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A novel Plasmodium falciparum erythrocyte binding protein-2 (EBP2/BAEBL) involved in erythrocyte receptor binding.

The 175-kDa erythrocyte binding protein (EBA-175) of Plasmodium falciparum and Duffy antigen binding proteins of P. vivax and P. knowlesi are members of a protein family. The features of this protein family include a cysteine-rich motif present in the erythrocyte receptor-binding domain. We identify here a novel 140-kDa P. falciparum erythrocyte binding protein (EBP2/BAEBL) containing the signature cysteine-rich motif by comparative analysis of gene sequence information. Polyclonal antibodies generated by immunization with an EBP2/BAEBL DNA vaccine immunoprecipitated a 140-kDa protein from P. falciparum schizont-infected erythrocyte lysates. Similar to EBA-175, the binding of EBP2/BAEBL to human erythrocytes was dependent on sialic acids because neuraminidase treatment of those erythrocytes rendered them incapable of binding, but differed from EBA-175 in that trypsin treatment decreased EBP2/BAEBL binding by only twofold compared to a 10-fold reduction in EBA-175 binding. Antibodies raised against the putative erythrocyte-binding domain of EBP2/BAEBL effectively blocked the binding of native EBP2/BAEBL to erythrocytes. These functional antibodies localize EBP2/BAEBL to the invasive apical end of the merozoite. We identify EBP2/BAEBL as a paralogue of EBA-175 and as a novel P. falciparum vaccine candidate.

Amino Acid Motifs↗

The effects of neuraminidase on concanavalin A agglutination of erythrocytes: evidence for adsorption of neuraminidase to erythrocyte membrane.

Neuraminidase-treated human erythrocytes, but not untreated erythrocytes, were agglutinated by concanavalin A. The degree of concanavalin A agglutinability was not directly related to sialic acid removal by neuraminidase. While maximal sialic acid release was obtained with 5 units neuraminidase/2 x10(9) erythrocytes, maximal concanavalin A agglutination was only obtained after exposure to 20 units neuramindase. Binding of 3H-concanavalin A by erythrocytes was 10-fold higher with rabbit compared to human red cells. Neuraminidase treatment of human erythrocytes caused a relative increase in 3H-concanavalin binding, but the absolute amount was still 10-fold less than that bound to rabbit erythrocytes. Specific adherence of neuraminidase to Con A-Agarose could not be demonstrated. There was no evidence for contamination of the neuraminidase preparation with proteases using a sensitive assay. These studies suggest that neuraminidase absorbs to erythrocytes by a mechanism other than removal of sialic acid.

Adsorption↗

Bordetella adenylate cyclase toxin induces a cascade of morphological changes of sheep erythrocytes and localizes into clusters in erythrocyte membranes.

Adenylate cyclase toxin (CyaA) of Bordetella pertussis penetrates the membrane of eukaryotic cells, producing high levels of intracellular cAMP, as well as hemolysis that results from the formation of cation-selective toxin channels in the membrane. Using several microscopical approaches we studied the effects of CyaA action on the morphology of sheep erythrocytes during early phases preceding lysis and examined localization of CyaA molecules within the erythrocyte membrane. CyaA induced a cascade of morphological changes of erythrocytes, such as shrinkage, formation of membrane projections, and blebs and swelling. The use of an enzymatically inactive CyaA-AC- toxoid that is unable to produce cAMP and of a CyaA-E581K mutant exhibiting higher hemolytic activity than with CyaA showed that the hemolytic activity is responsible for the induction of morphological changes of erythrocytes. Further, immunolabeling of inserted CyaA-232/FLAG molecules with specific anti-FLAG antibodies and IgG-gold particles indicated a clustered distribution of CyaA molecules in erythrocyte membrane. This was confirmed by immunofluorescence and confocal microscopy, which revealed uniform stoichiometry of CyaA clusters, suggesting CyaA binding into specific domains in erythrocyte membrane. Indeed, a decrease of CyaA binding after cholesterol depletion of erythrocytes suggests toxin targeting and binding to membrane microdomains (rafts).

Adenylate Cyclase Toxin↗

Changes in fluidity of erythrocyte membranes after storage of erythrocytes and regeneration of cellular ATP level.

The membrane fluidity of freshly collected human erythrocytes, of erythrocytes stored for 3-4 weeks and of stored erythrocytes rejuvenated with glucose and inosine was investigated by measuring polarization of fluorescence emission of 1,6-diphenyl-1,3,5-hexatriene and N-phenyl-1-naphthylamine. The fluidity of membranes prepared from stored erythrocytes was higher than that of fresh erythrocytes. After rejuvenation of erythrocytes with glucose and with or without inosine the membrane fluidity decreased. These changes were probably due to variations of ATP levels in the erythrocytes.

