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Effect of Ochratoxin A on human haematopoietic progenitors proliferation and differentiation: an in vitro study.

Ochratoxin A (OTA) is a mycotoxin food and feed-contaminant known to induce nephro and hepatotoxicity in human and animal, and related to human Balkan Endemic Nephropathy. However, haematological troubles are also observed in case of acute OTA intoxication. These disorders observed in animals emphasise the necessity to determine if OTA exposure induce damage to haematopoietic system in human. The effect on haematopoiesis has been evaluated using in vitro clonogenic assays of the three lineages i.e., platelet, red and white blood cell progenitors. Human erythroblastic and granulomonocytic progenitor proliferation is decreased in the presence of 10(2) microM OTA. Platelet progenitors were destroyed at 10(2) microM OTA. For the lowest concentrations haematopoietic progenitor proliferation is not affected by OTA. Comparison with other mycotoxins known to be myelotoxic shows that OTA is less myelotoxic than trichothecenes.

Cell Differentiation↗

Microenvironment created by stromal cells is essential for a rapid expansion of erythroid cells in mouse fetal liver.

Mouse stromal cell lines (FLS lines), established from the livers of 13-day gestation mouse fetus, supported the proliferation and differentiation of the erythroid progenitor cells from mouse fetal livers and bone marrow in a semisolid medium in the presence of erythropoietin. A large erythroid colony of over 1000 benzidine-positive erythroid cells was developed from a single erythroid progenitor cell on the FLS cell layer after 4 days of culture. When in close contact with the layer, the erythroid progenitor cells divided rapidly with an average generation time of 9.6 h and mature erythroid cells, including enucleated erythrocytes, were produced. The present studies demonstrate that the microenvironment created by the stromal cells can support the rapid expansion of erythropoietic cell population in the fetal liver of mice.

Animals↗

Combined action of c-kit and erythropoietin on erythroid progenitor cells.

Mutations at the murine dominant-white spotting locus (W) (c-kit) affect various aspects of hematopoiesis. We have made antibodies against c-Kit with the synthetic peptides deduced from the murine c-kit gene and examined the role of c-Kit in erythropoiesis. The antibody inhibited the stromal cell-dependent large colony formation of the erythroid progenitors. In the culture of erythropoietin-responsive erythroid progenitors of the anemia-inducing Friend virus-infected mouse spleen, the antibody inhibited only proliferation, but not differentiation of the progenitor cells. The inhibition was effective only at the early phase (within 6 hours after erythropoietin addition) before the cells start to proliferate induced by erythropoietin. During the early phase, erythropoietin down-regulated c-kit gene expression. These results suggest a mechanism of combined action of c-Kit with erythropoietin on the lineage-restricted erythroid progenitor cells.

Animals↗

Immunoelectron microscopic detection of band 3 protein during erythroid cell differentiation by a monoclonal antibody.

We created a monoclonal antibody, designated EB1 (IgM, kappa), that reacts with erythroblasts by fusion of P3-X63-Ag8.653 with splenocytes of rats immunized with erythroblastic islands isolated from mice spleens. Western blotting revealed that EB1 reacted with the band 3 protein of the erythrocytic membrane. It stained erythrocytes and erythroblasts, forming clusters in the bone marrow, splenic red pulp, and fetal liver, but did not stain other tissues in the cryostat sections. The EB1 antigen was detected during dimethyl sulfoxide-induced differentiation of murine erythroleukemia cells. Immunoelectron microscopy revealed that the EB1 antigen was expressed from the basophilic erythroblasts during normal erythroid differentiation. Preferential segregation of the EB1 antigen on the cell membrane of the nucleating erythroblasts was not observed. These results suggest that EB1 is specific for erythrocyte band 3 protein and may be useful for studying erythroid cell differentiation.

Animals↗

A novel way to induce erythroid progenitor self renewal: cooperation of c-Kit with the erythropoietin receptor.

