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Loss of stem cell repopulating ability upon transplantation. Effects of donor age, cell number, and transplantation procedure.

Long-term functional capacities of marrow cell lines were defined by competitive repopulation, a technique capable of detecting a small decline in repopulating abilities. There was little or no difference between cells from old and young donors, but a single serial transplantation caused a large decline in repopulating ability. Varying the numbers of marrow cells transplanted into the initial carrier from 10(5) to 10(7) did not alter the ability of the carrier's marrow cells to repopulate in competition with previously untransplanted cells. This ability was improved only in carriers that had received 10(8) marrow cells, although deleterious effects of transplantation were still present. These effects were not solely caused by cell damage from the transplantation procedure, because transplantation by parabiosis, or recovery from sublethal irradiation without transplantation, reduced repopulating abilities as much as transplanting 10(5) to 10(7) marrow cells. The transplantation effect also was not caused solely by irradiation, because the same effect appeared in unirradiated W/Wv carriers. The transplantation effect was more pronounced when donors were identified by hemoglobin type than by chromosome markers, implying that nonerythroid cell lines may be less affected by transplantation than erythroid precursor cells. When the effects of a lifetime of normal function and a single transplantation were compared, the latter caused 3-7 times more decline in repopulating abilities of phytohemagglutinin-responsive cell precursors, and at least 10-20 times more decline in erythroid cell precursors. Stem cell lines can be serially transplanted at least five times before losing their ability to repopulate and save lethally irradiated recipients or to cure genetically anemic mice. Therefore, if transplantation causes an acceleration of the normal aging process, these figures suggest that stem cells should be able to function normally through at least 15-50 life spans.

Aging↗

Maturation-dependent adhesion of human B cell precursors to the bone marrow microenvironment.

Murine B cell precursors can be induced to proliferate in culture if allowed to bind to bone marrow derived adherent cells prepared under specific conditions. We studied the binding of human B cell precursor subpopulations to various in vitro microenvironments to determine which conditions may potentially be suitable models for human B precursor differentiation. Using the markers CD10, CD34, and CD20, B lineage populations of increasing maturation were quantitated: CD10+/CD34+, CD10+/CD20-, CD10+/CD20+, and CD10-/CD20+ cells in marrow, and CD10-/CD20+ mature B cells in peripheral blood. The adhesion of subpopulations of blood and marrow-derived light density cells to adherent cell layers or matrix was studied following a 2-h incubation in 24-well plates. The absolute number of bound B lineage cells was determined by cell counts and flow cytometry analysis. The adherence of B lineage cells to passaged human marrow fibroblasts (BM-FB) was highest in the most immature CD10+/CD34+ cells (34.3 +/- 4.2%), decreasing steadily with each stage of maturation to the peripheral blood B cells (11.2 +/- 2.4%). Increased adhesion of CD10+ B cell precursors relative to CD10-/CD20+ marrow B cells was confirmed by adhesion studies using sorted cells. The two most immature B lineage cells (CD10+CD34+ and CD10+/CD20-) showed more adherence to BM-FB than any other cell type tested, except for monocytes. Only B lineage precursor cells, erythroid precursors and CD10-/CD34+ cells showed significantly greater binding to BM-FB than to plastic. B lineage precursors bound equally well to primary and passaged human marrow fibroblasts, but bound significantly less well to passaged human foreskin fibroblasts, primary human marrow stroma, extracellular matrix of marrow fibroblasts, or fibronectin. These results suggest that specific binding to marrow fibroblasts is part of the differentiation program of early B lineage precursors. This binding activity gradually and predictably decreases during B lineage differentiation, in contrast to expression of other binding receptors, such as LFA-1 and CD44, which increase during B lineage maturation.

Antigens, Differentiation, B-Lymphocyte↗

Cell lineage involvement in four patients with myelodysplastic syndrome and t(1;7) or trisomy 8 studied by simultaneous immunophenotyping and fluorescence in situ hybridization.

Four patients with myelodysplastic syndrome (MDS), one with t(1;7) and three with trisomy 8, were studied by immunophenotyping and fluorescence in situ hybridization (FISH) to assess cell lineage involvement. The t(1;7) was detected using a biotin-labeled chromosome 1 centromere-specific DNA probe. This aberration was present in CD34-positive stem cells, the erythroid cell lineage (GPA+), and the granulocytic/monocytic (CD13+ and CD64+) cell lineages. We were not able to demonstrate the abnormality in the lymphoid cell lineages. In the patients with trisomy 8, the aberration was detected with chromosome 8 centromere-specific DNA probe or by chromosome in situ suppression hybridization (CISS) with a chromosome 8-specific library probe. The trisomy was detected in stem cells, erythroid precursor cells, megakaryocytes, and granulocytes/monocytes. In these MDS patients, the chromosome aberrations appear to occur only in cells of myeloid lineage.