1-Naphthylamine↗

The effects of dietary omega-3 polyunsaturated fatty acids on erythrocyte membrane phospholipids, erythrocyte deformability and blood viscosity in healthy volunteers.

We have examined, in normal subjects, the effects of a daily dietary supplement of fish oil concentrate ('maxEPA'), providing 3 g of omega-3 fatty acids, on erythrocyte membrane phospholipids, erythrocyte deformability and blood viscosity. After 3 weeks, incorporation of C20:5 omega 3 into erythrocyte phosphatidyl choline (PC) was greater compared to phosphatidyl ethanolamine (PE) and phosphatidyl serine (PS). After 6 weeks, there was no further increase in total erythrocyte C20:5 omega 3, but its distribution amongst phospholipid subclasses had changed. C20:5 omega 3 had increased further in PE and PS, but decreased in PC. Incorporation of C20:5 omega 3 also occurred into PC, PE and PS. omega-3 Fatty acids were incorporated almost entirely at the expense of C18:2 omega 6, but total unsaturation of phospholipids was increased. This is consistent with increased lipid fluidity, which may be an important determinant of erythrocyte deformability. The same dosage of maxEPA also resulted in a significant increase in erythrocyte deformability and a concomitant reduction in whole blood viscosity. Since plasma viscosity and haematocrit were unchanged it seems likely that the effects on blood rheology were mediated by changes in erythrocyte lipid fluidity. Modification of blood rheology by dietary omega-3 fatty acids is of potential value in the treatment of vascular disease.

Blood Viscosity↗

The Plasmodium falciparum protein RESA interacts with the erythrocyte cytoskeleton and modifies erythrocyte thermal stability.

The ring-infected erythrocyte surface antigen (RESA) associates with spectrin in the erythrocyte membrane (Foley, M., Tilley, L., Sawyer, W. H. and Anders, R. F. (1991) Mol. Biochem. Parasitol., 46, 137-148). A fragment of the RESA protein, which was expressed in Escherichia coli, was found to bind to inside-out vesicles of erythrocyte membranes in an apparently saturable manner. Upon extraction of inside-out vesicles with Triton X-100, the RESA fragment remained associated with the erythrocyte cytoskeleton. Using the technique of steady-state fluorescence polarisation, we have studied the thermal denaturation of fluorescein-labelled spectrin in the presence of recombinant RESA. We found that the RESA fragment partially protected spectrin against heat-induced conformational changes. Furthermore, erythrocytes infected with a RESA (-) laboratory strain (FCR3) were shown to be more susceptible to heat-induced fragmentation than erythrocytes infected with a RESA (+) strain of the parasite. RESA does not, however, appear to play an essential role in the invasion process per se as erythrocytes resealed to contain anti-RESA antibodies were efficiently invaded.

Animals↗

Decrease in erythrocyte glycophorin sialic acid content is associated with increased erythrocyte aggregation in human diabetes.

1. Sialic acid moieties of erythrocyte membrane glycoproteins are the principal determinants of the negative charge on the cell surface. The resultant electrostatic repulsion between the cells reduces erythrocyte aggregation and hence the low shear rate viscosity and yield stress of blood. 2. Using g.c.-m.s., a decrease in sialic acid content has been observed in the major erythrocyte membrane glycoprotein, glycophorin A, obtained from nine diabetic patients compared with that from seven normal control subjects [median (range): 3.30 (0.01-11.90) versus 18.60 (3.20-32.60) micrograms/100 micrograms of protein, P less than 0.02]. 3. Erythrocyte aggregation, measured by viscometry as the ratio of suspension viscosity to supernatant viscosity (LS/S) in fibrinogen solution, was increased in ten diabetic patients compared with ten normal control subjects (mean +/- SEM, 37.6 +/- 1.3 versus 33.8 +/- 0.6, P less than 0.02). 4. In the patients in whom both viscometry and carbohydrate analysis were performed, the decrease in erythrocyte glycophorin sialylation and the increase in erythrocyte aggregation in fibrinogen solution were related statistically (LS/S correlated negatively with glycophorin sialic acid content, r = 0.73, P less than 0.05). 5. Decreased glycophorin sialylation provides an explanation at the molecular level for increased erythrocyte aggregation and it may be important in the pathogenesis of vascular disease in diabetes.

Adult↗

Enhanced expression of glucose transporter 1 on erythrocyte membrane in hemodialysis patients: the possible role in erythrocyte ascorbate recycling.