Red blood cells are of vital importance for oxygen transport in vertebrates. Thus, their formation during development and homeostasis requires tight control of both progenitor proliferation and terminal red cell differentiation. Self renewal (i.e. long-term proliferation without differentiation) of committed erythroid progenitors has recently been shown to contribute to this regulation. Avian erythroid progenitors expressing the EGF receptor/c-ErbB (SCF/TGFalpha progenitors) can be induced to long-term proliferation by the c-ErbB ligand transforming growth factor alpha and the steroids estradiol and dexamethasone. These progenitors have not yet been described in mammals and their factor requirements are untypical for adult erythroid progenitors. Here we describe a second, distinct type of erythroid progenitor (EpoR progenitors) which can be established from freshly isolated bone marrow and is induced to self renew by ligands relevant for erythropoiesis, i.e. erythropoietin, stem cell factor, the ligand for c-Kit and the glucocorticoid receptor ligand dexamethasone. Limiting dilution cloning indicates that these EpoR progenitors are derived from normal BFU-E/CFU-E. For a detailed study, mEpoR progenitors were generated by retroviral expression of the murine Epo receptor in bone marrow erythroblasts. These progenitors carry out the normal erythroid differentiation program in recombinant differentiation factors only. We show that mEpoR progenitors are more mature than SCF/TGFalpha progenitors and also do no longer respond to transforming growth factor alpha and estradiol. In contrast they are now highly sensitive to low levels of thyroid hormone, facilitating their terminal maturation into erythrocytes.

Animals↗

Transferrin-binding capacity by rat bone marrow populations containing different proportions of erythroid cells.

The transferrin-binding capacity of rat bone marrow cells and different erythroid-enriched populations from rat bone marrow has been studied and compared with that previously reported for pure reticulocyte populations. Two components with different transferrin-binding capacities were found. The one with higher affinity was present mainly in erythroid cells and showed an association constant similar to that observed in reticulocyte populations. The component with a lower transferrin affinity was observed mainly in bone marrow fractions containing low proportions of erythroid cells.

Anemia↗

Gene expression profiling of human erythroid progenitors by micro-serial analysis of gene expression.

We compared the expression profiles of highly purified human CD34+ cells and erythroid progenitor cells by micro-serial analysis of gene expression (microSAGE). Human CD34+ cells were purified from granulocyte colony-stimulating factor-mobilized blood stem cells, and erythroid progenitors were obtained by cultivating these cells in the presence of stem cell factor, interleukin 3, and erythropoietin. Our 10,202 SAGE tags allowed us to identify 1354 different transcripts appearing more than once. Erythroid progenitor cells showed increased expression of LRBA, EEF1A1, HSPCA, PILRB, RANBP1, NACA, and SMURF. Overexpression of HSPCA was confirmed by real-time polymerase chain reaction analysis. MicroSAGE revealed an unexpected preferential expression of several genes in erythroid progenitor cells in addition to the known functional genes, including hemoglobins. Our results provide reference data for future studies of gene expression in various hematopoietic disorders, including myelodysplastic syndrome and leukemia.

Antigens, CD34↗

In vitro proliferation potential of AC133 positive cells in peripheral blood.

AC133 antigen is a novel marker for human hematopoietic stem/progenitor cells. In this study, we examined the expression and proliferation potential of AC133(+) cells obtained from steady-state peripheral blood (PB). The proportion of AC133(+) cells in the CD34(+) subpopulation of steady-state PB was significantly lower than that of cord blood (CB), although that of cytokine-mobilized PB was higher than that of CB. The proliferation potential of AC133(+)CD34(+) and AC133(-)CD34(+) cells was examined by colony-forming analysis and analysis of long-term culture-initiating cells (LTC-IC). Although the total number of colony-forming cells was essentially the same in the AC133(+)CD34(+) fraction as in the AC133(-)CD34(+) fraction, the proportion of LTC-IC was much higher in the AC133(+)CD34(+) fraction. Virtually no LTC-IC were detected in the AC133(-)CD34(+) fraction. In addition, the features of the colonies grown from these two fractions were quite different. Approximately 70% of the colonies derived from the AC133(+)CD34(+) fraction were granulocyte-macrophage colonies, whereas more than 90% of the colonies derived from the AC133(-)CD34(+) fraction were erythroid colonies. Furthermore, an ex vivo expansion study observed expansion of colony-forming cells only in the AC133(+)CD34(+) population, and not in the AC133(-)CD34(+) population. These findings suggest that to isolate primitive hematopoietic cells from steady-state PB, selection by AC133 expression is better than selection by CD34 expression.

