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Relation of capsular polysaccharide production and colonial cell organization to colony morphology in Vibrio parahaemolyticus.

Vibrio parahaemolyticus is a ubiquitous, gram-negative marine bacterium that undergoes phase variation between opaque and translucent colony morphologies. The purpose of this study was to determine the factor(s) responsible for the opaque and translucent phenotypes and to examine cell organization within both colony types. Examination of thin sections of ruthenium red-stained bacterial cells by electron microscopy revealed a thick, electron-dense layer surrounding the opaque cells that was absent in preparations from translucent strains. Extracellular polysaccharide (EPS) material was extracted from both opaque and translucent strains, and the opaque strain was shown to produce abundant levels of polysaccharide, in contrast to the translucent strain. Compositional analysis of the EPS identified four major sugars: glucose, galactose, fucose, and N-acetylglucosamine. Confocal scanning laser microscopy was used to investigate cell organization within opaque and translucent colonies. Cells within both types of colonies exhibited striking organization; rod-shaped cells were aligned parallel to one another and perpendicular to the agar surface throughout the depth of the colony. Cells within translucent colonies appeared more tightly packed than cells in opaque colonies. In addition, a dramatic difference in the structural integrity of these two colony types was observed. When colonies were perturbed, the cell organization of the translucent colonies was completely disrupted while the organization of the opaque colonies was maintained. To our knowledge, this study represents the first description of how cells are organized in the interior of a viable bacterial colony. We propose that the copious amount of EPS produced by the opaque strain fills the intercellular space within the colony, resulting in increased structural integrity and the opaque phenotype.

Bacterial Capsules↗

Effect of formic acid formulations on honey bee (Hymenoptera: Apidae) colonies and influence of colony and ambient conditions on formic acid concentration in the hive.

The interaction between the effects of varroa, Varroa destructor Anderson & Trueman, and formic acid treatments on colonies of honey bees, Apis mellifera L., were examined in two field experiments. In experiment 1, colonies with low varroa levels were exposed to two different slow-release formulations and compared with untreated colonies. In experiment 2, colonies inoculated with varroa and uninoculated colonies were exposed to a slow-release formulation, a pour-on formulation, or were left untreated. The effects of treatments, hive temperature, and hive relative humidity on formic acid concentration in hive air also were examined. Slow-release formic acid application improved colony development in colonies that had been inoculated with varroa. However, in uninoculated colonies where the mean abundance of varroa was low, slow-release formic acid application suppressed colony development. The pour-on application did not have a negative impact on worker population growth in uninoculated colonies, but also it was not as effective as the slow-release treatment in improving population growth in varroa-inoculated colonies. Equivalent volumes of acid applied in pour-on and slow-release formulations provided the same cumulative dose in hive air but differed in the daily pattern of formic acid release. Colonies that were not inoculated with varroa had higher concentrations of formic acid in hive air than colonies that were inoculated with varroa on three of the five pour-on application dates. The data suggest that reductions in worker population and/or activity caused by varroa can interact with ambient conditions to affect the volatilization or sorption of formic acid in the hive.

Animals↗

Presence of osteoclast precursors in colonies cloned in the presence of hematopoietic colony-stimulating factors.

Osteoclasts are derived from hematopoietic stem cells, but the relationship between osteoclast precursors (OCPs) and hematopoietic colony-forming cells (CFCs) has not yet been clarified. Although osteoclasts share certain cell surface markers and growth factor requirements with their macrophage and monocyte cell lineages, osteoclasts are a different lineage with regard to the requirement for signaling via c-Kit. To investigate whether CFCs are able to differentiate into osteoclasts, we performed in vitro studies of osteoclastogenesis. We performed progenitor assays in the presence of hematopoietic colony-stimulating factors. Primary colonies were plucked and examined for their potential to differentiate into osteoclasts. We found that osteoclasts are present in colonies elicited by macrophage colony-stimulating factor (M-CSF) and receptor activator of nuclear factor kB ligand (RANKL) in semisolid cultures. Moreover, a part of the cells composing the colonies elicited by granulocyte-macrophage colony-stimulating factor (GM-CSF) or M-CSF alone possessed the potential to differentiate into osteoclasts. These OCPs in the colonies were enriched in the c-Fms+ large-sized cell fraction and had a foamy cell morphology, like mature macrophages. A small number of cells in M-CSF-promoted and GM-CSF-promoted colonies formed secondary colonies in the semisolid medium containing these factors. The frequency of OCPs in these secondary colonies elicited by M-CSF was 10 times higher than that elicited by GM-CSF. Multiple origins of OCPs that differentiate into mature osteoclasts are proposed based on the observation that osteoclasts could be generated from OCPs that emerged from CFCs induced under different conditions or developmental stages.

