Minute numbers of contaminant CD8+ T cells or CD11b+CD11c+ NK cells are the source of IFN- in IL-12/IL-18-stimulated mouse macrophage popula
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《血液学杂志》
the Institute of Clinical Microbiology, Immunology and Hygiene, University of Erlangen, Erlangen, Germany
Institute of Medical Microbiology and Hygiene, University of Freiburg, Freiburg, Germany
Abstract
Macrophages were reported to be strong producers of interferon (IFN-) after stimulation by interleukin 12 (IL-12) plus IL-18, which gave rise to a novel concept of auto-crine macrophage activation. Here, we show that peritoneal exudate and bone marrow-derived mouse macrophages generated by conventional techniques contain small quantities of CD11b+CD11c+CD31+DX5+NK1.1+ natural killer (NK) cells or CD3+CD8+TCR+ T cells, respectively. Intracellular cytokine staining, purification of macrophages by sorting, and the analysis of macrophages from alymphoid RAG2-/--chain-/- mice revealed that the high amount of IFN- protein in the supernatants of unseparated IL-12/IL-18-stimulated macrophage populations originates exclusively from the contaminating lymphoid cells. Notably, IL-12/IL-18 still induced IFN- mRNA in highly purified macrophages from wild-type mice and in macrophages from RAG2-/--chain-/- mice, whereas nuclear translocation of signal transducer and activator of transcription 4 (STAT4) and production of IFN- protein were no longer detectable. These results question the concept of autocrine macrophage activation by secreted IFN-, suggest differences in the expression of IFN- mRNA and protein between macrophages and lymphoid cells, and illustrate that the limited purity of most myeloid cell populations ( 98%) might lead to false conclusions.
Introduction
Interferon (IFN-) is a key cytokine in innate and adaptive immunity. It activates macrophages for the expression of surface major histocompatibility class II (MHC II) antigens, costimulatory molecules, and inflammatory mediators and for tumoricidal and antimicrobial activity. It regulates the proliferation and death of T lymphocytes, allows the development of a type 1 T-helper cell response, and is essential for the control of many intracellular pathogens in vivo. The functions of IFN- have been most convincingly demonstrated in studies that used neutralizing antibodies to IFN- or IFN-- or IFN- receptor-deficient mice.1-3
IFN- is typically produced by natural killer (NK) cells and CD4+ T cells, but also by CD8+ T cells, NKT cells, T cells, and B cells.1-6 More recently, myeloid cells were reported to secrete IFN-.5 Interleukin 12 (IL-12) strongly induced IFN- in bone marrow (BM)-derived as well as splenic dendritic cells (DCs).7-11 IFN- mRNA or protein was also detected in mouse or human macrophages of the lung,12,13 spleen,7 bone marrow,14-16 resting peritoneum,17 or of the peritoneal exudate following a sterile inflammation.14,18,19 Lipopolysaccharide (LPS),14,18,20 type I interferon,20 IL-12,7,12,17 IL-12 plus IL-18,15,16,19,21 or IFN- itself,22 as well as infection with different pathogens (eg, mycobacteria, Legionella, Salmonella, and chlamydia),12,13,23,24 stimulated the expression of IFN- mRNA or protein or both in macrophages. The induction of IFN- by IL-12/IL-18 received particular attention because IL-12 and IL-18 are products of macrophages, which raised the possibility of an autocrine activation loop in macrophages during the early phase of an infection.5,15 In accordance with this hypothesis, stimulation of BM-derived macrophages (BMMs) with IL-12 plus IL-18 led to the induction of inducible nitric oxide (NO) synthase and to the killing of intracellular Toxoplasma gondii, both of which were dependent on the endogenously produced IFN-.15,16
The aim of the present study was to characterize the surface phenotype of macrophage subpopulations that express high amounts of IFN- protein. Using multicolor flow cytometry, high-stringency cell sorting, intracellular cytokine staining (ICS), and transgenic mice devoid of any lymphoid cells, the analysis of peritoneal-exudate macrophages (PE-Ms) and BMMs revealed the unexpected presence of minute populations of NK cells carrying myeloid markers or of CD8+ T cells, respectively. These lymphoid cells fully accounted for the previously described strong production of IFN- protein by the macrophage populations after stimulation with IL-12 and IL-18.
Materials and methods
Mice
Female C57BL/6 and BALB/c mice were purchased from the Charles River Laboratories (Sulzfeld, Germany), and signal transducer and activator of transcription 4 (STAT4)-/- BALB/c mice were from the Jackson Laboratories (Bar Harbor, ME). Breeding pairs of H-2d RAG2/common -chain double-mutant mice (RAG2-/- c-/-)25,26 backcrossed to the BALB/c background were originally generated by A. Berns, P. Krimpenfort, and J. Kirberg (The Netherlands Cancer Institute, Amsterdam) and obtained from H. Mossmann (Max Planck Institute for Immunobiology, Freiburg, Germany). All mice were housed under specific pathogen-free conditions and used at the age of 6 to 12 weeks.
Macrophage populations and cell culture
Peritoneal exudate cells. Four days after intraperitoneal injection of 2 mL 4% Brewer thioglycolate broth (Difco, Detroit, MI) peritoneal exudate cells (PECs) were harvested from the peritoneal cavities, analyzed by fluorescence-activated cell sorting (FACS), or cultured in 96-well (1 x 105 cells/well, 200 μL) or 24-well tissue culture plates (1 x 106 cells/well, 500 μL) at 37°C and 5% CO2/95% humidified air using either RPMI 1640 (Seromed-Biochrom, Berlin, Germany; supplemented as described19 plus 5% fetal calf serum [FCS] from BioWhittaker [Verviers, Belgium]) or Dulbecco modified Eagle medium (DMEM), catalogue no. 41966-029, from Invitrogen (Karlsruhe, Germany), supplemented with 50 μM 2-mercaptoethanol [2-ME], 1% nonessential amino acids, and 5% FCS). In vitro the cells were stimulated with recombinant murine (rm) IL-12 (1 ng/mL), rmIL-18 (10 ng/mL; all from R&D Systems, Wiesbaden, Germany), IFN- (20 ng/mL; kindly provided by G. Adolf, Vienna, Austria), LPS (derived from Escherichia coli O111:B4, 0.2 or 1 μg/mL; Sigma, Deisenhofen, Germany), or Chlamydia pneumoniae strain CM-1 (American Type Culture Collection [ATCC] VR-1360; kindly provided by T. Miethke, Technical University of Munich, Germany) for 24 to 72 hours. The LPS contents of the cytokine stock solutions and of the final culture media were less than 10 to 20 pg/mL as determined by a colorimetric Limulus amebocyte lysate assay (BioWhittaker, Walkersville, MD).
In vivo, IL-12 and IL-18 (0.5 μg each per mouse) were injected intraperitoneally 18 hours prior to harvesting the PECs. After 6 hours of culture without further stimulation in the presence of brefeldin A the cells were subjected to ICS analysis.
Peritoneal exudate macrophages. For generation of adherent PE-Ms, PECs were seeded into 24-well tissue culture plates or 24-cm2 tissue culture dishes (6 x 106 cells/dish). After 2 hours nonadherent cells were washed off (3 washes with warm phosphate-buffered saline [PBS]). The adherent macrophage monolayers were stimulated in fresh medium (see "Peritoneal exudate cells"). For flow cytometry of adherent PE-Ms, the macrophages were detached by accutase (PAA Laboratories, Clbe, Germany).
Resident peritoneal cells. Resident peritoneal cells (PCs) were harvested from naive mice by flushing their peritoneal cavities and stimulated as described (see "Peritoneal exudate cells").
BMMs. BMMs were generated from total BM cells using exactly the same method, materials, and reagents (all provided by M. Modolell, Max Planck-Institute for Immunobiology, Freiburg, Germany) as in a previous publication that described the production of IFN- by BMMs.15 Briefly, BM cells were cultured in DMEM in hydrophobic Teflon bags in the presence of 10% FCS, 5% horse serum, and 15% L929 culture supernatant as a source of macrophage colony-stimulating factor (M-CSF). After 8 days the cells were harvested and analyzed by flow cytometry or stimulated (see "Peritoneal exudate cells").