AC133 Antigen↗

Differential expression of bcl-2 homologs in human CD34(+) hematopoietic progenitor cells induced to differentiate into erythroid or granulocytic cells.

The Bcl-2 family of proteins has been shown to play a central role in the regulation of apoptosis. We have examined the expression of several Bcl-2 homologs upon stimulation of CD34(+) human hematopoietic progenitor cells. CD34(+) cells were induced to differentiate into predominantly erythroid cells in the presence of erythropoietin (Epo) and stem cell factor (SCF), while the addition of G-CSF and SCF led to differentiation predominantly into granulocytic cells, as demonstrated by immunophenotyping and morphological examination of cultured cells. In Epo- and SCF-stimulated cells, we found a marked increase in the level of Bcl-x(L) protein expression and downregulation of Bax expression, apparent from day 4 and more pronounced on days 8 and 21. In contrast, Bcl-x(L) protein expression was downregulated in G-CSF- and SCF-stimulated cells compared with cells cultured in medium alone, whereas there was no sign of change in the level of Bax. Mcl-1 expression showed a biphasic expression pattern in both early erythropoiesis and early granulopoiesis, but with an inverse regulation. Thus, Mcl-1 levels initially decreased in granulocytic progenitor cells and increased in erythroid progenitor cells. Finally, Bcl-2 expression was significantly downregulated in both Epo and SCF and G-CSF- and SCF-stimulated cells. The role of the distinct upregulation of Bcl-x(L) in early erythroid differentiation was further examined by use of specific ribozymes against Bcl-x(L). Addition of Bcl-x(L) ribozymes promoted a clear increase in cell death of Epo- and SCF-stimulated cells, while erythroid differentiation was not affected. In conclusion, we found a distinct regulation of several Bcl-2 family members in CD34(+) cells dependent on the cytokine stimulation given. The use of Bcl-x(L)-specific ribozymes suggested that Bcl-x(L) is important for survival but not for differentiation of erythroid progenitor cells.

Adult↗

Defective ribosomal protein gene expression alters transcription, translation, apoptosis, and oncogenic pathways in Diamond-Blackfan anemia.

Diamond-Blackfan anemia (DBA) is a broad developmental disease characterized by anemia, bone marrow (BM) erythroblastopenia, and an increased incidence of malignancy. Mutations in ribosomal protein gene S19 (RPS19) are found in approximately 25% of DBA patients; however, the role of RPS19 in the pathogenesis of DBA remains unknown. Using global gene expression analysis, we compared highly purified multipotential, erythroid, and myeloid BM progenitors from RPS19 mutated and control individuals. We found several ribosomal protein genes downregulated in all DBA progenitors. Apoptosis genes, such as TNFRSF10B and FAS, transcriptional control genes, including the erythropoietic transcription factor MYB (encoding c-myb), and translational genes were greatly dysregulated, mostly in diseased erythroid cells. Cancer-related genes, including RAS family oncogenes and tumor suppressor genes, were significantly dysregulated in all diseased progenitors. In addition, our results provide evidence that RPS19 mutations lead to codownregulation of multiple ribosomal protein genes, as well as downregulation of genes involved in translation in DBA cells. In conclusion, the altered expression of cancer-related genes suggests a molecular basis for malignancy in DBA. Downregulation of c-myb expression, which causes complete failure of fetal liver erythropoiesis in knockout mice, suggests a link between RPS19 mutations and reduced erythropoiesis in DBA.

Adult↗

Neutralization of autocrine transforming growth factor-beta in human cord blood CD34(+)CD38(-)Lin(-) cells promotes stem-cell-factor-mediated erythropoietin-independent early erythroid progenitor development and reduces terminal differentiation.