Animals↗

Clonal expression of the Tn antigen in erythroid and granulocyte colonies and its application to determination of the clonality of the human megakaryocyte colony assay.

To evaluate whether exposure of Tn determinants at the surface of human erythrocytes, platelets, and granulocytes could arise from a somatic mutation in a hemopoietic stem cell, burst-forming unit erythroid (BFU-E) colonies, colony-forming unit granulocyte-macrophage (CFU-GM), and colony-forming unit-eosinophil (CFU-Eo) were grown from a blood group O patient with a typical Tn syndrome displaying two distinct populations (Tn(+) and Tn(-)) of platelets, granulocytes, and erythrocytes. A large number of colonies was observed. Individual colonies were studied with a fluorescent conjugate of Helix pomatia agglutinin (HPA). A sizeable fraction of each of the erythroid and granulocytic colonies appeared to consist exclusively of either HPA-positive or HPA-negative cells, thereby demonstrating the clonal origin of those exhibiting the Tn marker. Similar results were obtained from a second patient. These findings establish that the HPA labeling of Tn cells is an accurate marker permitting assessment of the clonality of the human megakaryocyte (MK) colony assay. For the study of MK cultures a double-staining procedure using the HPA lectin and a monoclonal antiplatelet antibody (J-15) was applied in situ to identify all MK constituting a colony. Our results, obtained in studies of 133 MK colonies, provide definitive evidence that the human MK colony assay is clonal because all MK colonies were exclusively composed of Tn(+) and Tn(-) MK. Furthermore, the distribution of MK within a single colony was shown to be seminormal with a mean at 6 MK, isolated MK typically being absent in culture. Comparison of the proportion of mature Tn(+) cells in blood with their respective Tn(+) progenitors has also shown that no proliferative advantage occurs after the commitment; because Tn polyagglutinability is an acquired disorder, then the expansion of the Tn(+) clone must occur either during the proliferative stage of the pluripotent stem cell or during the commitment itself. This study therefore affords evidence that a blood group antigen plays a role in the differentiation of a pluripotent stem cell.

Adult↗

Effect of 1,25(OH)2D3 on normal human CFU-GM: target cells of the agent in the suppression of colony formation and induction of macrophage colonies.

1,25-Dihydroxyvitamin D-3 (1,25(OH)2D3) suppresses colony formation of normal human granulocyte macrophage progenitors (CFU-GM) and induces differentiation of colonies into monocyte macrophages in vitro. We examined whether or not the target cell of 1,25(OH)2D3 is only CFU-GM in the suppression and differentiation of colonies by the agent. Reduction of colony counts was observed only when 1,25(OH)2D3 was added to CFU-GM cultures at days 0 or 3, and after day 5 the agent did not affect the colony count. However, the delayed addition of 1,25(OH)2D3 elevated the proportion of granulocyte macrophage (GM) or macrophage (M) colonies even after 5 days of culture. We confirmed transformation of day 11 colony cells into macrophages by 1,25(OH)2D3 during the following 3 days' culture period based on serial observations of single colonies. Day 11 colonies contained very few CFU-GM and their most immature cells were promyelocytes. Short-term exposure to 1,25(OH)2D3 (4 h) of bone marrow cells, which had been precultured for 24 to 72 h with a purified granulocyte-colony stimulating factor caused a reduction of colony counts but did not elevate the proportions of GM or M colonies. These results indicate that 1,25(OH)2D3 inhibits the growth of CFU-GM itself and induces differentiation into macrophages at the progeny level (probably promyelocytes) and not at the level of CFU-GM.

Calcitriol↗

Colony formation by bone marrow cells after incubation with neuraminidase. II. Sensitivity of erythroid progenitor cells for burst promoting activity and erythropoietin and restoration of reduced spleen colony formation in mice pretreated with desialated erythrocyte membrane fragments.