Macrophage cell line. RAW 264.7 cells (ATCC no. TIB-71) were obtained from the ATCC (Rockville, MD).
FACS analysis
For surface phenotyping and cell sorting the following fluorochrome (fluorescein isothiocyanate [FITC], phycoerythrin [PE], or allophycocyanin [APC])-labeled or biotinylated monoclonal antibodies (mAbs) were used (all from BD Biosciences [Heidelberg, Germany] unless otherwise indicated): anti-CD11b(M1/70), anti-F4/80(CI:A3-1) from Caltag Laboratories (Hamburg, Germany); anti-BM8 (BMA Biomedicals, Augst, Switzerland), anti-CD68 (FA-11) from Serotec (Düsseldorf, Germany); anti-CD31(ER-MP12) from BMA Biomedicals; anti-Ly6C(ER-MP20) from BMA Biomedicals; anti-Ly6G(GR1), anti-CD11c(HL3), anti-I-A/I-E(M5/114.15.2), anti-NK1.1(PK136), anti-Pan-NK-cell(DX5), anti-CD3(145-2C11), anti-CD4(CT-CD4), anti-CD8(53-6.7), anti-TCR(H57-597), anti-CD19(1D3), and anti-CD45R/B220(RA3-6B2). For the detection of biotinylated antibodies, streptavidin-APC or streptavidin-peridinin chlorophyll protein (PerCP; BD Biosciences) was used. The specificity of the stainings was verified by the use of isotype control mAbs. Propidium iodide (PI) was included at 1 μg/mL in the final wash to detect dead cells. All analyses were performed on a FACS Calibur (BD Biosciences) applying Cell Quest Pro software. The FL3 channel was used to exclude PI+ dead cells.
Purification of cells
NK cells were positively selected as DX5+ cells from PECs by labeling with anti-DX5 MicroBeads and separating by AutoMACS (Miltenyi Biotec, Bergisch-Gladbach, Germany) and further purified by MoFlo sorting (Cytomation, Fort Collins, CO) after gating on CD11c+NK1.1+DX5+ cells. CD68+ or CD11b+F4/80+ macrophages of PECs or BMMs were purified by MoFlo sorting after staining with the corresponding mAbs. The purity of the obtained cell populations was always 99% or higher. CD4+ T cells of the spleen of naive mice were purified by positive selection after labeling with CD4 MicroBeads, using the AutoMACS separation technique (purity 93%).
Cell lysates
Monolayers of unstimulated or stimulated macrophages (IL-12/IL-18 for 24-48 hours with or without brefeldin A [10 μg/mL; Sigma] during the final 4-8 hours of stimulation) were washed 3 times with PBS and lysed in 40 mM Tris (tris(hydroxymethyl)aminomethane) buffer (pH 8) or in 20 mM Tris pH 8/150 mM NaCl/1% Triton/0.5% Nonidet P40 (NP40) buffer, containing protease inhibitors.19
ICS
Unseparated macrophage populations or purified cell populations were stimulated with IL-12 (1 ng/mL)/IL-18 (10 ng/mL) for 24 to 36 hours in 15 mL polypropylene tubes (Sarstedt, Nürnbrecht, Germany) under nonadherent conditions. After treatment with 10 μg/mL brefeldin A during the final 6 to 12 hours of stimulation, the cells were stained for surface markers, fixed with Cytofix (BD Biosciences) for 20 minutes, and incubated with APC-conjugated rat anti-mouse IFN- (XMG1.2; BD Biosciences) in permeabilization buffer (PBS, 0.5% saponin, 2% FCS). The specificity of the IFN- staining was verified by the use of an isotype control mAb and by its complete blocking after preincubation of the cells with unconjugated anti-IFN- mAb.
Immunocytology
Adherent macrophages (8-well LabTek Permanox Chambers, Nalge Nunc International, Wiesbaden, Germany) were stimulated with IL-12/IL-18 for 24 to 48 hours (with or without brefeldin A), washed 3 times with PBS, fixed with acetone, and sequentially stained for macrophage surface markers (eg, F4/80) and IFN-, using biotinylated primary antibodies (biotinylated goat anti-IFN-, R&D Systems [BAF 485]; biotinylated rat anti-IFN-, BD Biosciences [XMG1.2]) or unconjugated rat anti-IFN- (R&D Systems [mAb 785]) followed by biotinylated secondary reagents and streptavidin-horseradish peroxidase or streptavidin-alkaline phosphatase.27
ELISA
Culture supernatants were analyzed for their IFN- content by capture enzyme-linked immunosorbent assay (ELISA; capture antibody: clones 37801.11/37875.11, R&D Systems; biotinylated detection antibody: clone XMG1.2, BD Biosciences; sensitivity 20-40 pg/mL). The amount of tumor necrosis factor (TNF), IL-10, and IL-12p70 in culture supernatants was measured by an ELISA specific for TNF (R&D Systems, sensitivity 40 pg/mL), IL-10 (BD Biosciences, sensitivity 40 pg/mL), or IL-12p70 (BD Biosciences, sensitivity 100 pg/mL).
Measurement of nitrite
NO2- in supernatants was determined by the Griess assay.19
NK-cell cytotoxicity
Purified CD11c+NK1.1+DX5+cells were analyzed for their NK cell cytotoxic activity against YAC-1 tumor target cells.28
Phagocytosis assay
Macrophage monolayers in 8-well LabTek chambers were incubated with a 10- to 30-fold excess of FluoresbriteYG carboxylate microspheres (1.0 μM; Polysciences Europe, Eppelheim, Germany). After 2 hours, the cells were analyzed by fluorescence microscopy.
EMSAs
Oligonucleotides binding STAT419 were obtained from MWG-Biotech (Ebersberg, Germany). The preparation of nuclear extracts and the electrophoretic mobility shift assay (EMSA) analysis were performed as published.19
RNA preparation, RT, qualitative PCR, and real-time PCR
Total RNA was prepared with the RNeasy extraction kit (Qiagen, Hildesheim, Germany) and cDNAs were generated from 1 to 10μg RNA in the presence of random hexamer primers using the High Capacity cDNA Archive Kit (Applied Biosystems, Darmstadt, Germany) following the manufacturer's recommendations. The cDNAs were subsequently analyzed by conventional nonquantitative reverse transcription-polymerase chain reaction (RT-PCR) or by quantitative real-time RT-PCR (details are available on the Blood website; see the Supplemental Materials link at the top of the online article).
Results
Multicolor FACS analysis of thioglycolate-elicited PECs and BMMs
In PECs of C57BL/6 mice, 3 distinct subpopulations (R1, R2, R3) could be defined by forward/side scatter analysis (Figure 1A). The cells of region R1 were typical macrophages by size, granularity, expression of CD11b, F4/80, BM8, and CD68, and the absence of all tested lymphoid cell markers (CD3, CD4, CD8, TCR, CD19, B220, NK1.1, DX5; Figure 1B). The second myeloid cell population (R2) differed from the macrophage population R1 by the presence of Ly6C and GR1 and the lack of CD68 and MHC II. Unexpectedly, the cells of R2 uniformly expressed the pan-NK cell marker DX5, but not the NK cell marker NK1.1 and all other lymphoid markers tested. Cells of R3 consisted of a variety of myeloid cell types expressing different combinations of the markers CD11b, F4/80, BM8, CD31, Ly6C, GR1, CD11c, B220, and MHC II (not shown), but also contained NK cells, NKT cells, and T cells that accounted for 1.5% to 3.5% of all living PECs (Figure 1C).
In BMMs, 2 subpopulations were discernible by forward/side scatter analysis, representing about 89% (R1) and 9.5% (R3) of all living cells, respectively (Figure 2A). All cells of region R1 were positive for the myeloid markers F4/80, BM8, CD68, CD11b, CD11c, and CD31 and, thus, represented macrophages comparable to the population R1 of PECs (Figure 2B versus Figure 1B). In contrast, the composition of R3 was very heterogeneous and comprised different myeloid cells expressing various combinations of myeloid markers (data not shown). Similar to our findings with PECs, region 3 of BMMs also contained a small fraction of lymphoid cells (0.7%-4% of all living BMMs) that were identified as CD8+CD3+ T cells carrying an / T-cell receptor (TCR; Figure 2C). From these results we conclude that not only PEC cultures, but, unexpectedly, also conventional BMM cultures contain a minor population of lymphoid cells.