Transforming growth factor (TGF)-beta1 exerts autocrine and paracrine effects on hematopoiesis. Here, we have attempted to evaluate the effect of endogenous TGF-beta1 on early erythroid development from primitive human hematopoietic stem cells (HSCs) and to assess the effects of TGF-beta1 on different phases of erythropoiesis. Cord blood CD34(+)CD38(-) lineage-marker-negative (Lin(-)) cells were cultured in serum-free conditions using various combinations of stem cell factor (SCF), erythropoietin (Epo), and TGF-beta-neutralizing antibody. Generation of erythroid progenitors was assessed using colony assay and flow cytometry. Terminal erythroid differentiation was examined when SCF/Epo-stimulated cells were recultured in the presence of Epo with and without TGF-beta1. Anti-TGF-beta augmented the proliferation of CD34(+)CD38(-)Lin(-) cells (day 21) in SCF-stimulated (6.4-fold +/- 1.5-fold) and SCF/Epo-stimulated (2.9-fold +/- 1.2-fold) cultures. Cells stimulated by SCF/Epo underwent similar levels of erythroid differentiation with and without anti-TGF-beta. While SCF alone stimulated the production of tryptase-positive mast cells, cells stimulated by SCF/anti-TGF-beta were predominantly erythroid (CD36(+)CD14(-) and glycophorin A positive). A distinct expansion of erythroid progenitors (CD34(+)CD36(+)CD14(-)) with the potential to form erythroid colonies was seen, revealing early Epo-independent erythroid development. In contrast, the kinetics of erythroid progenitor generation from primitive HSCs indicate that TGF-beta1 is not inhibitory in late erythropoiesis, but it accelerated the conversion of large BFU-E into colony-forming units-erythroid. Finally, TGF-beta1 accelerated Epo-induced terminal erythroid differentiation and resulted in a greater level of enucleation (22% +/- 6% versus 7% +/- 3%) in serum-free conditions. Serum addition stimulated enucleation (54% +/- 18%), which was lower (26% +/- 14%) with anti-TGF-beta, suggesting that optimal erythroid enucleation is Epo dependent, requiring serum factors including TGF-beta1.

ADP-ribosyl Cyclase↗

The proportion of erythroid mitoses in normal human bone marrow in short-term culture systems.

The proportion of erythroid cells in mitosis was determined in direct preparations and in synchronized and unsynchronized short-term cultures from normal human bone marrow. The stimulating effect on the proportion of erythroid mitoses of bovine serum albumin (BSA), erythropoietin (EP) and human leucocyte conditioned medium (HLC) derived from stimulated lymphocytes, was also analyzed in short-term marrow cultures. In synchronized and unsynchronized cultures, the proportion of erythroid mitoses was markedly lower than in direct preparations, with a mean of 75% in the direct compared to 11% in the unsynchronized cultures and 7% in synchronized. Statistical analysis showed that EP had a substantial influence on the erythroid cells while HCL had a minor effect.

Bone Marrow Cells↗

A method for identifying megakaryocytic and erythroid cells by a combined immunocytochemical and cytochemical stain.

The effectiveness of immunoperoxidase staining for platelet glycoprotein IIb/IIIa coupled with cytochemical staining for hemoglobin has been evaluated as a dual staining technique for identifying lineage-specific characteristics of the megakaryocytic and erythroid series in cells of the same hemopoietic tissue preparation. A sequence of staining was established which produced a circumferential brown stain around cells of the megakaryocytic series, and a diffuse yellow to orange stain in the cytoplasm of cells of the erythroid series. Each staining reaction possessed a high degree of specificity and sensitivity which enabled the combined stain to provide a convenient means for establishing the megakaryocytic and erythroid nature of individual cells in hematological specimens where classification cannot be achieved with certainty on morphological grounds.

Cell Separation↗

A method for enriching myeloid (CFU-GM) and erythroid (BFU-E) progenitor cells from human cord blood by accessory cell depletion.

Human cord blood provides a convenient alternative to bone marrow as a rich source of hemopoietic progenitor cells. This study reports a simple means for enriching a cord blood progenitor cell population by accessory cell depletion. Two methods of monocyte depletion were tested. A Cytodex 3 microcarrier system using collagen coated dextran beads was compared to the more commonly used method of plastic plate adhesion. The method of plastic plate adhesion gave a significantly higher cell recovery. T cell depletion using a recently characterized rat monoclonal antibody which fixes human complement was also investigated. A combined method of monocyte depletion by plate adhesion and T cell depletion resulted in the removal of > 96% of monocytes and > 98% of T cells. This led to a significant enrichment of myeloid (CFU-GM) and erythroid (BFU-E) colony growth. Such enriched progenitor cell populations provide a useful starting population for any study on hemopoiesis.