Incubation of bone marrow cells (BMC) with neuraminidase (NA) reduces their ability to form colonies in the spleen of lethally irradiated mice. In vivo the largest reduction was observed in the erythrocytic colonies, whereas in vitro an inhibiting effect of NA incubation was observed on the plating efficiency of erythrocyte precursors (CFUE and day 7 BFUE). Masking of the receptors for neuraminidase-treated cell surface determinants in the recipient's body by infection of desialated erythrocytes (NA-Ery) or erythrocyte membrane fragments (NA-Efr) did largely restore the reduced colony formation of NA-BMC with respect to both the total number of spleen colonies and their type. Pretreatment of irradiated host with NA-Ery, but with NA-Efr, led to a slight polycythemia as judged by the number of erythrocytic and undifferentiated colonies as well as by the surface colony diameter. The reduced erythrocytic colony formation of NA-BMC was considerably enhanced in anemic irradiated recipients (from 25-70% of respective controls). Under all experimental circumstances the erythrocytic colony formation of NA-BMC never exceeded that of normal BMC (N-BMC). Further, in normal or anemic recipients whether or not treated with NA-Efr, the diameters of the spleen surface colonies in NA-BMC injected animals were smaller than in recipients of control-incubated BMC. In vitro experimentation indicated that the reduced plating efficiency of CFUE and BFUE following incubation could not be attributed to a decreased sensitivity to erythropoietin. However, day 7 BFUE with deficient cell surface sialic acid residues had a decreased sensitivity to burst promoting activity. Among several other explanations, our data support the possibility that the desialated colony forming cells that give rise to erythrocytic colonies in vivo have higher requirements for early regulatory factors than granulocytic precursor cells. In contrast to the normal postirradiation situation the level of these factors could be increased in recipients, which are bled subsequently to irradiation. Evidence is presented in support of our concept that neuraminidase-treated CFU are fully capable to exhibit normal, although delayed, colony formation in vivo in animals with covered receptors for galactosyl residues.

Animals↗

Inhibitory activity on murine granulocytic colony formation of bone marrow cell-conditioned medium obtained from colony-stimulating factor-producing tumor-bearing nude mice.

The effects of bone marrow-conditioned medium obtained from colony-stimulating factor-producing tumor-bearing nude mice (G-BM-CM) on mouse and human granulocyte-macrophage colony formation and mouse erythroid colony and burst formation were studied. Addition of G-BM-CM into the mouse granulocyte-macrophage colony-forming system containing colony-stimulating activity more strongly inhibited granulocyte colony formation than did mixed granulocyte-macrophage and macrophage colony formation, while it did not change the number of granulocyte colonies formed by human bone marrow cells stimulated by human granulocyte colony-stimulating activity. Addition of G-BM-CM slightly increased mouse erythroid colony and burst numbers when it was added into an erythroid colony-forming system stimulated by erythropoietin (1 unit/ml), and into the erythroid burst-forming system stimulated by erythropoietin (1 unit/ml) and 7% spleen cell-conditioned medium. These results might indicate that G-BM-CM mainly blocked commitment of mouse granulocyte-macrophage colony-forming cells to granulocytic progeny.

Animals↗

Combinations of colony-stimulating factors promote enhanced proliferative potential in enriched granulocyte-macrophage colony-forming cells.

The effects of combinations of colony-stimulating factors (CSFs) have been assessed using a highly enriched population of murine granulocyte-macrophage colony-forming cells (GM-CFC). Unlike the situation observed with more primitive myeloid progenitor cells, little or no effect on the numbers of colonies formed from GM-CFC in response to specific combinations of growth factors was observed; however, the size of the majority of colonies formed was greatly increased. The largest increase in the number of cells per colony was observed when interleukin-3 (IL-3) was present with either granulocyte-macrophage colony-stimulating factor (GM-CSF), GM-CSF plus granulocyte-colony-stimulating factor (G-CSF), or macrophage colony-stimulating factor (M-CSF); there was a > five-fold increase when compared to colony size in the presence of IL-3 alone. The combination of G-CSF with IL-3 was not able to promote an increase in mean colony size; however, G-CSF plus GM-CSF did give a significant increase. Where combinations of hematopoietic growth factors led to increased numbers of cells per colony, the delayed addition of one of the cytokines to soft gel assays for a period > 2 days led to a loss of the observed enhancement in the number of cells per colony. In cultures of progenitor cells enriched by centrifugal elutriation and that contained combinations of CSFs, there was an increase in the number of GM-CFC over a 2-day incubation period. The distinct effects observed with GM-CSF, IL-3, and G-CSF on GM-CFC suggest that they influence different molecular signaling mechanisms within common target progenitor cells.

