Interleukin-9 (IL-9) has been implicated in the pathogenesis of allergic disorders. To examine the interaction between IL-9 and eosinophils, we evaluated mature peripheral blood eosinophils for their expression of the specific α-subunit of the IL-9 receptor (IL-9R–α). The expression of IL-9R–α by human eosinophils was detected at the messenger RNA (mRNA) and protein levels by reverse transcriptase–polymerase chain reaction (RT-PCR), flow cytometry, and immunocytochemical analysis, respectively. Functional analyses demonstrated that recombinant human (rh)IL-9 inhibited in vitro peripheral blood human eosinophil apoptosis in a concentration-dependent manner. We then examined the role of IL-9 in eosinophil differentiation using the human cord blood CD34+cells and human promyelocytic leukemia cells (HL-60). The addition of IL-9 to CD34+ cells cultured in IL-3 and IL-5 enhanced eosinophil development, and IL-9 alone induced the expression of IL-5R–α. IL-9 also up-regulated the IL-5R–α chain cell surface expression during terminal eosinophil differentiation of the HL-60 cell line. Our findings suggest that IL-9 may potentiate in vivo eosinophil function by increasing their survival and IL-5–mediated differentiation and maturation. Taken together, these results suggest a mechanism by which IL-9 potentiates airway and tissue eosinophilia.
A combination of in vitro and in vivo molecular genetic approaches have provided evidence to suggest that AP-1 (Fos/Jun) transcription factors play multiple roles in functional development of hematopoietic precursor cells into mature blood cells along most, if not all, of the hematopoietic cell lineages. This includes the monocyte/macrophage, granulocyte, megakaryocyte, mastocyte and erythroid lineages. In addition, studies using c-fos knockout mice have established a unique role for Fos, as a member of the AP-1 transcription factor complex, in determining the differentiation and activity of progenitors of the osteoclast lineage, a population of bone-forming cells which are of hematopoietic origin as well. Evidence has also accumulated to implicate AP-1 (Fos/Jun) transcription factor complexes as both positive and negative modulators of distinct apoptotic pathways in many cell types, including cells of hematopoietic origin. Fos/Jun have been implicated as positive modulators of apoptosis induced in hematopoietic progenitor cells of the myeloid lineage, a function that may relate to the control of blood cell homeostasis, as well as in programmed cell death associated with terminal differentiation of many other cell types, and apoptosis associated with withdrawal of growth/survival factors. On the other hand, the study of apoptosis induced in mammalian cells has implicated AP-1 in the protection against apoptosis induced by DNA-damaging agents. However, evidence to the contrary has been obtained as well, suggesting that AP-1 may function to modulate stress-induced apoptosis either positively or negatively, depending on the microenvironment and the cell type in which the stress stimulus is induced.
Structure-function studies of cytokines require that simple, sensitive and reliable biological assays are available. A well known property of interleukin-6 (IL-6) is that of being able to induce transcription from several liver-specific promoters in human hepatoma cells. However, the available assays of IL-6 in hepatoma cells, which are either based on the detection of increased expression of endogenous acute phase response genes or on the activation of reporter genes transfected under the control of IL-6 responsive promoters, are not very sensitive and are time consuming. We have established a new assay for IL-6 in hepatoma cells which is based on the transfection of an IL-6 inducible promoter/secreted alkaline phosphatase (SEAP) gene fusion and which measures the inducible production and release of SEAP in the culture medium. SEAP activity is measured with a simple colorimetric assay that requires no cell manipulation, thus allowing a large set of samples to be analysed simultaneously. The CRP/SEAP assay can be used in studies on the structure-function relationships of human IL-6.