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Erythroid cells rendered erythropoietin independent by infection with Friend spleen focus-forming virus show constitutive activation of phosphatidylinositol 3-kinase and Akt kinase: involvement of insulin receptor substrate-related adapter proteins.

The erythroleukemia-inducing Friend spleen focus-forming virus (SFFV) encodes a unique envelope glycoprotein which allows erythroid cells to proliferate and differentiate in the absence of erythropoietin (Epo). In an effort to understand how SFFV causes Epo independence, we have been examining erythroid cells rendered factor independent by SFFV infection for constitutive activation of signal-transducing molecules. Previous studies from our laboratory showed that various signal-transducing molecules known to be activated by Epo, including Stat proteins and components of the Raf-1/MAP kinase pathway, are constitutively activated in SFFV-infected erythroid cells in the absence of Epo. Since another signal transduction pathway involving activation of phosphatidylinositol 3-kinase (PI 3-kinase) after Epo stimulation plays an important role in erythroid cell proliferation and differentiation, we carried out studies to determine if this pathway was also activated in SFFV-infected cells in the absence of Epo. Our studies show that PI 3-kinase is constitutively activated in erythroid cells rendered factor independent by infection with SFFV and that PI 3-kinase activity, but not Epo receptor tyrosine phosphorylation, is required for the proliferation of these cells in the absence of Epo. We further show that in SFFV-infected erythroid cells grown in the absence of Epo, PI 3-kinase associates with the insulin receptor substrate (IRS)-related adapter molecules IRS-2, Gab1, and Gab2, which are constitutively tyrosine phosphorylated in SFFV-infected cells. Finally, Akt, a protein kinase that is one of the downstream effectors of PI 3-kinase, and SHIP, a lipid phosphatase that is important for Akt activation through PI 3-kinase, are both tyrosine phosphorylated in SFFV-infected cells grown in the absence of Epo. Our results indicate that induction of Epo independence by SFFV requires the activation of PI 3-kinase and suggest that constitutive activation of this kinase in SFFV-infected cells may occur primarily through interaction of PI 3-kinase with constitutively phosphorylated IRS-related adapter molecules.

Enzyme Activation↗

Human erythroid cells are affected by aluminium. Alteration of membrane band 3 protein.

There is evidence that anaemia is associated with aluminium (Al). We have already reported on the sensitivity to Al, showed by erythroid cell populations of animals chronically exposed to the metal. In order to investigate whether Al could also affect human cells, experiments were carried out both on immature and mature human erythroid cells. Erythroid progenitors (CFU-E, colony-forming units-erythroid) concentrated from human peripheral blood were cultured in an Al-rich medium under erythropoietin stimulation and their development analysed. Human peripheral erythrocytes were aged in the presence of Al. Cells were examined using scanning electron microscopy, and membrane proteins analysed by polyacrylamide gel electrophoresis with sodium dodecyl sulphate and immunoblotting. The development of the Al-treated progenitors was 8750/6600-9200 CFU-E/10(6) cells, a significantly lower median value (P<0.05) than that showed by non-treated cells (12300/11200-20700 CFU-E/10(6) cells). Erythrocyte morphological changes were induced by Al during the in vitro ageing. The cells lost their typical biconcave shape, turning into acanthocytes and stomatocytes. Simultaneously, an increased membrane protein breakdown compatible with band 3 degradation was detected. Besides, Al was found within the cells and attached to the membrane. The present in vitro results suggest that Al may disturb human erythropoiesis through combined effects on mature erythrocytes and cellular metabolism in late erythroid progenitors.

Aluminum Compounds↗

A putative role for histone deacetylase in the differentiation of human erythroid cells.

Histone acetylation controls the expression of specific genes in eukaryotic cells. We investigated the role of histone deacetylases (HDACs) in the differentiation of human erythroid cells, using pharmacological approaches. When CD36+ erythroid precursor cells, generated from CD34+ cells with stem cell factor, flt-3 ligand, thrombopoietin, interleukin-3, interleukin-6, and erythropoietin, were cultured with an HDAC inhibitor FK228 (depsipeptide) at a specified dose in the presence of erythropoietin, their differentiation was inhibited, as determined by the expression of CD45 and glycophorin A. Addition of the same dose of FK228 to cultures did not affect the growth of CD36+ cells. Regardless of the presence or absence of FK228, cultured CD36+ cells displayed similar proliferation kinetics. Analysis of acetylated histones revealed that FK228 upregulated the acetylation status of histones H3 and H4 in CD36+ cells. The inhibition of CD36+ cell differentiation was restored by removal of FK228 from the culture, indicating that the modification of CD36+ cell differentiation by FK228 is reversible. Furthermore, interference with histone deacetylation by FK228 inhibited the generation of CD36+ erythroid cells from CD34+ hematopoietic progenitor cells. Our results indicate the possible involvement of HDACs in human erythropoiesis, especially the regulation of erythroid cell differentiation.