The phenotypic analysis of BALB/c PECs (3 experiments) or BMMs (2 experiments) showed no differences compared to that of B6 mice (data not shown).
Lymphoid cells account for the production of IFN- by inflammatory PECs and BMMs
IL-12/IL-18 were reported to strongly induce IFN- in PE-Ms19,29 and BMMs.15 In these earlier studies, the production of IFN- was monitored by ELISA, the macrophages were not sorted, and no single-cell analyses were performed to ascertain the expression of IFN- protein by macrophages.
ICS of C57BL/6 PECs stimulated with IL-12/IL-18 revealed that cells producing high amounts of IFN- were exclusively located within region R3 (Figure 3A). The IFN-+ cells were identified as NK cells (NK1.1+DX5+) and, to a minor extent, also as CD3+CD4+ and CD3+CD8+ T cells (Figure 3B). Importantly, within R3 no IFN-+ cells of myeloid origin were detectable (not shown).
Because IFN-+NK1.1+DX5+ cells not only coexpressed B220, but also the myeloid cell markers CD11b, CD11c, and CD31 (Figures 3B and 4A), we decided to purify and further characterize these cells. Compared to unselected C57BL/6 PECs, the purified CD11c+NK1.1+DX5+cells (Figure 4A) exhibited a significantly increased cytolytic activity that is typical for activated, peritoneal NK cells (Figure 4B). Titration experiments revealed reproducibly that NK cells within the PEC population are a potent source of IFN- on activation by IL-12/IL-18, but not without cytokine restimulation (Figure 4C and data not shown). As few as 1000 sorted NK cells secreted about 5 times as much IFN- protein as 100 000 cells of the unseparated PEC population. This strongly suggests that a contamination of PE-Ms with less than or equal to 0.2% NK cells accounts for the IFN- release of PE-Ms observed after stimulation with IL-12 plus IL-18.19
In most studies that reported IFN- production by peritoneal macrophages, adherent macrophages, prepared by a 1- to 2-hour adherence step and removal of nonadherent cells by 3 (or fewer) vigorous washings, rather than total peritoneal cells (PECs or PCs) were used.14,17-20 We therefore tested whether lymphoid cells are still present within macrophage monolayers derived from PECs. FACS analysis of PE-M monolayers detached by accutase clearly showed that apart from the predominant macrophage population (R1) approximately 0.3% of all recovered cells were NK, T, and NKT cells (R3; Figure 4D). Thus, the standard method for preparing adherent peritoneal macrophages does not result in the complete removal of lymphoid cells.
The ICS analysis of C57BL/6 BMMs confirmed our results obtained with the PECs. The production of IFN- on stimulation with IL-12/IL-18 was restricted to the CD3+CD8+ T cells, whereas IFN-+ macrophages (CD11b+F4/80+) were not detectable (Figure 3C).
Highly purified macrophages do not secrete IFN- on stimulation with IL-12/IL-18
Because the intracellular stainings of IFN- were performed with total PECs or BMMs in suspension cultures, we considered the possibility that the nonadherence accounts for the lack of IFN- production. Furthermore, the ICS analyses of IL-12/IL-18-stimulated PECs revealed a few ambiguous IFN-+ cells within the macrophage region R1 (Figure 3A). We therefore sorted macrophages carrying the marker CD68 (present on all PECs of R1; also positive for F4/80+), analyzed them for the expression of IFN- by ICS under nonadherent conditions, and tested them for the release of IFN- after adherence and stimulation with IL-12/IL-18 by ELISA.
Compared to freshly isolated C57BL/6 PECs, IFN- secretion in response to IL-12/IL-18 was significantly reduced in PE-Ms that were prepared by adherence of PECs and 3 subsequent washing steps (Figure 5A). Furthermore, the frequency of washing correlated inversely with the extent of IFN- release; the more often the monolayers of PE-Ms were washed, the less IFN- was present (not shown). IFN- was neither detectable in the culture supernatants (Figure 5A, ELISA) nor in the cytoplasm (Figure 5B, ICS) of highly purified CD68+ PE-Ms after stimulation with IL-12/IL-18 for 24 to 72 hours. The absent IFN- production is unlikely to result from the purification procedure because all other functions of macrophages that were tested (phagocytosis, production of TNF or NO after stimulation with IFN-/LPS, production of IL-10 or IL-12p70 after exposure to Staphylococcus aureus) remained unaltered after sorting (Figure 5A and data not shown).
Identical results were obtained with C57BL/6 BMMs. Unlike the unseparated population of BMMs, highly purified BMMs (macrophages of R1), sorted for CD11b+F4/80+ or CD68+ cells, failed to produce IFN- in response to IL-12/IL-18 as analyzed by ELISA and ICS, whereas the synthesis of TNF was unimpaired (Figure 5D-E).
The lack of detectable IFN- production after purification of the macrophage populations was independent of the mouse strain because it was also observed with sorted CD68+ PE-Ms (1 experiment) or CD11b+F4/80+ BMMs (2 experiments, not shown) derived from BALB/c mice.
These data further corroborate that the high amounts of IFN- previously detected in culture supernatants of peritoneal as well as BMM populations (95%-98% purity) do not originate from macrophages.
Highly purified macrophages do not activate STAT4 on stimulation with IL-12/IL-18
In T and NK cells stimulation with IL-12 activates STAT4.30-33 In adherent cultures of unsorted BMMs or PE-Ms, the IL-12/IL-18-induced IFN- production was accompanied by the tyrosine phosphorylation or nuclear translocation of STAT4.16,19 We therefore tested whether IL-12 plus IL-18 is able to activate STAT4 in adherent cultures of sorted (CD68+ or CD11b+F4/80+) C57BL/6 macrophages. Unlike unsorted PE-Ms or BMMs, highly purified PE-Ms and BMMs did not translocate STAT4 into the nucleus after stimulation with IL-12/IL-18 (Figure 5C,F). These results strongly suggest that in unselected macrophage populations both the production of IFN- and the activation of STAT4 are due to the presence of lymphoid cells.
RAG2-/-c-/- macrophages neither release IFN- protein nor activate STAT4 in response to IL-12/IL-18
To exclude the possibility that our cell separation technique selectively affected the ability of macrophages to produce IFN-, we investigated macrophages of RAG2-/-c-/- mice backcrossed to BALB/c. Due to a combined deficiency of the common chain and the RAG2 gene, these mice lack all lymphoid cells (T, B, NK, and NKT cells), whereas macrophages and DCs develop normally.29,34 In resident PCs (not shown), PECs, and BMMs, stimulation with IL-12 (with or without IL-18) did not lead to a detectable production of IFN- using ICS (Figure 6A) or ELISA (Figure 6B), to the activation of STAT4 as assessed by EMSA (Figure 6C), or to the generation of NO (which would be induced by endogenously produced IFN-; data not shown). C pneumoniae that was previously reported to stimulate IFN- production in BMMs of wild-type mice24 also failed to induce IFN- in RAG2-/-c-/- macrophages (not shown), as did LPS (Figure 6B). There was no general secretory defect of these cells because on stimulation with IFN-/LPS their release of TNF (Figure 6B; compare with Figure 5A,D) and NO (not shown) was comparable to that of wild-type macrophages. Finally, intraperitoneal treatment of BALB/c wild-type or RAG2-/-c-/- mice with IL-12/IL-18 in vivo (see "Materials and methods") was also unable to induce the expression of IFN- protein in PE-Ms as assessed by ICS (not shown). In contrast, IFN- protein expression was readily detectable in the peritoneal lymphoid cells of the BALB/c wild-type controls.
These results unequivocally demonstrate that both PE-Ms and BMMs of RAG2-/-c-/- mice lack the capacity to release high amounts of IFN- in response to IL-12/IL-18.
