Macrophages and the cytokine network.
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Biomedical subjects
Publications and source records attributed to F Oberg.
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Recent studies have suggested that certain oncogenes, in particular members of the myc family, may be involved in the down-regulation of HLA class-I antigen expression observed in many types of tumor. We report that constitutive expression of an OK10 v-myc gene in human monoblastic U-937 cells results in a reduced expression of HLA class-I cell-surface expression and decreased levels of HLA class-I protein and mRNA. All class-I alleles, with the possible exception of HLA A3, were affected, as shown by one-dimensional isoelectric focusing (ID-IEF). Basal expression of the beta 2m chain was also reduced, although to a lesser extent. In addition, we show that the PMA-, and at least partially the IFN-alpha-induced increase in HLA class-I antigen expression, was inhibited in U-937-myc cells both at the protein and the mRNA level. In contrast, the response to IFN-gamma was normal. Another important difference in the response to IFN-gamma and alpha was that, while IFN-gamma abrogated the v-myc block of PMA-induced differentiation of U-937 cells, as previously reported, IFN-alpha did not. Our data show that v-myc negatively affects the regulation of both basal and inducible HLA class-I antigen expression.
We report the selection and characterization of a U-937 subline which is capable of long-term growth in serum-free medium and can be induced to differentiate. The subline (U-937-1SF) can be maintained in standard RPMI-1640 medium supplemented by antibiotics only. As compared to the serum-dependent U-937 parental cell line, U-937-1SF produced lower amounts of lysozyme and elastase and had a decreased surface expression of complement receptor 1 (CD35) and myeloid antigens CDw17 and CD38. Apart from these alterations, the U-937-1SF cells appear to be morphologically, cytogenetically and phenotypically similar to the parental U-937 clone-1 cells. The capacity of U-937 clone-1 cells to undergo phorbol myristic acid (PMA)-, vitamin D3 (VitD3)- and retinoic-acid (RA)-induced differentiation was retained in the U-937-1SF cells as evidenced by the induced growth arrest, development of a monocyte/macrophage morphology and increased expression of differentiation-associated antigens, e.g. CD11b, CD11c, CD14 and CD18. The growth-inhibitory response to cytokines involved in the activation and differentiation of monocytes, IFN-gamma, TNF-alpha, IL-1 beta, IL-6 and GM-CSF, was normal. Our results suggest that the U-937-1SF subline can be used as a serum-free model system for studies on various aspects of monocyte differentiation.
Activated monocytes play an important role as producers of IL-6 during inflammation and immune response. We show that during monocytic differentiation of U-937 cells, induced by phorbolester (PMA), IL-6 mRNA expression was transiently up-regulated and IL-6 protein was secreted into the medium. In contrast, differentiation induced by VitD3 or Retinoic acid (RA) did not lead to an increase in the IL-6 expression. Thus, IL-6 expression does not seem to be associated with monocyte differentiation per se. However, U-937 cells terminally differentiated by VitD3, rapidly responded to bacterial lipopolysaccharide (LPS) induced activation by IL-6 expression and secretion. In cells, differentiated by PMA, the IL-6 expression was super-induced after activation by interferon-gamma (IFN-gamma) and LPS. The capacity of U-937 cells to respond to LPS activation by IL-6 expression was associated with the expression of CD14 and some serum components(s) were a prerequisite for a successful LPS induction. The IL-6R expression was down-regulated during monocytic differentiation of U-937 cells. In the terminally differentiated U-937 cells, the expression of IL-6R could be induced after activation by IFN-gamma and to a lesser extent by LPS, suggesting a mechanism by which activation positively regulates the response to IL-6 in macrophages.
Extensive studies suggest a role for the myc protooncogene family in the control of cell proliferation and differentiation in vertebrates. Previously, deregulated expression of exogenous myc genes has been shown to inhibit induced differentiation in Friend erythroleukemia (MEL) cells and in human monoblastic U-937 cells. To examine the nature of the block of phorbol 12-myristate 13-acetate-induced differentiation in v-myc-expressing U-937 cells, we have studied the effect of other inducers utilizing signal pathways distinct from phorbol 12-myristate 13-acetate (i.e., 1 alpha, 25-dihydroxycholecalciferol and retinoic acid). We show that v-myc also inhibits differentiation associated with these inducers. However, the v-myc-associated block of phorbol 12-myristate 13-acetate-, 1 alpha,25-dihydroxycholecalciferol-, and retinoic acid-induced differentiation retinoic acid-induced differentiation can be overcome by adding interferon gamma as a costimulatory factor. Costimulation with interferon gamma restores terminal differentiation, as shown by acquisition of a macrophage phenotype and an irreversible growth arrest in the G0/G1 phase of the cell cycle, but induces only limited differentiation on its own. The differentiation is accomplished without altering the expression or nuclear localization of the v-myc protein. These results argue against the widely held view that down-regulation of myc expression is a general prerequisite for terminal differentiation of hematopoietic cells and suggests that interferon gamma induces a signal(s) that circumvents the v-myc activity.