Granulopoiesis in cultures in human haemopoietic cells.
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Medium conditioned by human placental tissue was found to stimulate granulocytic and monocytic colony formation by human marrow cells in semisolid agar cultures. The colony-stimulating activity of unfractionated conditioned medium was equivalent to the activity of standard peripheral blood underlayers. Placentas were a reliable source of active material, and one placenta provided enough material to stimulate 5,000-10,000 cultures of normal or leukemic cells. The colony-stimulating factor in human placental conditioned medium (CSFHPCM) was concentrated and purified 1800-fold using ammonium sulfate precipitation, calcium phosphate gel absorption, DEAE-cellulose batch absorption, gel filtration on Sephadex G-150, and polyarcylamide gel gel electrophoresis. The active factor behaved on gel filtration as a macromolecule with an apparent molecular weight of 30,000 daltons. The active factor in placental conditioned medium was not dependent on the presence of adherent marrow cells with endogenous colony-stimulating activity.
Since lithium causes granulocytosis in some patients, its effect upon granulocyte production was investigated using mouse marrow in the agar culture system. When lithium was added to semisolid cultures of mouse marrow, there was no stimulation of colony formation in the absence of colony-stimulating activity (CSA). In addition, lithium did not potentiate the action of already formed CSA. However, lithium did stimulate the production of CSA by lung tissue. Lithium enhancement of CSA production was blocked by puromycin, indicating that lithium action required active new protein synthesis. It was concluded that lithium promoted enhanced granulocyte production in vitro by stimulating the synthesis of CSA.
Sodium salicylate inhibited generation of granulocyte and macrophage colonies when added to soft agar cultures of mouse or human bone marrow cells (CFUc) containing colony-stimulating factor (CSF). This effect was dose-dependent with over 90% inhibition at 48 mg%. The salicylate effect was not decreased with increasing concentrations of CSF, but inhibition was reversed when salicylate-treated CFUc were washed with drug-free medium before plating. CSF production was not inhibited by salicylate.
Purified L-cell colony-stimulating factor (CSF) was coupled to cyanogen-bromide-activated Sepharose and used to selectively fractionate antibodies to this factor. With the use of a simplified two-step washing and elution technique, there was 50%--70% binding of the anti-CSF, with recovery of 60%--100% of the bound material. Both the native antiserum and purified anti-CSF fractions were inhibitory to murine granulocyte-macrophage colony formation. The purified antibodies contained only IgG and were reduced in protein concentration to 0.1% of the serum IgG values. These fractions should prove useful tools for the study of granulocyte and macrophage differentiation.
An in vitro hematopoietic microenvironment was established from explained fragments of bone marrow from adult noninbred NIH Swiss mice with the use of corticosteroid-reconstituted horse serum. Infection with Kirsten murine sarcoma virus (Ki-MuSV) with either a Rauscher murine leukemia virus (R-MuLV) or Balb:virus-1 helper virus coat reduced proliferation of granulocytic and pluripotent hematopoietic stem cells and produced neoplastic transformation of both macrophages and preadipocytes in the adherent cell population within a 4-week period. Ki-MuSV-transformed, virus-releasing macrophages formed clusters of 4-49 cells in 0.8% methylcellulose-containing medium in the absence of added colony-stimulating factor (CSF), synthesized lysozyme, ASD-chloroacetate substrate-specific esterase-M, and CSF, and produced tumors following inoculation iv into adult NIH Swiss mice or ip into newborn NIH Swiss mice. In cultures infected with helper leukemia viruses R-MuLV or Balb:virus-1, gradual transformation of a distinct cell phenotype was observed over a 9-week period with generation of increasing numbers of atypical myeloblasts and promyelocytes which showed dyssynchronous nuclear-cytoplasmic maturation, basophilic granulation, cytoplasmic vacuolation, and formation of incompletely maturing CSF-dependent granulocyte-macrophage colonies in vitro and small spleen colonies in vivo. These data demonstrated that rapid biologic expression of the murine sarcoma virus genome in specific adherent "stromal" marrow cells prevents detection of a more subtle helper-virus-induced dysmyelopoiesis in a distinct nonadherent cell population.