Activated primary macrophages, but not RAW264.7 macrophages, express IFN- mRNA
Earlier studies showed that IL-12 (with or without IL-18) induced IFN- mRNA in resident peritoneal macrophages, BMMs, and PE-Ms. In resident and inflammatory peritoneal macrophages the expression of IFN- mRNA was demonstrated by RT-PCR and therefore could have resulted from contaminating lymphoid cells.17,19 In BMMs, however, IFN- mRNA was directly detected by in situ hybridization.15
To ascertain that macrophages stimulated with IL-12/IL-18 express IFN- mRNA without releasing IFN- protein, we assessed 3 different macrophage populations of alymphoid RAG2-/-c-/- mice (resident PCs, PECs, and BMMs) by conventional RT-PCR analysis. In all 3 cases IFN- mRNA was clearly induced by IL-12/IL-18, in the case of PECs and BMMs also after stimulation with LPS (Figure 7A) or C pneumoniae (not shown). These results were confirmed in 2 independent experiments by quantitative real-time RT-PCR analysis (Table S1).
The up-regulation of IFN- mRNA by IL-12/IL-18 was also demonstrated in highly purified CD11b+F4/80+ C57BL/6 BMMs and, to a similar extent, in BALB/c BMMs (Figure 7B). The real-time RT-PCR further revealed that there was a comparable 1000-fold inducibility of IFN- mRNA by IL-12/IL-18 in sorted BMMs and CD4+ splenic T cells from naive BALB/c or C57BL/6 mice; however, in the chosen T-cell population the baseline expression of IFN- mRNA was strikingly higher than in the macrophages (Figure 7B). On the protein level, again no IFN- was found in the corresponding culture supernatants of sorted BMMs, whereas CD4+ T cells secreted 3.2 ± 0.1 ng/mL (mean ± SEM of 2 experiments with C57BL/6 T cells) and 3.5 ng/mL (1 experiment with BALB/c T cells) on stimulation with IL-12/IL-18 for 24 hours.
Thus, primary mouse macrophages can be readily activated for the expression of IFN- mRNA, but not for the production of IFN- protein within the sensitivity limits of the applied methods. In accordance with previous data15 neither IFN- mRNA nor protein (not shown) were detectable in RAW264.7 macrophages after stimulation with IL-12/IL-18 or LPS using conventional or real-time RT-PCR and ELISA (Figure S1 and data not shown).
Discussion
Composition and purity of macrophage populations
In PECs and day-8 BMM cultures, typical macrophages were identified by size, granularity, and the expression of surface molecules that are largely selective for (F4/80, BM8, CD68) or abundantly expressed on macrophages (CD11b; Figures 1, 2, R1).35,36 CD68 was found not only on PE-Ms as published before,37 but also on the surface of BMMs (Figure 2B).
In PECs, a second myeloid subpopulation (R2) could be defined that was also positive for F4/80, BM8, CD31, and CD11b. However, unlike the R1 macrophages, these cells were CD68 negative, expressed the markers Ly6C and GR1 (30%), and stained positively for the pan-NK cell marker DX5, whereas NK1.1 was absent. After a culture period of 24 hours, FACS analysis of the detached cell monolayer revealed that the subpopulation R2 had disappeared (not shown). This suggests that PECs of region R2 represent a precursor stage of macrophages in region R1. Based on their coexpression of a macrophage (F4/80) and a NK cell marker (DX5), the cells of R2 might be related to the F4/80+NK1.1+ cytotoxic macrophage and NK cell precursors that were previously generated from BM cells in the presence of exogenous M-CSF and IL-2.38 A similar population was also observed in the spleen and BM of mice after administration of M-CSF.39 The ontogeny and function of these F4/80+NK1.1+ (or F4/80+DX5+) cells under physiologic conditions remains currently unknown.
In region R3 of freshly isolated PECs, adherent PE-Ms, and BMMs, we not only detected subsets of myeloid cells (eg, granulocytes, DCs; not shown), but also small quantities ( 1%-4%) of NK cells or T cells or both.
In PECs, CD11b+CD11c+CD31+DX5+NK1.1+ cells were the predominant IFN--producing population after stimulation by IL-12/IL-18. We consider these cells as activated NK cells because of their high NK cell cytotoxicity, their ability to produce large amounts of IFN-, and the expression of CD11b and CD11c, which were previously found on the surface of activated human NK cells.40 The peritoneal CD11b+CD11c+CD31+DX5+NK1.1+ cells might be related to cytolytic dendritic cells (DCs) in lymphoid organs,41,42 or to the recently described splenic bitypic NK/DC regulatory cells (CD11c+DX5+), which were reported to exhibit high cytotoxic activity against NK-sensitive YAC cells, to express the NK1.1 (80%) and the F4/80 marker (30%), and to produce IFN- (25%).43
The detection of CD3+TCR+CD8+ T cells within R3 of BMMs was unexpected. Although for certain subtypes of DCs a lymphoid origin, the presence of CD8, and the expression of CD3 and pre-T mRNA were demonstrated,44,45 there is no evidence that DCs (or other myeloid cells) express TCR components on the cell surface. Furthermore, our CD3+TCR+CD8+ population was negative for myeloid cell markers (eg, CD11c), but positive for Ly6C (not shown) that is found on about 50% of all peripheral CD8+ T cells.46
Production of IFN- by macrophages
Previously, several groups including ours provided data that not only argued for the expression of IFN- mRNA,14 but also for the release of small17,24 or, in the case of BMMs or PE-Ms stimulated with IL-12/IL-18, very high (2-40 ng/mL) amounts of IFN- protein by activated macrophages.15,19,24,29 This hypothesis was supported by the binding of an anti-IFN- antibody to F4/80+ cells within resident peritoneal cells,17 the simultaneous detection of IFN- mRNA in about 30% of IL-12/IL-18-stimulated BMMs by in situ hybridization and of IFN- protein in the respective culture supernatants,15 the IL-12/IL-18-dependent activation of STAT4 in PE-Ms or BMMs with less than 2% to 5% lymphoid contaminants and with high amounts of IFN- in the conditioned medium,16,19 and the expression of IFN- mRNA or protein or both by macrophage populations even after antibody-mediated or genetic depletion of NK or T cells.7,14,17,24
Although these data were compatible with, they did not prove the hypothesis that the IFN- protein in the culture supernatants originated from macrophages. First, in none of these studies did the purity of the analyzed macrophage populations reach or exceed 99%. Our results show that as few as 0.2% activated NK cells or 0.7% CD8+ T cells are sufficient to generate the IFN- protein that was measured in cultures of PE-Ms or BMMs prepared by conventional techniques. Second, the methods applied in the earlier reports did not allow definition of the divergent cellular origin of IFN- mRNA expression and IFN- release. Instead, it was tacitly assumed that the IFN- mRNA and protein in the cultures were both derived from the most prevalent cell type, that is, the macrophage. Third, for several reasons (eg, variable surface marker expression) antibody-based methods for the elimination of T and NK cells never led to complete depletion of the target cell population so that residual NK or T cells might have caused the previously reported results.
To address this latter issue, we investigated macrophages from alymphoid RAG2-/-c-/- mice. RAG2-/-c-/- macrophages did not release any IFN- protein in response to IL-12/IL-18, LPS, or C pneumoniae, but readily expressed IFN- mRNA after exposure to these stimuli (Figures 6B and 7A and data not shown). Thus, RAG2-/-c-/- macrophages are not unresponsive to IL-12 with or without IL-18 as previously postulated on the basis of a slight reduction of the IL-12 receptor 1 mRNA,29 but have the same phenotype as highly purified wild-type macrophages; that is, they fail to release IFN- after stimulation with IL-12 or IL-12/IL-18 despite the expression of IFN- mRNA. Accordingly, the very low ( 50-250 pg/mL) or hardly measurable levels of IFN- ( 5 pg/mL) in sera or mixed spleen cell cultures of RAG2-/-c-/- mice after stimulation with IL-127,47 are unlikely to originate from macrophages, but may instead be released by nonmyeloid IFN--producing cells, for example, fibroblasts or erythroid cells.48,49
Previous immunofluorescence analyses suggested a cell-associated expression of IFN- protein in macrophages activated by LPS, C pneumoniae, or IL-12,14,17,24 although the positive IFN- staining of unstimulated macrophages that lacked IFN- mRNA by RT-PCR remained puzzling.14,17 Nevertheless, the IFN- mRNAof IL-12/IL-18-stimulated macrophages might be translated without secretion of the protein. However, even in the presence of brefeldin A, neither ICS and FACS nor immunocytochemistry nor the analysis of lysates of activated macrophages by ELISA allowed us to detect intracellular IFN- protein in PE-MsorBMMs (Figures 3, 5, and 6 and data not shown). Thus, it is highly unlikely that in IL-12/IL-18-stimulated macrophages IFN- accumulates intracellularly.