BACKGROUND: Human erythrocytes can take up dehydroascorbate on the glucose transporter 1 (GLUT 1) and reduce it to ascorbate. Intraerythrocyte ascorbate was proved to be directly responsible for decreased oxidation of extraerythrocytic ascorbate. In addition to spontaneous and irreversible loss of ascorbate in plasma, the hemodialysis (HD) process itself consumes plasma ascorbate. However, intraerythrocyte ascorbate status in uremic patients during HD has yet to be reported. METHODS: Plasma and intraerythrocyte ascorbate, dehydroascorbate, GLUT 1 expression on erythrocyte membranes, and in vitro studies of "erythrocyte ascorbate recycling" were investigated in age- and sex-matched healthy subjects (control group) and HD patients (HD group). RESULTS: Intraerythrocyte ascorbate concentrations decreased after 1 HD session compared with pre-HD and recovered to pre-HD values 2 days later, whereas plasma ascorbate concentrations did not recover. In vitro studies suggested that erythrocytes of HD patients have a stronger ability to maintain intracellular ascorbate concentrations compared with healthy subjects. This ability could be inhibited by cytochalasin B (GLUT 1 inhibitor). We also found increased GLUT 1 expression (P = 0.002) on erythrocyte membranes in the HD group compared with the control group. CONCLUSION: Erythrocytes of uremic patients lost large amounts of ascorbate during HD, but regained it to the pre-HD level 2 days later. Enhanced GLUT 1 expression on erythrocyte membranes for HD patients may contribute to better preservation of intracellular ascorbate compared with healthy subjects.

Aged↗

Scanning electron microscopic study of erythrocyte shapes artificially jetted through tubes at different pressures by 'in vitro cryotechnique for erythrocytes'.

A new cryotechnique for examining morphological changes of human erythrocytes at different jet pressures was developed in the present study. Human fresh or stored erythrocytes passing through a tube were jetted into precooled isopentane-propane mixture (-193 degrees C), which was named as 'in vitro cryotechnique for erythrocytes'. After the cryotechnique procedure, the routine freeze-substitution method and subsequent t-butyl alcohol freeze-drying method were used for preparing the scanning electron microscopic specimens. At 100 mmHg or higher pressures of jetting, lamellar-arranged erythrocytes were observed to have elongated shapes. The more the jetting pressure increased, the fewer discoid shapes of erythrocytes were observed. This cryofixation technique could preserve the morphology of erythrocytes jetting from tubes, and provide the three-dimensional image of erythrocyte surfaces, as followed by scanning electron microscopy.

Erythrocyte Deformability↗

Alkylacyl glycerophosphoinositol in human and bovine erythrocytes. Molecular species composition and comparison with glycosyl-inositolphospholipid anchors of erythrocyte acetylcholinesterases.

Glycosyl-inositolphospholipid (glycosyl-PtdIns) anchors of proteins in mammalian cells which have been analyzed so far are exclusively of the alkylacyl type. However, little is known about the putative precursor of glycosyl-PtdIns, the alkylacyl derivative of glycerophosphoinositol (GroPIns), in these cells since it is generally believed that cellular GroPIns consists of diacyl-type molecular species only. In this report, we describe the isolation and identification of alkylacyl GroPIns molecular species in both human and bovine erythrocytes, and compare it with the molecular species compositions of the glycosyl-PtdIns anchors of human and bovine erythrocyte acetylcholinesterase. Diradyl GroPIns was isolated from lipid extracts of ghost membranes and treated with phospholipase C. Diradylglycerols of the glycosyl-PtdIns anchors of affinity-purified human and bovine erythrocyte acetylcholinesterase were generated by sequential treatment with glycoprotein phospholipase D and acidic phosphatase and by PtdIns-specific phospholipase C, respectively. Diradylglycerols were subsequently converted into benzoate derivatives and separated into diacyl, alkylacyl, and alkenylacylglycerol subclasses. The molecular species compositions were quantitated and determined by combined HPLC/mass spectrometry. We found that human and bovine erythrocyte membrane diradyl GroPIns consist of 1.5-4.8% alkylacyl GroPIns. Molecular species analysis showed a heterogeneous species composition for both human and bovine erythrocyte alkylacyl GroPIns. Their compositions are distinctly different from those of human and bovine erythrocyte acetylcholinesterase glycosyl-PtdIns anchors. The number of alkylacyl GroPIns molecules/cell is roughly equal with the number of glycosyl-PtdIns-anchored proteins in human erythrocytes.