Bone Marrow Cells↗

Growth of human hemopoietic colonies in response to recombinant gibbon interleukin 3: comparison with human recombinant granulocyte and granulocyte-macrophage colony-stimulating factor.

Supernatants of COS-1 cells transfected with gibbon cDNA encoding interleukin 3 (IL-3) with homology to sequences for human IL-3 were tested for ability to promote growth of various human hemopoietic progenitors. The effect of these supernatants as a source of recombinant IL-3 was compared to that of recombinant human granulocyte-macrophage colony-stimulating factor (GM-CSF) and granulocyte colony-stimulating factor (G-CSF) as well as to that of medium conditioned by phytohemagglutinin-stimulated leukocytes. The frequency of multilineage colonies, erythroid bursts, and megakaryocyte colonies in cultures containing the COS-1 cell supernatant was equivalent to the frequency observed in the controls and significantly higher than found in cultures plated with recombinant GM-CSF. G-CSF did not support the formation of multilineage colonies, erythroid bursts, and megakaryocyte colonies. In contrast, growth of granulocyte-macrophage colonies was best supported with GM-CSF, while recombinant IL-3 yielded colonies at lower or at best equivalent frequency. The simultaneous addition of higher concentrations of GM-CSF to cultures containing IL-3 in optimal amounts did not enhance the formation of multilineage colonies, erythroid bursts, and megakaryocyte colonies. However, the frequency of such colonies and bursts increased with GM-CSF when cultures were plated with suboptimal concentrations of IL-3. Growth of colonies within the granulocyte-macrophage lineage is optimally supported by GM-CSF and does not increase with further addition of IL-3.

Animals↗

Recombinant murine granulocyte-macrophage (GM) colony-stimulating factor supports formation of GM and multipotential blast cell colonies in culture: comparison with the effects of interleukin-3.

We studied the effects of murine recombinant granulocyte-macrophage colony-stimulating factor (GM-CSF) on murine hemopoiesis in methylcellulose culture. The GM-CSF was purified from cultures of Saccharomyces cerevisiae transfected with a cloned murine GM-CSF cDNA. In cultures of spleen cells from normal mice, only granulocyte-macrophage (GM) colonies were supported by GM-CSF. Blast cell colonies were the predominant type in cultures of spleen cells from 5-fluorouracil (5-FU)-treated mice. Dose-response studies revealed that maximal GM and blast cell colony formation is achieved with 100 U/ml GM-CSF. Blast cell colonies revealed variable but high replating efficiencies, and the secondary colonies included multilineage colonies. Serial replating of washed blast cell colonies in cultures with GM-CSF provided evidence for the direct effects of GM-CSF on the proliferation of multipotential blast cells. A combination of GM-CSF and interleukin-3 (IL-3) did not increase the number of blast cell colonies over the level supported by IL-3. This observation indicates that the progenitors for blast cell colonies that responded to GM-CSF are a subpopulation of multipotential progenitors that are supported by IL-3. Cytological studies of colonies derived from GM-CSF and/or IL-3 suggest that the eosinophilopoietic ability of murine GM-CSF is less than that of IL-3.

Animals↗

Stem cell factor directly stimulates the development of enriched granulocyte-macrophage colony-forming cells and promotes the effects of other colony-stimulating factors.