Aged↗

[Molecular and cellular mechanisms of erythropoiesis regulation].

The paper presents the results of recent studies of the molecular and cell-cellular mechanisms of physiological regulation of the differentiation and proliferation of erythroid cell precursors and the reproduction of erythropoietin in the kidneys, hormone-sensitive cell reception, the mechanisms of transduction of an erythropoietic signal from the receptor of a cell to its genome, the mechanisms of erythropoietic cell-cellular interactions in the bone marrow.

Animals↗

Comparative effects of chlorozotocin and BCNU on hematopoietic precursor cells.

Comparative studies to determine the suppressive effects of chlorozotocin (2-[3-(2-chloroethyl)-3-nitrosoureido]-D-glucopyranose) and BCNU (1,3-bis[2-chloroethyl]-1-nitrosourea) on mouse and human hematopoietic precursor cells: granulocyte-macrophage precursor cells (CFU-gm), late erythroid precursor cells (CFU-e), and early erythroid precursor cells (BFU-e) were performed after in vitro incubation of 1 h with drug concentrations based on clinical administration levels. The suppressive effect of chlorozotocin on CFU-gm, BFU-e, and CFU-e hematopoietic precursor cells in the mouse was less than that of BCNU with the most significant difference seen in CFU-e colony formation. For human hematopoietic progenitor cells, however, the suppressive effect of chlorozotocin was far less than that of BCNU. When the effects of 40 micrograms/ml of chlorozotocin and 20 micrograms/ml of BCNU on human marrow were compared, there were statistically significant differences found for CFU-gm colony formation, and BFU-e and CFU-e colony numbers were significantly different for the two drugs at all comparable concentrations tested. Our results confirm the clinical data, and establish that the effects of chlorozotocin on human hematopoietic precursor cells are minimal.

Animals↗

[Erythropoiesis in myelodysplastic syndrome detected by multiparameter flow cytometry].

By staining human bone marrow cells with a monoclonal antibody reacting with surface antigens on erythroid precursor cells (AS-E1) and with propidium iodide reacting with nuclear DNA, we have evaluated the proliferative activity of erythropoiesis in patients with myelodysplastic syndromes using flow cytometric analysis. Comparing 36 patients (13 RA/RAS, 13 RAEB, 10 RAEB-t) with seven normal controls, significant differences in both the percentage of erythroid precursor cells and the fraction of these cells in the S or S-G2M-phase of the DNA cell cycle between the four groups were found. Since neither the percentage of erythroid precursor cells nor their fraction in S or S-G2M phase alone was found to characterize their proliferative activity, we calculated the proliferative fractions of the erythroid cells, i.e. the number of the erythroid precursor cells in S or S-G2M related to all bone marrow cells in S or S-G2M phase. Applying these parameters, we found significantly increased proliferative fractions of erythroid precursor cells in the RA/RAS patients compared to the normal controls (p-0.03 and 0.002 respectively), as well as a highly significant decrease with disease progression.

Cross-Sectional Studies↗

Hemopoietic effects in mice of a lipid A-associated protein.

The effects of the bacterial cell-wall components (BCWC) lipid A and lipid A-associated protein (LAP) on humoral and cellular hemopoietic parameters were investigated in mice. Both lipid A and LAP increased serum levels of granulocyte-macrophage colony-stimulating factors (CSF) in C57BL/6 mice. In C3H/HeJ mice the CSF responses to lipid A and LAP were 7 and 3 fold less than the corresponding CSF responses found in C3H/GSF mice. Both BCWC increased the numbers of splenic multipotential hemopoietic stem cells (CFUS) as well as colony-forming cells (CFC) for neutrophilic granulocytes, macrophages, eosinophils and megakaryocytes. Lipid A but not LAP caused a marked decrease in the femoral numbers of B lymphocyte colony-forming cells (BL-CFC). The Bl-CFC incidence in the spleen or in the mesenteric lymph node changed little if at all after injection of either of the two BCWC. Morphological analysis of marrow cells showed an increase in the proportion of myeloid cells and a concomitant decrease in the proportion of erythroid precursor cells after injection of both BCWC. In the spleen, lipid A but not LAP caused an increase in the proportion of myeloid cells, erythroid precursor cells and plasma cells. In all experiments where both BCWC showed activity, lipid A was more potent than LAP on a weight basis.

Animals↗

Putative myeloma precursor cells expressing 2,6 sialic acid-modified antigens actually belong to the erythroid lineage.