Cell Separation↗

Measurement of total and fetal hemoglobin in cultured human erythroid cells by a novel micromethod.

The present paper reports on the application of a simple micromethod for quantitation of total and fetal hemoglobin in small volumes of diluted erythroid cell hemolysates. A modified alkaline denaturation procedure was used to denature and precipitate non-fetal hemoglobins and the tetramethylbenzidine procedure was used for quantitation of the soluble hemoglobin. Using a combination of these procedures, total hemoglobin concentrations as low as 0.2 mg% (2 micrograms/ml) and a fetal hemoglobin proportion of 0.5% could be reliably determined. We have utilized this procedure to study two aspects of hemoglobin production in human erythroid cells grown in culture; the proportion of fetal hemoglobin of cells in culture as compared to that in the peripheral blood of the donors, and the kinetics of hemoglobin production during maturation of these cultured cells. The results show that the cultured erythroid cells have a hemoglobin phenotype similar to the individual from whom they are derived and that erythroid differentiation may be studied in vitro in these cultured cells by measurement of these and other parameters.

Anemia, Sickle Cell↗

Serum erythropoietin and circulating BFU-E in patients with multiple myeloma and anaemia but without renal failure.

In 30 patients with multiple myeloma (MM) and mild to moderate anaemia (mean Hb 107 g/l, 95% confidence limit (CL) 102-113) but no evidence of renal failure (serum creatinine < 110 mumol/l), serum erythropoietin (EPO) showed significant inverse logarithmic correlation with the haemoglobin level (r = -0.57, p = 0.001). The observed/expected ratio of log-EPO in patients with MM (mean 0.96, CL 0.89-1.04) was similar to that of 119 subjects (mean 1.01, CL 0.96-1.05) with or without anaemia (mean Hb 116 g/L, CL 110-121) but without renal failure. The concentration of circulating erythroid progenitors (BFU-E) in 10 MM patients in plateau phase was significantly reduced (mean 0.70 x 10(5)/l of blood, CL 0.34-1.06) compared to that of 8 normal controls (mean 3.57, CL 1.60-5.55, p = 0.011) In vitro sensitivity of the BFU-E to EPO in the patients with MM was comparable to that of the normal controls. It appears that in MM there is an appropriate EPO response to anaemia but even in the plateau phase the number of circulating BFU-E is reduced, reflecting a degree of marrow failure. However, the progenitors are normally sensitive to EPO in such patients, and therapeutic doses of EPO may correct the anaemia by a pharmacological rather than a physiological effect.

Anemia↗

Cell surface antigen expression in human erythroid progenitors: erythroid and megakaryocytic markers.

This review summarizes the changes in cell surface antigen expression during proliferation and differentiation of human erythroid progenitors. The content is based on our experimental data obtained from complement-mediated cytotoxicity assays against hematopoietic progenitors and a combined technique of sequential micromanipulations of paired daughter cells derived from erythroid burst-forming units (BFU-E) and immunostaining with a panel of monoclonal antibodies, as well as from current information. BFU-E has CD34, CD41a (platelet glycoprotein[GP]IIb/IIIa) and CD41b(GPIIb) antigens. Paired daughter cells derived from BFU-E have CD41a, CD41b, CD71 (transferrin receptor) and HLA-DR antigens, but not CD34 or CD33 antigen. The CD36 antigen (thrombospondin receptor or GPIV) is first expressed on the cells after 5 days of culture, in agreement with the report that the anti-CD36 positive fraction contained a greater part of the erythroid colony-forming units (CFU-E). The blood group A antigen is first expressed on cells from aggregates derived from BFU-E after 5 days of culture. Glycophorin A is expressed on cell surface after 7 days of culture when proerythroblasts first appear. Hemoglobin alpha is expressed after 8 days of culture and coincides with the first appearance of basophilic erythroblasts. This review provides useful information on the identification of leukemic cells from poorly differentiated acute leukemias such as early erythroblastic leukemia and acute megakaryoblastic leukemia, and is useful in the understanding of the commitment and differentiation of erythroid and megakaryocytic progenitors in normal hematopoiesis.

Antigens, Surface↗