The effects of the c-kit ligand (stem cell factor [SCF]) on the development of a highly enriched population of granulocyte-macrophage colony-forming cells (GM-CFC) were assessed. In soft agar assays, both in serum-containing and in serum-deprived cultures, SCF promoted the formation of colonies that contained predominantly granulocytic cells with some blast cells also present. The size of these colonies was far smaller than observed in the presence of interleukin-3 (IL-3). In serum-deprived conditions, no colonies were formed in the presence of macrophage colony-stimulating factor (M-CSF), but when M-CSF was combined with SCF, a marked change was noted in that large colonies were produced containing predominantly macrophages. When GM-CFC were cultured in the presence of IL-3 and SCF, colonies were formed that contained blast cells, granulocytes, and macrophages. A synergistic interaction was also seen using a combination of G-CSF plus SCF in either serum-containing or serum-deprived cultures. The addition of SCF to colony-forming assays markedly reduced the concentration of IL-3 or G-CSF required for optimal levels of colony formation. Furthermore, SCF was capable of promoting the survival of GM-CFC for several days, after which large colonies containing mature cells were formed upon the addition of a secondary growth factor such as G-CSF or IL-3. Thus, SCF can directly act on highly enriched committed progenitor cells in serum-deprived conditions to promote survival, proliferation, and development.

Animals↗

Cellular responsiveness to stimulation in vitro: increased responsiveness to colony stimulating factor of bone marrow colony-forming cells treated with surface-active agents and cyclic 3'5' AMP.

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.

Adenosine Monophosphate↗

Effect of tumor colony definition on ionizing radiation survival curves of melanoma-colony forming cells.

Definition of survival and measurement of colony size in soft agar assays is important in establishing in vitro radiation survival curves. Conventionally, survival is assessed according to colony-forming ability. The distinction between small colonies that are abortive and those that are viable often involves a difficult and arbitrary choice for the investigator. We have examined the effect of different minimum colony sizes (greater than or equal to 25, greater than or equal to 50, greater than or equal to 75, and greater than or equal to 100 cells) on ionizing radiation survival curves for cells from established murine (CCL 53.1) and human (M1RW5) melanoma cell lines as well as from short-term human melanoma cell strains (C8146A, C8146C, C8161, C83-2C, C82-7A1, and C8442) and patient biopsy (83-4). Single cell suspensions were plated in the upper layer of the agar bilayer and cells were irradiated by single dose X rays. Giant cells did not form in colonies containing 50 or more cells. D0 values were highest (D0 values, from 390 to 100 cGy) for cells forming smaller colonies (greater than or equal to 25 cells, greater than or equal to 4-5 doublings) and lowest (D0 values, from 190 to 50 cGy) for cells forming larger colonies (greater than or equal to 100 cells, greater than or equal to 6-7 doublings). Therefore, apparent radiosensitivity was dependent on colony size selected for analysis. Precise measurement of colony size was important in establishing radiation survival curves because errors in determining the colony size will alter apparent radiosensitivity of cells. These results should help define the biological meaning of tumor colony growth in semisolid medium, and alter the interpretation of survival curves which measure sensitivity to agents using this assay.

Agar↗

Effects of colony composition and food type on nutrient distribution in colonies of Monomorium orientale (Hymenoptera: formicidae).

Monomorium orientale Mayr (Hymenoptera: Formicidae) is a common structure- and food-infesting ant in Asia. There is only limited information on the biology and habits of this species, especially on the preferred foods and distribution of nutrients in colonies. We conducted a laboratory study on the distribution of carbohydrates, proteins, and lipids, which were represented by respective food sources, in M. orientale colonies. Three colony conditions were applied: normal, with a balanced ratio of castes, queenless (only workers and brood), and broodless (only queens and workers). Food sources were stained to track the flow of the respective food in the colonies. Results revealed that carbohydrates had rapid distribution, with > 60% of the colony indicated in 24 h, in all colony conditions. Queens in all colonies did not feed on protein. Protein showed a more delayed distribution in the brood in all colony conditions; < 10% of the colony fed on protein by 24 h. Only queens in broodless colonies showed signs of feeding on lipid, with < 10% indicated in 24 h. Workers in all colonies fed on lipid as soon as it was delivered, whereas the brood only began to reveal feeding response after 24 h.

Animal Nutritional Physiological Phenomena↗

B lymphocyte colony formation in vitro: ultrastructural development of individual colonies.