The Golgi enzyme alpha2,6-sialyltransferase modifies glycoconjugates by adding sialic acid. In lymphocytes, different epitopes that result from this modification have been identified by the B cell-related CDw75, CDw76, HB4 or HB6 Ab. We previously described positive staining with these Ab of a highly transferrin receptor-positive (CD71) cell type in the bone marrow of multiple myeloma patients. These cells were distinct from plasma cells, but did contain Ig of the same isotype and idiotype as seen in the plasma cells. We postulated a precursor role for this cell type in myeloma. Here, we report that this CD71+ (HB4/HB6/CDw75/CDw76)+ cell is an erythroid precursor cell instead. RT-PCR did not detect Ig mRNA, and from immuno electron microscopy Ig appeared to be endocytosed rather than synthesized by these cells. At their cell surface the erythroid/megakaryocytic markers CD36 and CD41, and the erythroid-specific glycophorin A can be detected, while haemoglobin can be detected antigenically in the cytoplasm. Finally, purified cells proliferate in vitro upon addition of erythropoietin. Uptake of Ig could be explained by the presence of Fc gammaRIII(CD16), which has also been found on other haematopoietic precursor cells.

Antigens, CD↗

Expression of transferrin receptor 2 in normal and neoplastic hematopoietic cells.

Iron is essential for cell proliferation, heme synthesis, and a variety of cellular metabolic processes. In most cells, transferrin receptor-mediated endocytosis is a major pathway for cellular iron uptake. Recently, transferrin receptor 2 (TfR2), another receptor for transferrin, was cloned. High levels of expression of TfR2 messenger RNA (mRNA) occur in the liver, as well as in HepG2 (a hepatoma cell line) and K562 (an erythroid leukemia cell line). In this study, TfR2 mRNA expression was analyzed in hematological cell lines, normal erythroid cells at various stages of differentiation, and leukemia and preleukemia cells. High levels of TfR2 expression occurred in all of the erythroid cell lines that were examined. Erythroid-specific expression of TfR2 protein in bone marrow cells was confirmed by immunohistochemical staining. Expression of TfR2 mRNA was high in normal CD34(+) erythroid precursor cells, and levels decreased during erythroid differentiation in vitro. Levels of expression of TfR2-alpha mRNA were significantly higher in erythroleukemia (M6) marrow samples than in nonmalignant control marrow samples. In addition, relatively higher levels of TfR2-alpha mRNA expression occurred in some samples of myelodysplastic syndrome that had erythroid hyperplasia in bone marrow, acute myelogenous leukemia M1, M2, and chronic myelogenous leukemia. Expression profiles of normal members of the erythroid lineage suggest that TfR2-alpha may be a useful marker of early erythroid precursor cells. The clinical significance of TfR2-alpha expression in leukemia cells remains to be determined.

Bone Marrow Cells↗

Dietary restriction augments erythropoiesis in mice.

Previously, we have reported that a 40% dietary restriction caused microcytic and short-lived erythrocytes without anemia in mice (Internat. J. Vitr. Nutr. Res. (1989) 59, 406-412). To elucidate the mechanism of these phenomena, the effects of dietary restriction on the proliferation of erythroid precursor cells were investigated. In the diet restricted mice, a striking increase of erythropoietin (EP - responsive erythroid precursor cells without increment of EP was observed. Remarkable increases in the numbers of femoral nucleated cells and erythroid stem cells (CFU-S) were also observed in the diet restricted mice. Furthermore, the percentage of femoral CFU-S in DNA synthetic stage (S phase) revealed remarkably higher levels in the diet restricted mice than in the control mice. Our results strongly suggest that the microcytic change of erythrocytes in the diet restricted mice may be attributed to the increased number of erythroid precursor cells without an increment of hemoglobin synthesis and that the avoidance of becoming anemic from the short-lived erythrocytes in the diet restricted mice may be caused by a vigorous erythropoiesis.

Anemia↗

The switch from larval to adult globin gene expression in Xenopus laevis is mediated by erythroid cells from distinct compartments.

The transition of hemoglobins during metamorphosis of Xenopus laevis involves replacement of the larval erythrocytes by adult ones, suggesting that the developmental control of this event depends upon the growth characteristics of the precursor cells. To identify the erythroid precursor cells and to investigate their developmental fate, we analyzed the distribution of stage-specific globin mRNAs by northern blotting in dorsal and ventral fragments of stage 32 embryos after in vitro culture as well as presumptive erythropoietic tissues of tadpoles during metamorphosis. The histological analysis shows that erythrocytes differentiate only in ventral fragments, suggesting that the ventral blood islands and most likely also the dorsolateral mesoderm are the primary sites of erythropoiesis. We also demonstrate that the first generations of erythrocytes, already express the predominating larval-specific alpha-globin mRNAs. The globin mRNA patterns obtained from presumptive erythropoietic tissues suggest an important role of circulating precursor cells in larval erythropoiesis, whereas the liver appears to be the main site of formation and maturation of the adult erythrocytes. Tentatively we propose that anuran erythropoiesis is dependent upon a self-perpetuating stem-cell line and that the larval and the adult erythrocytes are derived from successive generations of erythroid precursors, whose commitment may be imposed by the erythropoietic sites.

Animals↗