At present, we cannot exclude the possibility that macrophages produce minute amounts of IFN- protein below the sensitivity limits of our assays, that other populations of macrophages not investigated here (eg, splenic macrophages) are capable of releasing IFN-,7 and that certain other cytokines (eg, IL-2) or pathogens (eg, Listeria monocytogenes, T gondii, Salmonella typhimurium) stimulate the production of IFN- by macrophages in vitro or in vivo.7,47,50 However, in the light of the present results the previously published data deserve careful reassessment, notably with respect to the purity and phenotypic definition of the cell populations. In the same context, it might be worthwhile to revisit the production of high amounts of IFN- ( 20 ng/mL) that was reported for DC populations after stimulation with IL-12/IL-18.7,8,51
Differential regulation of IFN- in macrophages versus lymphoid cells
Within the limits of sensitivity of the applied assays IL-12 plus IL-18 clearly induced IFN- mRNA, but no IFN- protein in purified or alymphoid macrophage populations (Figures 5A,B,D,E; 6A-B; 7A-B; and Table S1). In contrast, in T cells and NK cells both IFN- mRNA and protein are readily detectable after stimulation with IL-12 plus IL-18.52-54 This suggests that the expression of IFN- in macrophages is controlled on the level of translation. Possible mechanisms include the protein kinase-dependent inactivation of elongation factors and the subsequent down-regulation of protein synthesis or stability in response to various stress factors such as oxidants, cytokine stimulation, or amino acid depletion, which has already been described for macrophages.55-57
In T and NK cells the IL-12- or IL-12/IL-18-induced transcription of the IFN- gene requires the phosphorylation and translocation of STAT4 into the nucleus where it binds to the IFN- promotor.31,33,58-60 Our observation that the removal of the lymphoid contaminants (0.2%-0.7%) from macrophage populations completely eliminated the STAT4 signal in the EMSA analysis raises the intriguing possibility that the expression of IFN- mRNA in macrophages occurs in a STAT4-independent manner. Conversely, the translation of IFN- mRNA in macrophages might only occur in the presence of STAT activation. Ongoing studies further address this issue.
In conclusion, the 2 most frequently used macrophage populations (adherent PE-Ms and BMMs) contain unexpected lymphoid cells (when generated by routine methods) that account for the high amounts of IFN- previously found in supernatants of activated macrophage cultures. Thus, a purity of myeloid cell preparations of 95% to 98% is insufficient to attribute a specific (eg, secretory) function to the main subpopulation of cells. The discovery of T cells in cultures of BMMs questions the previous use of BMM cultures as selective sources of macrophages. The presence ofmyeloid markers (CD11b, CD11c, CD31) on the surface of peritoneal NK cells and the expression of NK cell markers (DX5) by subpopulations of macrophages exemplify that macrophages cannot be identified by a single phenotypic marker. The observation that highly purified macrophages express IFN- mRNA, but fail to produce readily detectable amounts of IFN- protein in response to IL-12/IL-18, challenges the concept of autocrine macrophage activation and points to a hitherto unrecognized translational control of IFN- production.
Acknowledgements
We thank M. Modolell and N. Justies (Max Planck Institute for Immunobiology, Freiburg, Germany) for all materials and reagents required for the generation of BMMs, T. Miethke (Tu Munich, Germany) for C. pneumoniae, H. Mossmann (Max Planck Institute for Immunobiology, Freiburg, Germany) for providing mice, C. Kurzmann for technical assistance, and P. Rohwer (Nikolaus-Fiebiger-Center for Molecular Medicine, Erlangen, Germany), and K. Geiger and M. Follo (Core Facility, Medical Center, Freiburg, Germany) for cell sorting.
Footnotes
Prepublished online as Blood First Edition Paper, September 21, 2004; DOI 10.1182/blood-2004-05-1749.
Supported by the priority program "Innate Immunity" SPP 1110 (DFG996/3-1) and the Sonderforschungsbereich 620 (project A9) of the German Research Foundation and by the European Community (QLK2-CT-2001-02103).
The online version of the article contains a data supplement.
The publication costs of this article were defrayed in part by page charge payment. Therefore, and solely to indicate this fact, this article is hereby marked "advertisement" in accordance with 18 U.S.C. section 1734.
References
Farrar MA, Schreiber RD. The molecular cell biology of interferon-gamma and its receptor. Annu Rev Immunol. 1993;11: 571-611.
Murray HW. Interferon-gamma and host antimicrobial defense: current and future clinical applications. Am J Med. 1994;97: 459-467.
Schroder K, Hertzog PJ, Ravasi T, Hume DA. Interferon-gamma: an overview of signals, mechanisms and functions. J Leukoc Biol. 2004;75: 163-189.
Leite-De-Moraes MC, Hameg A, Arnould A, et al. A distinct IL-18-induced pathway to fully activate NK T lymphocytes independently from TCR engagement. J Immunol. 1999;163: 5871-5876.
Frucht DM, Fukao T, Bogdan C, Schindler H, O'Shea JJ, Koyasu S. IFN-gamma production by antigen-presenting cells: mechanisms emerge. Trends Immunol. 2001;22: 556-560.
Schleicher U, Mattner J, Blos M, et al. Control of Leishmania major in the absence of Tyk2 kinase. Eur J Immunol. 2004;34: 519-529.
Ohteki T, Fukao T, Suzue K, et al. Interleukin 12-dependent interferon gamma production by CD8alpha+ lymphoid dendritic cells. J Exp Med. 1999;189: 1981-1986.
Hochrein H, Shortman K, Vremec D, Scott B, Hertzog P, O'Keeffe M. Differential production of IL-12, IFN-alpha, and IFN-gamma by mouse dendritic cell subsets. J Immunol. 2001;166: 5448-5455.
Stober D, Schirmbeck R, Reimann J. IL-12/IL-18-dependent IFN-gamma release by murine dendritic cells. J Immunol. 2001;167: 957-965.
Fukao T, Matsuda S, Koyasu S. Synergistic effects of IL-4 and IL-18 on IL-12-dependent IFN-gamma production by dendritic cells. J Immunol. 2000;164: 64-71.
Fukao T, Koyasu S. Expression of functional IL-2 receptors on mature splenic dendritic cells. Eur J Immunol. 2000;30: 1453-1457.
Fenton MJ, Vermeulen MW, Kim S, Burdick M, Strieter RM, Kornfeld H. Induction of gamma interferon production in human alveolar macrophages by Mycobacterium tuberculosis. Infect Immun. 1997;65: 5149-5156.
Wang J, Wakeham J, Harkness R, Xing Z. Macrophages are a significant source of type 1 cytokines during mycobacterial infection. J Clin Invest. 1999;103: 1023-1029.
Fultz MJ, Barber SA, Dieffenbach CW, Vogel SN. Induction of IFN-gamma in macrophages by lipopolysaccharide. Int Immunol. 1993;5: 1383-1392.
Munder M, Mallo M, Eichmann K, Modolell M. Murine macrophages secrete interferon gamma upon combined stimulation with interleukin (IL)-12 and IL-18: a novel pathway of autocrine macrophage activation. J Exp Med. 1998;187: 2103-2108.
Fukao T, Frucht DM, Yap G, Gadina M, O'Shea JJ, Koyasu S. Inducible expression of Stat4 in dendritic cells and macrophages and its critical role in innate and adaptive immune responses. J Immunol. 2001;166: 4446-4455.
Puddu P, Fantuzzi L, Borghi P, et al. IL-12 induces IFN-gamma expression and secretion in mouse peritoneal macrophages. J Immunol. 1997;159: 3490-3497.
Salkowski CA, Kopydlowski K, Blanco J, Cody MJ, McNally R, Vogel SN. IL-12 is dysregulated in macrophages from IRF-1 and IRF-2 knockout mice. J Immunol. 1999;163: 1529-1536.
Schindler H, Lutz MB, Rollinghoff M, Bogdan C. The production of IFN-gamma by IL-12/IL-18-activated macrophages requires STAT4 signaling and is inhibited by IL-4. J Immunol. 2001;166: 3075-3082.