Acetylcholinesterase↗

Erythrocytes sedimentation profiles under gravitational field as determined by He-Ne laser. II. Influence of erythrocyte shape.

The erythrocyte sedimentation profiles under gravitational field, by scanning the sample holder along the height and width, containing the blood samples with normal and crenated erythrocytes, are determined. The normal shape of erythrocytes has been altered by the controlled He-Ne laser exposures and this change, as observed microscopically, is similar to that as produced by other methods. At low exposure the erythrocytes have normal appearance, whereas, at 400 mJ/cm2, the percentage of crenated cells is 25 +/- 5 percent. It is observed that the modification of the shape influences the sedimentation characteristics of the erythrocytes. The erythrocytes tend to move faster after being exposed to lower exposure and slower after being exposed to higher exposure compared to that of normal erythrocytes. The possible mechanism associated with this change is discussed.

Blood Sedimentation↗

Comparison of the effects of human erythrocyte ghosts and intact erythrocytes on platelet interactions with subendothelium in flowing blood.

We investigated whether ghosts behaved similarly to intact erythrocytes to maintain regular primary hemostasis under flow conditions. To this end we performed perfusion experiments with whole blood in which erythrocytes were replaced by pink ghosts, and platelet interaction with the subendothelial surface of a damaged vessel was morphometrically evaluated. The same objective was sought by means of studies with a platelet function analyzer (PFA-100(TM) instrument). Perfusions performed with control blood reconstituted with intact erythrocytes gave rise to 0.4+/-0.2% contact but not spread platelets, 10.8+/-3.4% adhering and spread platelets, 16.3+/-4.6% platelets in thrombi, with 27.5+/-7.4% of the surface covered. Even though the average diameter of the ghosts was smaller than that of intact erythrocytes (5.3 microm vs. 7.7 microm), the values obtained in perfusions performed with ghosts were similar to those of the erythrocyte controls. Studies performed with the PFA-100(TM) analyzer were consistent with those observed in perfusion studies. The viscosity of control blood was compared with that of blood reconstituted with ghosts. At shear rates lower than 450 s(-1), the viscosity of the ghost samples was higher than that of the controls, but the difference progressively decreased as shear rate increased up to 750 s(-1) (3.61+/-0.15 and 3.71+/-0.17 cP, respectively). In conclusion, the results of our study showed that ghosts behaved similarly to intact erythrocytes in maintaining a normal platelet interaction with digested subendothelium, under conditions of moderate shear rate and constant hematocrit (40%). The rheological activity of ghosts, bodies that are metabolically less active, was sufficient for them to satisfactorily act as substitutes for intact erythrocytes in our system.

Blood Viscosity↗

[Roles of plasma proteins and surface negative charge of erythrocytes in erythrocyte aggregation].

The effect of plasma proteins (and IgG fragments) and sialic acid content of erythrocytes on the aggregation of human erythrocytes was quantitatively examined by using a rheoscope combined with a television image analyser and a computer. (1) The velocity of erythrocyte aggregation by plasma proteins was increased with increasing in their molecular weight, i.e., IgG less than IgA less than fibrinogen less than IgM. F(ab')2. Fab and Fc could not induce the aggregation. (2) The aggregation induced by fibrinogen was accelerated by IgG and its peptic fragment, F(ab')2, but was unaffected by the plasmic fragments, Fab and Fc. The accelerating effect by IgG and F(ab')2 was inhibited by Fab and Fc. (3) The aggregation of erythrocytes was accelerated by decreasing the sialic acid content (due to the reduction of the electrostatic repulsive force among erythrocytes), and the effect of desialylation on the IgG-induced aggregation was greater than that of desialylation on the fibrinogen-induced aggregation. (4) The roles of plasma proteins and of sialic acid content of erythrocytes on the aggregation of erythrocytes were discussed.

Electricity↗

[Age composition of the erythrocyte population, ATP and 2,3-diphosphoglycerate composition in erythrocytes in different forms of hemolytic anemia].

The total erythrocyte population was subdivided into three age groups using as criteria the stability of red blood cells to osmotic shock and the values of glucose-6-phosphate dehydrogenase (G6PD) activity. The "old" erythrocytes constituted about 8%, "mature"--87% and "young"--5% under normal conditions. In hereditary microspherocytosis 70% of erythrocytes possessed a decreased osmotic resistance and higher G6PD activity as compared with normal state. Two categories of erythrocytes was found among "young" cells in Marchiafava-Micheli disease; one of them possessed normal osmotic resistance, the other--decreased osmotic resistance. The age composition of the erythrocyte population was normal in functional hyperbilirubinemia. Content of ATP was decreased in erythrocytes of patients with hereditary microspherocytosis, it was increased in Marchiafava-Micheli disease and approached the normal level in patients with functional hyperbilirubinemia. Concentration of 2,3-diphosphoglycerate was similar to the normal level in erythrocytes of patients with functional hyperbilirubinemia; an inverse correlation was observed between contents of hemoglobin and of 2,3-diphosphoglycerate in blood of patients with hereditary microspherocytosis and with Marchiafava-Michel disease.