Acetylation↗

The erythrotropins, new factors which stimulate thymidine incorporation and globin chain synthesis in liver erythroid cells.

A serum-free culture system of erythroid cells of fetal rabbit liver was used for the determination of the erythropoietin-like activity present in fetal calf plasma. The activity found was too high to be explained solely by the presence of erythropoietin. For this reason we decided to investigate the nature of factors present in fetal calf tissues which could have an erythropoietin-like effect in a serum-free medium. The use of fetal calf liver cells and the replacement of the 59Fe incorporation with thymidine incorporation into acid-insoluble materials improved the sensitivity of the assay. This method was used for the rapid screening for the presence of erythropoietin-like factors in reversed-phase extracts of livers, kidneys, lungs, intestines and brains from fetal calves. Intestine extracts stimulated thymidine incorporation and were therefore used as the source for the isolation by reversed-phase and gel permeation high performance liquid chromatography (HPLC) of two active factors (1 and 2). They had different retention times on reversed-phase HPLC but had very similar amino acid compositions and a molecular weight of about 3500 daltons. Both factors added to cultures of calf liver cells caused an increase of alpha and gamma globin chain synthesis equivalent to that observed in the presence of erythropoietin. However, there were important functional differences between both factors and erythropoietin in a rat liver bioassay of thymidine incorporation similar to the one described above. Factors 1 or 2 could not increase the number of cells after a 20h incubation whereas erythropoietin caused a modest increase in cell numbers. Both factors were less potent than erythropoietin in stimulating thymidine incorporation in rat liver cells. Finally, factors 1 and 2 were synergistic with erythropoietin. It is concluded that fetal calf intestine contains factors acting on erythroid cells which have different physical and biological properties from those of erythropoietin. The names erythrotropins I and II are proposed for these factors.

Animals↗

Erythropoietin. Receptor characteristics during the ontogeny of hamster yolk sac erythroid cells.

Erythropoietin (Epo) binds specifically to receptors on the surface membrane of responsive erythroid cells. In search of ontogenic changes in Epo receptor behavior, we studied characteristics of specific binding to hamster yolk sac erythroid cells during hamster ontogeny. We detected receptors specific for Epo on these cells throughout the duration of their intravascular existence (hamster gestational days 8 through 13). These receptors are saturable at an Epo concentration of 1.2 nM in the incubation medium. Attainment of equilibrium of binding prior to hormone internalization, a requirement for receptor binding assays, was possible at 10 degrees C but not at 37 degrees C. Hence, all incubations of cells with Epo were carried out at 10 degrees C. Data on specific binding analyzed by the method of Scatchard demonstrated that yolk sac erythroid cells possess a single class of Epo receptors at each stage of gestation examined. Binding affinity and numbers of receptors per cell change as ontogeny progresses: Kd (the dissociation constant) increases, a phenomenon observed in other differentiating cell systems, whereas the number of receptors per cell peaks on gestational day 10. The variability in number of receptors per cell is consonant with up and down regulation controlled by Epo availability. We propose that the progressive increase in Kd might be best explained by ontogenic changes in cell membrane structure contiguous to the receptors themselves.

Animals↗

[Aldolase binding by ghosts and plasma membranes of differentiating erythroid cells in pigeons].

During the differentiation of pigeon erythroid cells their aldolase activity considerably decreases, which is more obvious during the erythroblast reticulocyte development compared to the reticulocyte erythrocyte development. There are some common patterns in the character of aldolase binding by plasma membrane (PM) of the erythroid cells of different degrees of maturation: a high binding lability and the availability of a small portion of enzyme firmly bound to PM. During erythropoesis an increase of aldolase binding occurs. The provided data show a specific character of interaction of aldolase with erythroid membrane. The shown increase of aldolase binding may partly explain a decrease of its activity in the course of erythropoesis and is, perhaps, of adaptive character.

Animals↗

Butyrate induces selective transcriptional activation of a hypomethylated embryonic globin gene in adult erythroid cells.