Fultz MJ, Vogel SN. Autoregulation by interferons provides an endogenous `priming' signal for LPS-responsive macrophages. J Endotoxin Res. 1995; 2: 77-84.
Fantuzzi L, Puddu P, Varano B, Del Corno M, Belardelli F, Gessani S. IFN-alpha and IL-18 exert opposite regulatory effects on the IL-12 receptor expression and IL-12-induced IFN-gamma production in mouse macrophages: novel pathways in the regulation of the inflammatory response of macrophages. J Leukoc Biol. 2000;68: 707-714.
Di Marzio P, Puddu P, Conti L, Belardelli F, Gessani S. Interferon gamma upregulates its own gene expression in mouse peritoneal macrophages. J Exp Med. 1994;179: 1731-1736.
Salins S, Newton C, Widen R, Klein TW, Friedman H. Differential induction of gamma interferon in Legionella pneumophila-infected macrophages from BALB/c and A/J mice. Infect Immun. 2001;69: 3605-3610.
Rothfuchs AG, Gigliotti D, Palmblad K, Andersson U, Wigzell H, Rottenberg ME. IFN-alpha beta-dependent, IFN-gamma secretion by bone marrow-derived macrophages controls an intracellular bacterial infection. J Immunol. 2001;167: 6453-6461.
Kirberg J, Berns A, von Boehmer H. Peripheral T cell survival requires continual ligation of the T cell receptor to major histocompatibility complex-encoded molecules. J Exp Med. 1997;186: 1269-1275.
Jacobs H, Krimpenfort P, Haks M, et al. PIM1 reconstitutes thymus cellularity in interleukin 7- and common -chain-mutant mice and permits thymocyte maturation in Rag-, but not CD3-deficient mice. J Exp Med. 1999;190: 1059-1068.
Stenger S, Donhauser N, Thüring H, Rllinghoff M, Bogdan C. Reactivation of latent leishmaniasis by inhibition of inducible nitric oxide synthase. J Exp Med. 1996;183: 1501-1514.
Diefenbach A, Schindler H, Donhauser N, et al. Type 1 interferon (IFNalpha/beta) and type 2 nitric oxide synthase regulate the innate immune response to a protozoan parasite. Immunity. 1998;8: 77-87.
Ohteki T, Suzue K, Maki C, Ota T, Koyasu S. Critical role of IL-15-IL-15R for antigen-presenting cell functions in the innate immune response. Nat Immunol. 2001;2: 1138-1143.
Jacobson NG, Szabo SJ, Weber-Nordt RM, et al. Interleukin 12 signaling in T helper type 1 (Th1) cells involves tyrosine phosphorylation of signal transducer and activator of transcription (Stat)3 and Stat4. J Exp Med. 1995;181: 1755-1762.
Thierfelder WE, van Deursen JM, Yamamoto K, et al. Requirement for Stat4 in interleukin-12-mediated responses of natural killer and T cells. Nature. 1996;382: 171-174.
Yu CR, Lin JX, Fink DW, Akira S, Bloom ET, Yamauchi A. Differential utilization of Janus kinase-signal transducer activator of transcription signaling pathways in the stimulation of human natural killer cells by IL-2, IL-12, and IFN-alpha. J Immunol. 1996;157: 126-137.
Kaplan MH, Sun YL, Hoey T, Grusby MJ. Impaired IL-12 responses and enhanced development of Th2 cells in Stat4-deficient mice. Nature. 1996;382: 174-177.
Colucci F, Soudais C, Rosmaraki E, Vanes L, Tybulewicz VL, Di Santo JP. Dissecting NK cell development using a novel alymphoid mouse model: investigating the role of the c-abl protooncogene in murine NK cell differentiation. J Immunol. 1999;162: 2761-2765.
Leenen PJ, de Bruijn MF, Voerman JS, Campbell PA, van Ewijk W. Markers of mouse macrophage development detected by monoclonal antibodies. J Immunol Methods. 1994;174: 5-19.
Martinez-Pomares L, Platt N, McKnight AJ, da Silva RP, Gordon S. Macrophage membrane molecules: markers of tissue differentiation and heterogeneity. Immunobiology. 1996;195: 407-416.
Ramprasad MP, Terpstra V, Kondratenko N, Quehenberger O, Steinberg D. Cell surface expression of mouse macrosialin and human CD68 and their role as macrophage receptors for oxidized low density lipoprotein. Proc Natl Acad Sci U S A. 1996;93: 14833-14838.
Li H, Schwinzer R, Baccarini M, Lohmann-Matthes ML. Cooperative effects of colony-stimulating factor 1 and recombinant interleukin-2 on proliferation and induction of cytotoxicity of macrophage precursors generated from mouse bone marrow cell cultures. J Exp Med. 1989;169: 973-986.
Sakurai T, Misawa E, Yamada M, Hayasawa H, Motoyoshi K. Comparative study and effects of macrophage colony-stimulating factor (M-CSF) administration on NK1.1+ cells in mouse spleen and bone marrow. Immunopharmacol Immunotoxicol. 2002;24: 547-566.
Werfel T, Witter W, Gtze O. CD11b and CD11c antigens are rapidly increased on human natural killer cells upon activation. J Immunol. 1991;147: 2423-2427.
Fanger NA, Maliszewski CR, Schooley K, Griffith TS. Human dendritic cells mediate cellular apoptosis via tumor necrosis factor-related apoptosis-inducing ligand (TRAIL). J Exp Med. 1999; 190: 1155-1164.
Trinite B, Voisine C, Yagita H, Josien R. A subset of cytolytic dendritic cells in rat. J Immunol. 2000; 165: 4202-4208.
Homann D, Jahreis A, Wolfe T, et al. CD40L blockade prevents autoimmune diabetes by induction of bitypic NK/DC regulatory cells. Immunity. 2002;16: 403-415.
Corcoran L, Ferrero I, Vremec D, et al. The lymphoid past of mouse plasmacytoid cells and thymic dendritic cells. J Immunol. 2003;170: 4926-4932.
Ardavin C. Origin, precursors and differentiation of mouse dendritic cells. Nat Rev Immunol. 2003; 3: 1-9.
Shevach EM, Korty PE. Ly-6: a multigene family in search of a function. Immunol Today. 1989;10: 195-200.
Suzue K, Asai T, Takeuchi T, Koyasu S. In vivo role of IFN-gamma produced by antigen-presenting cells in early host defense against intracellular pathogens. Eur J Immunol. 2003;33: 2666-2675.
Rady PL, Cadet P, Bui TK, et al. Production of interferon messenger RNA by cells of non-immune origin. Cytokine. 1995;7: 793-798.
Sennikov SV, Eremina LV, Injelevskaya TV, Krysov SV, Silkov AN, Kozlov VA. Cytokine-synthesizing activity of erythroid cells. Russ J Immunol. 2001;6: 193-202.
Kirby AC, Yrlid U, Wick MJ. The innate immune response differs in primary and secondary Salmonella infection. J Immunol. 2002;169: 4450-4459.
Lugo-Villarino G, Maldonado-Lopez R, Possemato R, Penaranda C, Glimcher LH. T-bet is required for optimal production of IFN-gamma and antigen-specific T cell activation by dendritic cells. Proc Natl Acad Sci U S A. 2003;100: 7749-7754.
Yoshimoto T, Takeda K, Tanaka T, et al. IL-12 up-regulates IL-18 receptor expression on T cells, Th1 cells, and B cells: synergism with IL-18 for IFN-gamma production. J Immunol. 1998;161: 3400-3407.
Kohno K, Kataoka J, Ohtsuki T, et al. IFN-gamma-inducing factor (IGIF) is a costimulatory factor on the activation of Th1 but not Th2 cells and exerts its effect independently of IL-12. J Immunol. 1997;158: 1541-1550.
Stoll S, Jonuleit H, Schmitt E, et al. Production of functional IL-18 by different subtypes of murine and human dendritic cells (DC): DC-derived IL-18 enhances IL-12-dependent Th1 development. Eur J Immunol. 1998;28: 3231-3239.