B lymphocyte colony development in agar culture was studied using an electron microscope, and more than 3,000 colony cells were identified and photographed. In early cultures (day 4) lymphoblasts dominated the colonies. From day 5 onwards plasmablasts and small lymphocytes were present in colonies. From day 6 onward mature plasma cells were observed in increasing numbers. On day 9 culture the colonies started to degenerate and on day 10 of culture approximately 70% of the colony consisted of pyknotic and degenerating cells. Topographically, the degenerating cells were concentrated in the center of the colony whereas proliferation took place in the periphery. Colony growth occurred in an exponential fashion, the number of viable colony cells being maximal on day 8 of culture (400-600 cells/colony). At this time the frequencies of the four B cell categories were: lymphoblasts 72%, plasmablasts 20%, plasma cells 6%, and small lymphocytes 2%. Recloning experiments showed that dispersed colony cells were capable of forming only small cell clusters. It is concluded that B lymphocyte colony formation reflects a series of B cell developmental stages including the formation of the end cell categories o this lymphocyte lineage.

Animals↗

Comparison of colony lift with direct spotting methods of blot preparation on the effect of colony hybridization in the detection of environmental organisms.

Nucleic acid probes are used on site to detect or to identify individual microbial cells without cultivation. This molecular technique can avoid some limitations of traditional identification methods including time consuming and imprecise. This study examined the factors affecting colony hybridization and compared the effectiveness of membrane prepared by colony lifting with direct spotting procedures using the universal probe Eub 338. The results of hybridization varied depending on the type of colony morphology. For dry and rough colonies, colony hybridization was not suitable for detecting Acinetobactersp. (CK2A, CK2B), Alcaligenes sp. (TH11 B), Xanthomonas sp. (TH7B), Arthrobacter globiformis (CCRC 10598) and Microbacterium sp. (CCRC 11036). Colonies of Acinetobacter sp. (CCRC 15425) and Alcaligenes spp. (CCRC 10828, H) on agar and membrane were thick and raised, and their detection signals of hybridization were diffused or blank. Colonies of Alcaligenes sp. (CM7A, ANV2) and Acinetobacter sp. (ANV8) isolated from the sludge of biological processes treating ABS wastewater were flat and smooth, and their hybridization signals were clear. For those strains suitable for colony hybridization, the colony blots prepared by colony lift and direct spotting procedures gave the same sensitivity for colony hybridization.

Bacteria↗

Macrophage colony formation supported by purified CSF-1 and/or interleukin 3 in serum-free culture: evidence for hierarchical difference in macrophage colony-forming cells.

Using a serum-free culture system, we examined murine macrophage colony formation from bone marrow cells cultured in the presence of purified CSF-1, interleukin 3 (IL 3) or a combination of the two factors. CSF-1 supported macrophage and neutrophil-macrophage colony formation, whereas IL-3 supported the formation of various types of single lineage and multilineage colonies. CSF-1 supported more macrophage colonies from bone marrow cells of normal mice than IL 3, whereas in cultures of bone marrow cells of 5-fluorouracil-treated mice, IL 3 supported more macrophage colonies. A combination of CSF-1 and IL 3 resulted in granulocyte-macrophage (GM) colony formation that was equal to or greater than the sum of GM colony formation supported by the factors individually. The combination of CSF-1 and IL 3 resulted in significant increases in the size of both macrophage and neutrophil-macrophage colonies. Similar increases in colony size were observed when CSF-1 was added to cultures five days after incubation of marrow cells with IL 3. These data support the concept that some of the macrophage colony-forming cells that respond to IL 3 are more primitive than those that are sensitive to CSF-1.

Animals↗

Recombinant human macrophage colony-stimulating factor (M-CSF) requires subliminal concentrations of granulocyte/macrophage (GM)-CSF for optimal stimulation of human macrophage colony formation in vitro.

Human macrophage colony-stimulating factor (M-CSF or CSF-1), either in purified or in recombinant form, is able to generate macrophagic colonies in a murine bone marrow colony assay, but only stimulates small macrophagic colonies of 40-50 cells in a human bone marrow colony assay. We report here that recombinant human granulocytic/macrophage colony stimulating factor (rhGM-CSF) at concentrations in the range of picograms enhances the responsiveness of bone marrow progenitors to M-CSF activity, resulting in an increased number of macrophagic colonies of up to 300 cells. Polyclonal antiserum against M-CSF did not alter colony formation of bone marrow progenitors incubated with GM-CSF at optimal concentration (1-10 ng/ml) for these in vitro assays. Thus, GM-CSF at higher concentrations (nanogram range) can by itself, elicit macrophagic colonies, and at lower concentrations (picogram range) acts to enhance the responsiveness of these progenitors to M-CSF.

Animals↗