An animal model of hemoglobin switching has been developed in which anemic adult chickens are treated with 5-azacytidine and sodium butyrate or alpha-aminobutyric acid, thereby resulting in activation of the embryonic rho-globin gene in adult erythroid cells. In vitro nuclear runoff transcription assays using erythroid nuclei from treated birds show that the mechanism of activation of the rho-globin gene is transcriptional whereas no transcriptional activation of the embryonic epsilon-globin gene occurs. The action of 5-azacytidine appears to be as an inhibitor of DNA methylation because other S-phase active cytotoxic drugs, when substituted for 5-azacytidine, do not cause demethylation of the embryonic globin genes, nor do they allow transcriptional activation to occur. Embryonic rho-globin gene activation in this model is not due to selection of primitive erythroid cells since a subpopulation of primitive erythroid cells is not evident either morphologically or when cells are probed for embryonic and adult globin RNA by in situ hybridization. These studies show that demethylation by 5-azacytidine is a prerequisite but not sufficient cis-regulatory event for a high level of transcriptional activation of the embryonic rho-globin gene in adult erythroid cells in vivo. The possible basis for the selective transcriptional activation by sodium butyrate in this system is discussed.

Acetylation↗

High expression of YB-1 gene in erythroid cells in patients with refractory anemia.

It has been shown that aberrant expression of a transcription factor, GATA-1, leads to maturation arrest and transformation of erythroid cells. We previously reported that a multifunctional protein, YB-1, was expressed strongly in the spleen of a GATA-1 mutant mouse, which was filled with transformed erythroblasts. This finding suggested that YB-1 has roles in erythropoiesis. In this study, we examined in vivo expression of YB-1 messenger RNA (mRNA) in bone marrow erythroid cells and erythroid leukemic cell lines. During erythroid differentiation of erythroid leukemic cell lines, the expression level of YB-1 mRNA was highest at the early phase of differentiation and then decreased. In human bone marrow cells, the in vivo expression level of YB-1 mRNA was higher in glycophorin A-positive cells than in glycophorin A-negative cells. An interesting finding was that expression of YB-1 was higher in erythroblasts in myelodysplastic syndrome-refractory anemia (MDS-RA) than in normal cells. The findings suggested that YB-1 functions in the early stage of erythropoiesis and that aberrant expression of this protein may induce hematological diseases such as MDS.

Anemia, Refractory↗

Erythroid cell differentiation.

Normal and transformed erythroid cell precursors provide the opportunity for study of a number of problems relevant to the regulation of proliferation and differentiation in a developmental system. Evidence is presented which suggests that the hormone, erythropoietin, has a primary role in regulating precursor cell proliferation. A wide variety of chemicals can modify the rate at which proliferating transformed precursors initiate expression of the genetic program characteristic of terminal erythroid differentiation. Several sites of inducer action, including the plasma membrane and chromatin, are suggested as part of the pathway which leads to the complex pattern of gene transcription responsible for differentiation.

Acetamides↗

Erythroid cells in suppressing leukemia cell growth.

This paper indicates that murine nucleated erythroid cells (EC) are able to reduce, in a dose-dependent manner, the proliferation of both L1210 lymphoma and P815 mastocytoma cells and that the leukemia cell growth inhibitory activity of unseparated bone marrow (BM) cells may be markedly augmented by their short-term culturing with erythropoietin (Epo). These results raise the intriguing possibility to utilize erythropoesis-stimulating, therapeutic strategies with the purpose of inhibiting leukemia cell growth in the body.

Animals↗

Mechanisms of manganese transport in rabbit erythroid cells.

1. The mechanisms of manganese transport into erythroid cells were investigated using rabbit reticulocytes and mature erythrocytes and 54Mn-labelled MnCl2 and Mn2-transferrin. In some experiments iron uptake was also studied. 2. Three saturable manganese transport mechanisms were identified, two for Mn2+ (high and low affinity processes) and one for transferrin-bound manganese (Mn-Tf). 3. High affinity Mn2+ transport occurred in reticulocytes but not erythrocytes, was active only in low ionic strength media such as isotonic sucrose and had a Km of 0.4 microM. It was inhibited by metabolic inhibitors and several metal ions. 4. Low affinity Mn2+ transport occurred in erythrocytes as well as in reticulocytes and had Km values of approximately 20 and 50 microM for the two types of cells, respectively. The rate of Mn2+ transport was maximal in isotonic KCl, RbCl or CsCl, and was inhibited by NaCl and by amiloride, valinomycin, diethylstilboestrol and other ion transport inhibitors. The direction of Mn2+ transport was reversible, resulting in Mn2+ efflux from the cells. 5. The uptake of transferrin-bound manganese occurred only with reticulocytes and depended on receptor-mediated endocytosis of Mn-Tf. 6. The characteristics of the three saturable manganese transport mechanisms were similar to corresponding mechanisms of iron uptake by erythroid cells, suggesting that the two metals are transported by the same mechanisms. 7. It is proposed that high affinity manganese transport is a surface representation of the process responsible for the transport of manganese across the endosomal membrane after its release from transferrin. Low affinity transport probably occurs by the previously described Na(+)-Mg2+ antiport, and may function in the regulation of intracellular manganese concentration by exporting manganese from the cells.