Wang X, Campbell LE, Miller CM, Proud CG. Amino acid availability regulates p70 S6 kinase and multiple translation factors. Biochem J. 1998; 334: 261-267.
Harding HP, Zhang Y, Zeng H, et al. An integrated stress response regulates amino acid metabolism and resistance to oxidative stress. Mol Cell. 2003; 11: 619-633.
El-Gayar S, Thüring-Nahler H, Pfeilschifter J, Rllinghoff M, Bogdan C. Translational control of inducible nitric oxide synthase by IL-13 and arginine availability in inflammatory macrophages. J Immunol. 2003;171: 4561-4568.
Robinson D, Shibuya K, Mui A, et al. IGIF does not drive Th1 development but synergizes with IL-12 for interferon-gamma production and activates IRAK and NFkappaB. Immunity. 1997;7: 571-581.
Barbulescu K, Becker C, Schlaak JF, Schmitt E, Meyer zum Buschenfelde KH, Neurath MF. IL-12 and IL-18 differentially regulate the transcriptional activity of the human IFN-gamma promoter in primary CD4+ T lymphocytes. J Immunol. 1998;160: 3642-3647.
Nakahira M, Ahn HJ, Park WR, et al. Synergy of IL-12 and IL-18 for IFN-gamma gene expression: IL-12-induced STAT4 contributes to IFN-gamma promoter activation by up-regulating the binding activity of IL-18-induced activator protein 1. J Immunol. 2002;168: 1146-1153.(Ulrike Schleicher, Andrea)
Institute of Medical Microbiology and Hygiene, University of Freiburg, Freiburg, Germany
Abstract
Macrophages were reported to be strong producers of interferon (IFN-) after stimulation by interleukin 12 (IL-12) plus IL-18, which gave rise to a novel concept of auto-crine macrophage activation. Here, we show that peritoneal exudate and bone marrow-derived mouse macrophages generated by conventional techniques contain small quantities of CD11b+CD11c+CD31+DX5+NK1.1+ natural killer (NK) cells or CD3+CD8+TCR+ T cells, respectively. Intracellular cytokine staining, purification of macrophages by sorting, and the analysis of macrophages from alymphoid RAG2-/--chain-/- mice revealed that the high amount of IFN- protein in the supernatants of unseparated IL-12/IL-18-stimulated macrophage populations originates exclusively from the contaminating lymphoid cells. Notably, IL-12/IL-18 still induced IFN- mRNA in highly purified macrophages from wild-type mice and in macrophages from RAG2-/--chain-/- mice, whereas nuclear translocation of signal transducer and activator of transcription 4 (STAT4) and production of IFN- protein were no longer detectable. These results question the concept of autocrine macrophage activation by secreted IFN-, suggest differences in the expression of IFN- mRNA and protein between macrophages and lymphoid cells, and illustrate that the limited purity of most myeloid cell populations ( 98%) might lead to false conclusions.
Introduction
Interferon (IFN-) is a key cytokine in innate and adaptive immunity. It activates macrophages for the expression of surface major histocompatibility class II (MHC II) antigens, costimulatory molecules, and inflammatory mediators and for tumoricidal and antimicrobial activity. It regulates the proliferation and death of T lymphocytes, allows the development of a type 1 T-helper cell response, and is essential for the control of many intracellular pathogens in vivo. The functions of IFN- have been most convincingly demonstrated in studies that used neutralizing antibodies to IFN- or IFN-- or IFN- receptor-deficient mice.1-3
IFN- is typically produced by natural killer (NK) cells and CD4+ T cells, but also by CD8+ T cells, NKT cells, T cells, and B cells.1-6 More recently, myeloid cells were reported to secrete IFN-.5 Interleukin 12 (IL-12) strongly induced IFN- in bone marrow (BM)-derived as well as splenic dendritic cells (DCs).7-11 IFN- mRNA or protein was also detected in mouse or human macrophages of the lung,12,13 spleen,7 bone marrow,14-16 resting peritoneum,17 or of the peritoneal exudate following a sterile inflammation.14,18,19 Lipopolysaccharide (LPS),14,18,20 type I interferon,20 IL-12,7,12,17 IL-12 plus IL-18,15,16,19,21 or IFN- itself,22 as well as infection with different pathogens (eg, mycobacteria, Legionella, Salmonella, and chlamydia),12,13,23,24 stimulated the expression of IFN- mRNA or protein or both in macrophages. The induction of IFN- by IL-12/IL-18 received particular attention because IL-12 and IL-18 are products of macrophages, which raised the possibility of an autocrine activation loop in macrophages during the early phase of an infection.5,15 In accordance with this hypothesis, stimulation of BM-derived macrophages (BMMs) with IL-12 plus IL-18 led to the induction of inducible nitric oxide (NO) synthase and to the killing of intracellular Toxoplasma gondii, both of which were dependent on the endogenously produced IFN-.15,16
The aim of the present study was to characterize the surface phenotype of macrophage subpopulations that express high amounts of IFN- protein. Using multicolor flow cytometry, high-stringency cell sorting, intracellular cytokine staining (ICS), and transgenic mice devoid of any lymphoid cells, the analysis of peritoneal-exudate macrophages (PE-Ms) and BMMs revealed the unexpected presence of minute populations of NK cells carrying myeloid markers or of CD8+ T cells, respectively. These lymphoid cells fully accounted for the previously described strong production of IFN- protein by the macrophage populations after stimulation with IL-12 and IL-18.
Materials and methods
Mice
Female C57BL/6 and BALB/c mice were purchased from the Charles River Laboratories (Sulzfeld, Germany), and signal transducer and activator of transcription 4 (STAT4)-/- BALB/c mice were from the Jackson Laboratories (Bar Harbor, ME). Breeding pairs of H-2d RAG2/common -chain double-mutant mice (RAG2-/- c-/-)25,26 backcrossed to the BALB/c background were originally generated by A. Berns, P. Krimpenfort, and J. Kirberg (The Netherlands Cancer Institute, Amsterdam) and obtained from H. Mossmann (Max Planck Institute for Immunobiology, Freiburg, Germany). All mice were housed under specific pathogen-free conditions and used at the age of 6 to 12 weeks.
Macrophage populations and cell culture
Peritoneal exudate cells. Four days after intraperitoneal injection of 2 mL 4% Brewer thioglycolate broth (Difco, Detroit, MI) peritoneal exudate cells (PECs) were harvested from the peritoneal cavities, analyzed by fluorescence-activated cell sorting (FACS), or cultured in 96-well (1 x 105 cells/well, 200 μL) or 24-well tissue culture plates (1 x 106 cells/well, 500 μL) at 37°C and 5% CO2/95% humidified air using either RPMI 1640 (Seromed-Biochrom, Berlin, Germany; supplemented as described19 plus 5% fetal calf serum [FCS] from BioWhittaker [Verviers, Belgium]) or Dulbecco modified Eagle medium (DMEM), catalogue no. 41966-029, from Invitrogen (Karlsruhe, Germany), supplemented with 50 μM 2-mercaptoethanol [2-ME], 1% nonessential amino acids, and 5% FCS). In vitro the cells were stimulated with recombinant murine (rm) IL-12 (1 ng/mL), rmIL-18 (10 ng/mL; all from R&D Systems, Wiesbaden, Germany), IFN- (20 ng/mL; kindly provided by G. Adolf, Vienna, Austria), LPS (derived from Escherichia coli O111:B4, 0.2 or 1 μg/mL; Sigma, Deisenhofen, Germany), or Chlamydia pneumoniae strain CM-1 (American Type Culture Collection [ATCC] VR-1360; kindly provided by T. Miethke, Technical University of Munich, Germany) for 24 to 72 hours. The LPS contents of the cytokine stock solutions and of the final culture media were less than 10 to 20 pg/mL as determined by a colorimetric Limulus amebocyte lysate assay (BioWhittaker, Walkersville, MD).
In vivo, IL-12 and IL-18 (0.5 μg each per mouse) were injected intraperitoneally 18 hours prior to harvesting the PECs. After 6 hours of culture without further stimulation in the presence of brefeldin A the cells were subjected to ICS analysis.