Adenosine Triphosphate↗

Erythrocyte membrane in protein-energy malnutrition: A23187-induced changes in osmotic fragility of human and rat erythrocytes.

Erythrocytes from protein-energy malnourished children have been shown to have increased resistance to osmotic lysis (4). Osmotic fragility studies were carried out in protein-energy malnourished rats and A23187-induced changes in osmotic fragility were studied in rat and human erythrocytes. Rat erythrocytes were found to be much more sensitive to A23187 effect on osmotic fragility as compared to the human erythrocytes. Erythrocytes from protein-deficient rats but not from the energy-restricted rats showed increased resistance to osmotic lysis. A23187 (+ Ca)-induced changes in osmotic fragility were not different between control and experimental erythrocytes, either for humans or rats. There was, however, a difference in the extent to which Na accumulation and K depletion occurred in erythrocytes from control and experimental animals after A23187 + Ca2+ treatment.

Animals↗

Interaction of C3 nephritic factor (NEF) with erythrocyte membranes complement-independent binding to sheep and patients' erythrocytes.

Complement-independent binding of C3 nephritic factor (NEF) to sheep erythrocytes was observed in heat-inactivated sera from patients having this autoantibody. The binding was observed after neuraminidase treatment of erythrocytes but not following trypsin treatment. Purified IgG from patients' sera was able to bind to ShE membranes. Binding to rat and rabbit erythrocytes was also observed but not to human group O+ erythrocytes. By Western blot NEF ab recognizes a 26 kD protein on the sheep erythrocytes and a 21 kD protein on human erythrocytes. NEF activity decreased at these positions when blotted nitrocellulose was incubated with NEF antibody. This autoantibody binds human erythrocytes membranes from patients but not from 55 normal blood donors. IgG from a pool from 10 different controls did not bind membrane E from the patients. The amino acid analysis of the 21 kD protein of the patients showed differences in basic residues (Arg and Lys) when compared with the 21 kD protein obtained from controls. N-terminal sequence analysis indicated that it is blocked in both proteins.

Amino Acids↗

The mature-parasite-infected erythrocyte surface antigen (MESA) of Plasmodium falciparum associates with the erythrocyte membrane skeletal protein, band 4.1.

Several proteins synthesized by mature asexual stages of Plasmodium falciparum interact with the erythrocyte membrane skeleton. One of these is the mature-parasite-infected erythrocyte surface antigen (MESA; also called PfEMP2), a phosphoprotein of 250-300 kDa, which is found on the internal face of the erythrocyte membrane. When MESA is precipitated with anti-MESA antibodies, another phosphoprotein of 80 kDa is co-precipitated. This 80-kDa phosphoprotein was identified by peptide mapping as the erythrocyte membrane component band 4.1. Thus, MESA is apparently anchored at the erythrocyte membrane through an association with band 4.1. Band 4.1 is more intensely phosphorylated in infected erythrocytes and is increased in relative molecular mass in erythrocytes infected by isolates of P. falciparum that cytoadhere.

Animals↗

The ring-infected erythrocyte surface antigen of Plasmodium falciparum associates with spectrin in the erythrocyte membrane.

The malaria parasite Plasmodium falciparum synthesises a protein, RESA, which associates with the membrane of newly invaded erythrocytes. Using spent supernatants from P. falciparum growing in culture as a source of soluble RESA we have developed an assay to examine the characteristics of RESA binding to the erythrocyte membrane in vitro. RESA associated with the Triton X-100 insoluble proteins on the inner face of the host erythrocyte membrane but did not bind to the outer surface of intact erythrocytes. Other proteins present in culture supernatants did not bind to the erythrocyte membrane. RESA was co-sedimented with the ternary complex formed between actin, spectrin and band 4.1 and co-precipitated with spectrin precipitated with anti-spectrin antibodies. The extent of association between RESA and the inner face of the erythrocyte membrane was reduced by the inclusion of excess purified spectrin in the assay. Thus, RESA appears to be associated with spectrin in the erythrocyte membrane skeleton.

Animals↗