Animals↗

Ontogeny of hamster hemoglobins in yolk-sac erythroid cells in vivo and in culture.

During mammalian hemoglobin ontogeny, synthesis of the earliest globin chains (embryonic) is ultimately replaced by synthesis of globin chains (adult) characteristic of the fully formed organism. Elements of control of initiation, progression, and completion of globin-chain ontogeny are poorly understood. In search of a cell culture system in which ontogeny might be studied under closely controlled experimental conditions, we chose erythroid cells of the hamster embryo. First, the ontogeny of globin chains was defined in these yolk-sac-derived erythroid cells from day 10 through day 13 in gestation. Amounts of individual embryonic and adult globin chains were quantified, as were their rates of synthesis. Next, analogous studies were performed on yolk-sac erythroid cells from day 10 in gestation (prior to the appearance of fetal liver) grown in culture for 3 days, corresponding to days 10-13 in vivo. The ontogenic program in culture was virtually identical to that in vivo. Approximately 70% of active globin synthesis was embryonic at day 10 in gestation (day 0 of culture), declining to 30% by day 13 in gestation (day 3 of culture). Whereas only trace synthesis of the adult non-alpha chains (beta major and beta minor) were initially observed, their combined active synthesis achieved a level of approximately 30% 3 days later both in vivo and in culture. Cell hemoglobin content and cell morphology were similar in both systems. We conclude that an ontogenic program for globin-chain synthesis exists in these primitive erythroid cells, overriding possible influences of cell environment. Further, we suggest that these cells in culture provide a means of examining cell mechanisms associated with globin-gene ontogeny under controlled experimental conditions.

Animals↗

[NADP+ catabolic enzymes in differentiating rabbit erythroid cells].

NADP-glycohydrolase and NADP-pyrophosphates activities were examined during the rabbit erythroid cell differentiation. The former is high in erythroblast lysates, especially in the erythroblast nuclei. As erythroid cell maturation proceeds, the activity of NADP-glycohydrolase decreases. At the first step (erythroblast-reticulocyte transformation), this activity falls down more than by 20 times, whereas at the second step (reticulocyte-erythrocyte transformation) it decreases no more than twice. NADP-glycohydrolase is associated with the stroma of erythroid cells throughout their maturation, being bound with the nucleus in erythroblasts. NADP-pyrophosphatase activity has been detected in reticulocytes and mature cells only. The role of NADP- and NAD-glycohydrolases for characterization of the intracellular metabolic pools is discussed.

Animals↗

Rapid reduction of methemoglobin in rat bone marrow erythroid cells.

Methemoglobin reduction was shown to proceed much more rapidly in erythroid cells from rat bone marrow than in rat erythrocytes. Methemoglobin reduction in suspensions of intact, nitrite-treated bone marrow cells does not depend on the presence of glucose in the incubation mixture, even after the cells have been stored in substrate-free medium. 2-Deoxyglucose and iodoacetate prevent the reduction from proceeding to completion. The results suggest that, relative to erythrocytes, immature erythroid cells more efficiently catalyze methemoglobin reduction and more effectively store metabolites which provide electrons for this reaction.

Animals↗

Characterization of amino acid transport during erythroid cell differentiation.

We have studied the changes in amino acid transport in fetal erythroid cells isolated from rat fetal liver at different gestation days. Our results show that System A transport as measured by the Na+-dependent uptake of 2-(methylamino)isobutyric acid (MeAIB) was conspicuous at day 13 but virtually disappeared between days 16 and 18. In contrast, the activity of System ASC measured by the Na+-dependent uptake of MeAIB-insensitive threonine uptake increased after day 14 and was optimal between days 16 and 18. This transport system regressed in activity with further maturation, but remained conspicuously saturable in the matured red blood cell. Interestingly, the newly discovered Na+-independent System asc (Vadgama, J. V., and Christensen, H.N. (1985) J. Biol. Chem. 260, 2912-2921), selective for the uptake of test substrates threonine, serine, and alanine, was present in these erythroid cells. Its activity increased during gestation days 16-18. System L transport was present simultaneously with the Na+-independent System asc. As we had previously demonstrated for the pigeon red blood cell, these two transport systems are kinetically independent as confirmed with inhibition studies and the special selectivity of System L to trans stimulation. Tryptophan uptake could be attributed predominantly to System L, as also observed for the nucleated pigeon red blood cells and certain other cells. Arginine showed its familiar Na+-independent mode of uptake as a cation throughout the interval of study. An exceptional Na+-dependent component of arginine uptake emerged after day 14, peaked at day 18, and then disappeared on further maturation of the erythroid cell.