We have studied the marrow cells from a patient with acute myeloid leukemia (AML) for their responsiveness to colony-stimulating activity (CSA) in vitro. The AML cells were stimulated by CSA to rapid and extended growth in liquid culture. In the absence of CSA, the majority of cells died. CSA also stimulated the clonal growth of AML cells, and the minimum requirement for CSA was one-tenth to one-fiftieth that required to stimulate the growth of normal marrow CFU-C. CSA for AML cells was eluted from Sephacryl S-200 columns in fractions that represented an apparent molecular weight of 45,000 daltons. This fraction also produced optimal stimulation of normal human marrow. During remission, the patient's marrow cells did not grow in liquid culture and produced normal numbers of granulocytic and erythroid colonies in response to CSA and erythropoietin. Extended culture of the AML cells resulted in cell differentiation evidenced by decreasing proliferative capacity and by morphological and histochemical changes. These studies indicate that certain AML cells are extraordinarily responsive to CSA, an in vitro mediator of normal granulopoiesis.
Five murine monocyte of macrophage tumor lines adapted to culture were characterized for differentiated properties. They ingested zymosan and latex beads, bore receptors for immunoglobulin and complement, synthesized lysozyme (most of which was secreted), and produced granulocyte colony-stimulating activity, either spontaneously or inducibly. Some of the lines also mediated phagocytosis and exocytosis of red blood cells (RBC) and lysis of tumor targets, dependent on the presence of specific antitarget sera. All the lines were growth inhibited by zymosan and Mycobacterium bovis BCG, but not by latex beads. Other macrophage-activating agents, dextran sulfate and lipopolysaccharide (LPS), as well as tuberculin purified protein derivative (PPD), inhibited most of the lines. Except for Fc and C receptors, most of the above properties were not found with other types of hematopoietic tumors in culture. In attempts to activate the macrophage lines in vitro to the "angry" state, we found that preincubation with concentrations of LPS and PPD cytostatic to the cells stimulated antibody-dependent RBC lysis, but not antibody-independent or tumor cytolysis. A classification of monocyte-related tumors and normal cells is proposed based on functional activities and differential sensitivity to immunostimulating agents.
Mouse myeloid leukemic cells which differ in their competence to be induced to differentiate by the normal macrophage- and granulocyte-inducing protein MGI have been used to study the relationship between type C RNA virus production and myeloid cell differentiation. Clones which can be induced by MGI to form Fc and C3 rosettes, to synthesize and secrete lysozyme and to differentiate to mature macrophages and granulocytes (MGI+D+) were induced by MGI to produce higher amounts of type C virus. Clones (MGI+D-) that were less inducible by MGI for Fc and C3 rosettes and lysozyme and were not induced to from mature cells were also less inducible higher virus production. In both types of clones, the increased virus production induced by MGI preceded the induction of rosettes and lysozyme. Clones that were not induced by MGI for rosettes or lysozyme (MGI-D-) showed little or no enhancement of virus production. MGI did not affect virus production in erythroleukemic cells, and erythropoietin did not affect virus production in the myeloid leukemic cells. Dexamethasone, lipopolysaccharide, dimethylsulfoxide and low concentrations of actinomycin D can induce some differentiation-associated properties in some of the clones. With these compounds, there was also a direct relationship between the enhancement of virus production and induction of differentiation-associated properties. Virus released from the three types of clones before or after treatment with MGI or dexamethasone was identified as N-tropic. The enhancement of virus production, as measured by reverse transcriptase activity, was accompanied by an increase in the amount of the viral protein p30, and interferon, which idd not inhibit the induction of differentiation in the myeloid leukemic cells, also did not prevent the increase in the amount of p30. After the early enhancement of virus production associated with the induction of differentiation, a shut-off of virus production occurred in the mature cells induced by MGI in MGI+D+ clones, whereas clones that did not differentiate to mature cells continued to produce virus. The results indicate that enhancement of virus production appears to be an early step in the induction of differentiation. Once induction has occurred, the lack of virus production in the mature cells suggest that a subsequent shut-off of virus production may be required for the completion of differentiation to mature cells. This relationship between cell differentiation and virus production suggests that type C virus has a regulatory role in myeloid cell differentiation.
