Engraftment of allogeneic bone marrow.
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Biomedical subjects
Publications and source records attributed to G Wagemaker.
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Approximately 70% of the late erythroid progenitor cells (E-CFU) which are present in normal bone marrow are killed by exposure to high specific activity tritiated thymidine (3H-TdR) in vitro or to hydroxyurea in vivo, indicating that a high proportion of these cells synthesize DNA. Their cell cycle was further analyzed by sedimentation at unit gravity. The modal sedimentation rate of 7.4 mm/h appeared to correspond to the fraction that is killed by 3H-TdR. Cells sedimenting at 6.0 and 9.5 mm/h were not susceptible to kill by 3H-TdR and correspond to cells in, respectively, G1 and G2/M. Based on a buoyant density of 1.077 g/cm3, the modal diameter of cells in G1 was calculated to be 8.3 micron, in S 9.2 micron and in G2/M 10.5 micron. The E-CFU population appeared to be composed of about 18% G1 cells, about 70% S phase cells and about 12% G2/M cells. The surviving fraction of E-CFU 2 h after intraperitoneal administration of 1 g/kg hydroxyurea was identified as being mainly a synchronous population in early S phase. The data are best explained by a short duration of G1 and G2/M phases.
It wa shown previously that colony formation in vitro by early erythroid progenitor cells (BFUe) requires sequential stimulation with a specific glycoprotein termed BFA and erythropoietin (EP). The action exerted by BFA was characterized as induction of proliferation in BFUe resulting after several cell divisions in EP-responsive progeny. The present study is directed at detection of EP-independent regulation of erythroid progenitor cells in vivo. Haemopoietic regeneration was induced by multiple administrations of hydroxyurea (HU). The femoral regeneration patterns of haemopoietic stem cells (CFUs), granulocyte/macrophage progenitor cells (CFUgm) and erythroid progenitor cells (BFUe, day 3 BFUe and CFUe) were studied in hypertransfused mice in comparison to nontransfused controls. The results show that (1) the phase of exponential regeneration of none of the cell populations studied is affected by hypertransfusion; (2) each of these cell populations exhibit a distinct regeneration pattern, indicating that they behave as separate functional entities; and (3) the three erythroid cell populations are suppressed by hypertransfusion in the post-exponential phase of regeneration in contrast to CFUs and CFUgm. The results support a two-regulator model of erythropoiesis.
A review is presented of the experiments that resulted in the identification of a specific morphologic entity representing the pluripotential hemopoietic stem cell (HSC) in mouse bone marrow. This entity was subsequently discovered in concentrated HSC preparations from bone marrow of rats, monkeys, and humans. In the mouse, a set of physical parameters (of the HSC) has been collected which agree with its morphologic description. It was also shown that these physical properties, and a number of cell surface properties, do not enable a distinction between HSC and its immediate descendants, the G/M CFU 1 and the E-BFU. The factors that stimulate proliferation of these three cell types have been isolated from human leukocyte conditioned medium and mouse spleen conditioned medium and were partly purified and characterized. The information at present indicates that the three cell types respond to closely related, if not identical, factors. Direct counts of HSC in electron microscopic preparations of density gradient fractions of different enrichment have been compared with HSC values computed from spleen colony counts and f factors for rat and mouse marrow. A high degree of correlation was found between the two types of observations. The slopes of the regression lines for mouse marrow fractions, for concentrates of normal rat marrow, and for concentrates of cycling rat marrow were the same, namely, 0.5. The deviation of this value from the expected value of 1.0 is probably not due to the use of erroneous f values. It is proposed that the observed discrepancy may be due to heterogeneity of spleen colony forming cells, in that a proportion of them may not be pluripotential.
Bone marrow contains a small population of primitive erythroid progenitor cells which can be detected by their capacity to form large numbers of erythroid progeny in viscous cultures containing erythropoietin (EP). These cells have been termed erythroid 'burst-forming units' (BFUe). The present study demonstrates that expression of the erythroid differentiation potential of BFUe requires the presence of an activity additional to EP. This activity has been designated as BFA (burst feeder activity). It is shown that the number of BFUe detected and their apparent sensitivity to EP are directly related to the BFA concentration of the cultures. BFA was found to be associated with a population of bone marrow cells of high buoyant density and small volume, which are sensitive to irradiation. The radiation dose-effect curve provided strong evidence that bone marrow BFA is independent of cell proliferation; this was supported by showing that BFA is unaffected by in vivo treatment with hydroxyurea. The findings are compatible with a two-step regulation model for erythroid differentiation in which BFA-induced progeny of BFUe acquire sensitivity to EP.
A possible regulatory action of phagocytic cells on erythropoiesis was investigated by infusion of inert polystyrene latex particles (LAT). LAT appeared to induce changes in the femoral content of erythroid progenitor cells. These changes were most pronounced in primitive erythroid progenitor cells (BFUe) and appeared to be gradually damped in more differentiated populations (CFUe and erythroblasts). LAT did not influence granulocyte/macrophage progenitor cells (CFUc). The effects of LAT could not be attributed to changes in the systemic erythropoietin (EP) concentration. Administration of dexamethason nullified the effect of low doses of LAT, suggesting that phagocytosis of the particles is essential to the observed effects. Erythroid burst formation was previously found to be dependent on a bone marrow associated activity, termed BFA (burst feeder activity). BFA acts as an in vitro inducer of EP-responsiveness in BFUe. In this study it was found that LAT-induced changes in femoral erythroid progenitor cell content were characteristically preceded by corresponding changes in BFA. It was concluded that BFA-associated cells probably play a role in vivo in the early differentiation of erythroid progenitor cells. The present data are interpreted as direct in vivo evidence supporting a two-step regulatory model operating in erythropoiesis and provide evidence that phagocytic cells are a component of the erythroid haemopoietic inductive micro-environment.
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Medium conditioned by human peripheral blood leukocytes (HLCM) was studied for its in vitro effects on haemopoietic progenitor cells (CFU-s and CFU-c) present in mouse bone marrow. HLCM has poor colony stimulating activity in semi-solid cultures of mouse bone marrow cells, but invariably increases the number of colonies obtained in the presence of plateau levels of semi-purified colony stimulating factor (CSF). In liquid cultures, HLCM appears to contain a potent initiator of DNA synthesis in CFU-s, an activity which coincides with an increased CFU-s maintenance and causes a three- to four-fold increase in CFU-c number. It is apparent from this study that HLCM, in addition to stimulating colony formation in cultures of human bone marrow cells, has a profound in vitro effect on primitive haemopoietic progenitor cells of the mouse, which cannot be attributed to CSF.
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