Amino Acids↗

Developmental expression of mouse erythrocyte protein 4.2 mRNA: evidence for specific expression in erythroid cells.

Erythrocyte protein 4.2 (P4.2) is an important component of the erythrocyte membrane skeletal network with an undefined biologic function. Presently, very little is known about the expression of the P4.2 gene during mouse embryonic development and in adult animals. By using the Northern blot and in situ hybridization techniques, we have examined the spatial and temporal expression of the P4.2 gene during mouse development. We show that expression of the mouse P4.2 gene is temporally regulated during embryogenesis and that the P4.2 mRNA expression pattern coincides with the timing of erythropoietic activity in hematopoietic organs. P4.2 transcripts are first detected in embryos on day 7.5 of gestation and are localized exclusively in primitive erythroid cells of yolk sac origin. These erythroid cells remain to be the only source for P4.2 expression until the switch of the hematopoietic producing site to fetal liver. In mid- and late-gestation periods, P4.2 mRNA expression is restricted to the erythroid cells in fetal liver and to circulating erythrocytes. Around and after birth, the site for P4.2 expression is switched from liver to spleen and bone marrow, and P4.2 transcripts are only detected in cells of the erythroid lineage. These results provide the evidence for specific P4.2 expression in erythroid cells. In addition, the timing and pattern of expression of the P4.2 gene suggest the specific regulation of the P4.2 gene.

Animals↗

Acetylation of human fetal hemoglobin occurs throughout erythroid cell maturation.

The biosynthesis of human acetylated fetal hemoglobin (Hb F1) has been examined by incubating the following cell types with [3H]leucine: (a) burst-forming unit erythroid cells cultured from umbilical cord mononuclear cells, (b) infant bone marrow, (c) umbilical cord blood, and (d) peripheral blood cells from adults with elevated fetal hemoglobin. Newly synthesized Hb F1 was 18-20% that of Hb F0 in burst-forming unit erythroid cells which were immature, mature, or in an intermediate state of development. In infant marrow and in infant and adult peripheral blood the extant Hb F1 comprised 10.8 +/- 1.8% of the total Hb F. In marrow cells the specific radioactivity (cpm/mg) of Hb F1 was 1.4-2.0-times greater than that of Hb F0. In peripheral blood cells these ratios were slightly greater. [3H]Leucine-labeled infant bone marrow, umbilical cord blood, and adult peripheral blood cells were subjected to density gradient ultracentrifugation. The ratios of specific radioactivity for Hb F1/Hb F0 increased from 1.0-1.8 in the lightest cell zone to 5.2-9.0 in the more dense cells. Thus the biosynthesis of Hb F1 is enhanced in cells which are more mature than those responsible for the bulk of hemoglobin synthesis, and the acetylation of Hb F provides a marker of erythroid cell maturation.

Acetylation↗

Correction for erythroid cell contamination in microassay for immunophenotyping of neonatal lymphocytes.

Immunophenotyping of blood lymphocyte subpopulations in neonates and young infants is hampered by the limited amount of blood that can be collected. Contamination of the flow cytometric "lympho-gate" by normoblasts and analysed erythrocytes, and therefore the underestimation of the relative frequencies of lymphocyte subpopulations, interferes with the precise calculation of absolute counts. A microassay was developed by adapting the lysed whole blood technique. Triple immunostaining in a single antibody staining step was used to reduce washing steps and cell loss. Introduction of a triple staining for CD71 (expressed by erythroid precursors), glycophorin A (GpA, expressed by all erythroid cells), and CD45 (expressed by all leucocytes) permitted the relative frequencies of normoblasts (CD71(+)/GpA+/CD45(-) population) and unlysed erythrocytes (CD71(-)/GpA+/CD45(-) population)to be identified and measured within the "lympho-gate" of neonatal cord blood samples. Particularly high frequencies were found (median: 31%) in cord blood samples from preterm neonates. These erythroid cells disappear rapidly by 1 week of age The relative frequencies of erythroid cells can be used to calculate correct lymphocyte subpopulation values. Using only 0.5-0.8 ml of blood, this micro- assay would also be suitable for rapid prenatal immunodiagnosis of congenital immunodeficiencies.

Antigens, CD↗