Addition of low concentrations (10 ng/ml) of saponin or Tween 80 to stimulated cultures of normal mouse bone marrow in agar increased the number of granulocyte-macrophage colonies which developed. Addition of cyclic AMP or dibutyryl cyclic AMP in low concentration (10(-8) to 10(-10) M) also enhanced colony numbers although concentrations above 10(-5) M were inhibitory. enhancement was found when marrow cells were pre-treated with these agents and cultured in their absence. The agents did not stimulate colony development in the absence of colony-stimulating factor and enhancement of colony number occurred only in cultures containing a concentration of colony-stimulating factor which was sub-optimal in terms of maximum colony development. There was no indication of increased colony-stimulating factor production by treated marrow cells under the experimental conditions used to show colony enhancement. It was concluded that the agents caused an increased responsiveness of colony-forming cells to colony-stimulating factor.
The effect of granulocyte-macrophage colony stimulating factor (GM-CSF) on the synthesis of RNA in liquid cultures of mouse bone marrow, spleen, thymus, peritoneal, peripheral blood leukocytes and lymph node cells was investigated. GM-CSF appeared to stimulate RNA-synthesis in syngeneic bone marrow cells within ten minutes of adding it to the culture. In the presence of GM-CSF bone marrow cultures maintained their initial rate of RNA synthesis for approximately ten hours. GM-CSF had no apparent effect on the uptake of 3H-uridine into bone marrow cells. This stimulation was still observed in the presence of puromycin and cycloheximide, but was abrogated by actinomycin D. The magnitude of the stimulation was not affected by the density of cells between 1 and 20 x 10(6) cells/ml but was slightly smaller at 0.1 and 40 x 10(6) cells/ml. Increasing concentration of GM-CSF (up to 2 X 105 units per ml) led to increased stimulation of RNA synthesis in bone marrow cells, but a significant stimulation could be detected at concentrations as low as 800 units/ml. GM-CSF did not significantly stimulate RNA synthesis in spleen, thymus, mesenteric or subcutaneous lymph node cells. However a small stimulation was observed in peripheral blood leukocytes and peritoneal cells. Autoradiographic studies showed that GM-CSF stimulated RNA synthesis in blast cells, myelocytes, metamyelocytes and polymorphs. Nucleated erythroid cells showed no increased labeling with GM-CFS. Labeling in lymphoid-like cells was highly variable but the level of labeling did not appear to be influenced by GM-CSF.
Bone marrow cells of normal and Rauscher virus (RLV) infected CBA/J mice were cultured under stimulation by postendotoxin serum. Cellular morphology and the number of granulocytic committed stem cells from day 1-5 after the onset of the cultures were studied with different amounts of postendotoxin serum added. There was a good correlation between total cellularity, the number of immature granulocytopoietic cells and the number of colony forming unit cells (CFUc) in suspension with the amount of postendotoxin serum. Postendotoxin serum delayed the appearance of macrophages in the cultures for 1-2 days. Cells from RLV infected animals showed a rather normal differentiation of the morphological recognisable cells 5 and 21 days after infection, but the CFUc survival in vitro 3 and 5 weeks after infection was reduced.
The susceptibility of mouse bone marrow colony forming cells (CFUc) to three different types of proliferation inhibitors in capillary semisolid agar gel was studied. GI-3, a target specific peptide containing granulocyte fraction, T4-1, an oligospecific thymic factor of proteid nature, and the alkylating cytostatics dianhydrogalactitol (DAD) inhibit myeloid colony formation as a function of concentration. The respective MED values amount to 8, 10, and 0.002 microgram/ml. When compared with this same parameter 3H-TdR incorporation into DNA of liquid bone marrow cultures showed a single fold charge for the endogenous inhibitors (GI-3, T4-1) for the cytostatic (DAD) a 3 to 4 fold lower difference. It was demonstrated, that in competitive antagonism of GI-3 and colony stimulating factor the inhibitor prevails over CSF.
