K+ reticulocytes, however, as in mature low-K+ cells, is stimulated by specific isoimmune anti-L serum. Therefore the K+ pumps of high-K+ and low-K+ reticulocytes have similar kinetic properties. Maturation of the red cells, involving inactivation of most of the pump activity in both cell types, results in mature high-K+ and low-K+ cells with K+ pumps of very different kinetic characteristics.

Anemia↗

Arrangement of human erythrocyte membrane proteins.

The orientation of human erythrocyte membrane protein was examined by enzymic iodination using lactoperoxidase with the glucose-oxidase system for generating peroxide, followed by proteolytic digestion. The outer surface of intact cells was labeled with 125I and the cytoplasmic surface of either resealed ghosts containing lactoperoxidase or of inside-out vesicles was labeled with 131I. Following iodination, the outer surface (resealed ghosts) or the cytoplasmic surface (outer surface of inside-out vesicles) was digested with trypsin, chymotrypsin, or pronase. Sodium dodecyl sulfate gel electrophoresis of the isolated membranes revealed three major and several minor peaks of radioactivity. Their surface orientation, defined within the limits of the specificity of the probes used, was as follows: the three major peaks consist of: (a) a 90,000 to 100,000 molecular weight component labeled on both surfaces; its proteolytic digestion profile indicated that it spans the membrane in an asymmetric manner and that it is composed of more than one peptide; (b) the major red cell membrane glycoprotein (apparent molecular weight 60,000) which is labeled and digested at only the outer surface; and (c) peptide(s) of high molecular weight (approximately 200,000), labeled and digested at only the cytoplasmic surface. The minor components include a glycoprotein of approximately 25,000 (apparent molecular weight) accessible to both surfaces and peptides of 60,000 to 70,000, 45,000, and 20,000 molecular weight labeled only on the inner surface.

Blood Proteins↗

Na+ATPase of the mammalian erythrocyte membrane. Reversibility of phosphorylation at 0 degrees.

When human erythrocyte membranes are phosphorylated with a very low concentration of [gamma-32P]ATP (0.02 muM) at 0 degrees, and then EDTA is added, rapid disappearance of the phosphoenzyme intermediate of Na+ATPase is observed. The initial rapid phase of phosphoenzyme disappearance is, for the most part, not associated with P1 release and its rate constant, kD, is severalfold greater than the ratio of Na+ATPase activity to phosphoenzyme intermediate, v:EP, at steady state. It is concluded that this rapid disappearance of phosphoenzyme is due to resynthesis of ATP via reversal of phosphorylation. In contrast, rapid reversal is not observed when excess nonradioactive ATP is added to reduce E32P formation, provided Mg2+ is present; however, K+ added with the ATP stimulates reversal. Rapid reversal following EDTA addition is unlikely also when higher ATP concentrations (greater than or equal to 10(-6) M) are used to phosphorylate the enzyme since, at higher ATP, kD congruent to v:EP. The results are compatible with the concept that the Na+ATPase enzyme is composed of two or more catalytic subunits, in which ATP at one catalytic site can regulate the reactivity at another site.

Adenosine Diphosphate↗

Ca-2+-stimulated membrane phosphorylation and ATPase activity of the human erythrocyte.

1. Human erythrocyte membranes were preincubated with ethyleneglycolbis-(beta-aminoethyl)-N,N' tetraacetate (EGTA) and subsequently labelled for short periods with micromolar concentrations of [8-3-H, gamma-32-P]ATP. Under these conditions, and at temperatures smaller than or equal to 22 degrees C, both ATP hydrolysis and membrane phosphorylation were stimulated by Ca-2+. 2. The properties of the Ca-2+-stimulated ATP hydrolysis and associated phosphorylation of a 150 000 molecular weight protein component, previously described (Knauf, P. A., Proverbio, F. and Hoffman, J. F. (1974) J. Gen. Physiol. 63, 324-336), have been studied. The behavior of the phosphorylated component, ECaP, has properties consistent with its role as a phosphorylated intermediate of Ca-2+-ATPase activity, including: (1) similar dependence of the steady-state level of ECaP and Ca-2+-ATPase on ATP concentration; (2) rapid turnover apparent upon the addition of excess non-radioactive ATP; and (3) good correlation between the steady-state levels of Ca-2+-dependent phosphorylation and Ca-2+-ATPase activity in separate preparations possessing variable specific activity. Addition of excess EGTA to ECaP caused only partial dephosphorylation. Sensitivity of Ca-2+-stimulated ATP hydrolysis and associated phosphorylation to micromolar concentrations of Ca-2+ implicates this activity in the "high-affinity" Ca-2+-pump system of the human erythrocyte (Schatzmann, H. J. (1973) J. Physiol. London 235, 551-569).

Adenosine Triphosphatases↗