Serum-free conditioned medium from human lung obtained at autopsy provides a rich source of colony stimulating factor which stimulates granulocytic and macrophagic colony growth in both mouse and human bone marrow. The appearance of the factor is enhanced by endotoxin and inhibited by either puromycin or actinomycin D. Human lung colony stimulating factor is stable at the pH range of 6.5-10 and temperature of 56 degrees C for 30 min. It is resistant to trypsin and neuraminidase but is sensitive to subtilisin, chymotrypsin and periodate. It shows heterogeneity on Sephadex gel filtration with two activity peaks having molecular weight of 200 000 and 40 000, respectively. Upon gel electrophoresis, human lung colony stimulating factor migrates in the alpha-globulin post-albumin region. Using the combination procedures of hydroxyapatite chromatography and preparative polyacrylamide gel electrophoresis a 600-fold purification was achieved with a final specific activity of 6-10(5) units per mg protein. The purified colony stimulating factor is very labile; however, the activity can be stabilized by the addition of gelatin or bovine serum albumin at the concentration of 0.1% and 0.2 mg/ml, respectively.
Normal mouse bone marrow cells were exposed to encephalomyocarditis virus (EMC), reovirus type 3 (REO3), influenza virus (FLU), and Newcastle disease virus (NDV) then assayed for granulocyte-macrophage precursor cells by the technique of colony formation in agar. Exposure to EMC, REO3, and FLU caused a slight but variable loss of colony-forming potential, whereas exposure to NDV caused a very marked loss. NDV acted directly on the cells, not indirectly through release of colony-inhibiting factors or destruction of colony-stimulating factor. Experiments with NDV inactivated by heat, ether, or ultraviolet irradiation indicated that colony inhibition was associated with fully infective virus, even though some of the inactivated preparations had retained full hemagglutinin, neuraminidase, or hemolytic activity.
Long-term growth (now over 13 months) of thymus-derived lymphocytes from numerous normal human bone marrow and peripheral blood cell samples was accomplished by using a factor present in media obtained from mitogen-stimulated human peripheral blood lymphocytes. This long-term growth could neither be initiated nor maintained by mitogens alone. All cell cultures were greater than 90% E rosette-positive, whereas the tests for B cell markers, surface IgG and IgM, and EAC rosette were routinely negative. There was no evidence for the presence of granulocytes, monocytes, and their precursors in these cultures. The E rosette-positive cells were then tested to see if they had T cell functions. PHA, Con A, and pokeweed mitogens stimulated lymphproliferative responses in these cultures comparable to those of fresh peripheral blood cells. These proliferating cells were also able to release cell mediators, such as interferon and colony-stimulating activity. Further evidence for the T lymphocyte nature of these cultured cells was obtained from one-way mixed leukocyte cultures in which these cells responded to but were unable to stimulate allogeneic cells. The functional and morphologic characteristics of these cultured cells show that these cells are T cells that grow continuously in vitro.
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Extracts from embryonic and uterine tissue of mice, operationally defined as colony stimulating factor (CSF), promoted the growth of macrophage-granulocyte colonies in vitro. Uterine CSF focusses from pH 5.15 to 6.00 and embryonic CSF from pH 3.60 to 5.20, although both forms have similar biological activity. CSF is relatively resistant to denaturation but it is inactivated by periodate and dithiothreitol. Gel filtration indicates a molecular weight of 45,000 which is unchanged following treatment with insolubilized trypsin, a procedure which affords a useful purification (240-fold). Trypsin-sensitive material in CSF preparations modifies colonial form under certain conditions of culture, probably by increasing the motility of macrophages. Diaminoethane derivatives of CSF were prepared and retained biological activity at isoelectric points above pH 9.0. These derivatives may be covalently linked to Sepharose providing an insolubilized form of CSF to study interactions of CSF with the cell surface.