Peritoneal exudate macrophages. For generation of adherent PE-Ms, PECs were seeded into 24-well tissue culture plates or 24-cm2 tissue culture dishes (6 x 106 cells/dish). After 2 hours nonadherent cells were washed off (3 washes with warm phosphate-buffered saline [PBS]). The adherent macrophage monolayers were stimulated in fresh medium (see "Peritoneal exudate cells"). For flow cytometry of adherent PE-Ms, the macrophages were detached by accutase (PAA Laboratories, Clbe, Germany).
Resident peritoneal cells. Resident peritoneal cells (PCs) were harvested from naive mice by flushing their peritoneal cavities and stimulated as described (see "Peritoneal exudate cells").
BMMs. BMMs were generated from total BM cells using exactly the same method, materials, and reagents (all provided by M. Modolell, Max Planck-Institute for Immunobiology, Freiburg, Germany) as in a previous publication that described the production of IFN- by BMMs.15 Briefly, BM cells were cultured in DMEM in hydrophobic Teflon bags in the presence of 10% FCS, 5% horse serum, and 15% L929 culture supernatant as a source of macrophage colony-stimulating factor (M-CSF). After 8 days the cells were harvested and analyzed by flow cytometry or stimulated (see "Peritoneal exudate cells").
Macrophage cell line. RAW 264.7 cells (ATCC no. TIB-71) were obtained from the ATCC (Rockville, MD).
FACS analysis
For surface phenotyping and cell sorting the following fluorochrome (fluorescein isothiocyanate [FITC], phycoerythrin [PE], or allophycocyanin [APC])-labeled or biotinylated monoclonal antibodies (mAbs) were used (all from BD Biosciences [Heidelberg, Germany] unless otherwise indicated): anti-CD11b(M1/70), anti-F4/80(CI:A3-1) from Caltag Laboratories (Hamburg, Germany); anti-BM8 (BMA Biomedicals, Augst, Switzerland), anti-CD68 (FA-11) from Serotec (Düsseldorf, Germany); anti-CD31(ER-MP12) from BMA Biomedicals; anti-Ly6C(ER-MP20) from BMA Biomedicals; anti-Ly6G(GR1), anti-CD11c(HL3), anti-I-A/I-E(M5/114.15.2), anti-NK1.1(PK136), anti-Pan-NK-cell(DX5), anti-CD3(145-2C11), anti-CD4(CT-CD4), anti-CD8(53-6.7), anti-TCR(H57-597), anti-CD19(1D3), and anti-CD45R/B220(RA3-6B2). For the detection of biotinylated antibodies, streptavidin-APC or streptavidin-peridinin chlorophyll protein (PerCP; BD Biosciences) was used. The specificity of the stainings was verified by the use of isotype control mAbs. Propidium iodide (PI) was included at 1 μg/mL in the final wash to detect dead cells. All analyses were performed on a FACS Calibur (BD Biosciences) applying Cell Quest Pro software. The FL3 channel was used to exclude PI+ dead cells.
Purification of cells
NK cells were positively selected as DX5+ cells from PECs by labeling with anti-DX5 MicroBeads and separating by AutoMACS (Miltenyi Biotec, Bergisch-Gladbach, Germany) and further purified by MoFlo sorting (Cytomation, Fort Collins, CO) after gating on CD11c+NK1.1+DX5+ cells. CD68+ or CD11b+F4/80+ macrophages of PECs or BMMs were purified by MoFlo sorting after staining with the corresponding mAbs. The purity of the obtained cell populations was always 99% or higher. CD4+ T cells of the spleen of naive mice were purified by positive selection after labeling with CD4 MicroBeads, using the AutoMACS separation technique (purity 93%).
Cell lysates
Monolayers of unstimulated or stimulated macrophages (IL-12/IL-18 for 24-48 hours with or without brefeldin A [10 μg/mL; Sigma] during the final 4-8 hours of stimulation) were washed 3 times with PBS and lysed in 40 mM Tris (tris(hydroxymethyl)aminomethane) buffer (pH 8) or in 20 mM Tris pH 8/150 mM NaCl/1% Triton/0.5% Nonidet P40 (NP40) buffer, containing protease inhibitors.19
ICS
Unseparated macrophage populations or purified cell populations were stimulated with IL-12 (1 ng/mL)/IL-18 (10 ng/mL) for 24 to 36 hours in 15 mL polypropylene tubes (Sarstedt, Nürnbrecht, Germany) under nonadherent conditions. After treatment with 10 μg/mL brefeldin A during the final 6 to 12 hours of stimulation, the cells were stained for surface markers, fixed with Cytofix (BD Biosciences) for 20 minutes, and incubated with APC-conjugated rat anti-mouse IFN- (XMG1.2; BD Biosciences) in permeabilization buffer (PBS, 0.5% saponin, 2% FCS). The specificity of the IFN- staining was verified by the use of an isotype control mAb and by its complete blocking after preincubation of the cells with unconjugated anti-IFN- mAb.
Immunocytology
Adherent macrophages (8-well LabTek Permanox Chambers, Nalge Nunc International, Wiesbaden, Germany) were stimulated with IL-12/IL-18 for 24 to 48 hours (with or without brefeldin A), washed 3 times with PBS, fixed with acetone, and sequentially stained for macrophage surface markers (eg, F4/80) and IFN-, using biotinylated primary antibodies (biotinylated goat anti-IFN-, R&D Systems [BAF 485]; biotinylated rat anti-IFN-, BD Biosciences [XMG1.2]) or unconjugated rat anti-IFN- (R&D Systems [mAb 785]) followed by biotinylated secondary reagents and streptavidin-horseradish peroxidase or streptavidin-alkaline phosphatase.27
ELISA
Culture supernatants were analyzed for their IFN- content by capture enzyme-linked immunosorbent assay (ELISA; capture antibody: clones 37801.11/37875.11, R&D Systems; biotinylated detection antibody: clone XMG1.2, BD Biosciences; sensitivity 20-40 pg/mL). The amount of tumor necrosis factor (TNF), IL-10, and IL-12p70 in culture supernatants was measured by an ELISA specific for TNF (R&D Systems, sensitivity 40 pg/mL), IL-10 (BD Biosciences, sensitivity 40 pg/mL), or IL-12p70 (BD Biosciences, sensitivity 100 pg/mL).
Measurement of nitrite
NO2- in supernatants was determined by the Griess assay.19
NK-cell cytotoxicity
Purified CD11c+NK1.1+DX5+cells were analyzed for their NK cell cytotoxic activity against YAC-1 tumor target cells.28
Phagocytosis assay
Macrophage monolayers in 8-well LabTek chambers were incubated with a 10- to 30-fold excess of FluoresbriteYG carboxylate microspheres (1.0 μM; Polysciences Europe, Eppelheim, Germany). After 2 hours, the cells were analyzed by fluorescence microscopy.
EMSAs
Oligonucleotides binding STAT419 were obtained from MWG-Biotech (Ebersberg, Germany). The preparation of nuclear extracts and the electrophoretic mobility shift assay (EMSA) analysis were performed as published.19
RNA preparation, RT, qualitative PCR, and real-time PCR
Total RNA was prepared with the RNeasy extraction kit (Qiagen, Hildesheim, Germany) and cDNAs were generated from 1 to 10μg RNA in the presence of random hexamer primers using the High Capacity cDNA Archive Kit (Applied Biosystems, Darmstadt, Germany) following the manufacturer's recommendations. The cDNAs were subsequently analyzed by conventional nonquantitative reverse transcription-polymerase chain reaction (RT-PCR) or by quantitative real-time RT-PCR (details are available on the Blood website; see the Supplemental Materials link at the top of the online article).
Results
Multicolor FACS analysis of thioglycolate-elicited PECs and BMMs
In PECs of C57BL/6 mice, 3 distinct subpopulations (R1, R2, R3) could be defined by forward/side scatter analysis (Figure 1A). The cells of region R1 were typical macrophages by size, granularity, expression of CD11b, F4/80, BM8, and CD68, and the absence of all tested lymphoid cell markers (CD3, CD4, CD8, TCR, CD19, B220, NK1.1, DX5; Figure 1B). The second myeloid cell population (R2) differed from the macrophage population R1 by the presence of Ly6C and GR1 and the lack of CD68 and MHC II. Unexpectedly, the cells of R2 uniformly expressed the pan-NK cell marker DX5, but not the NK cell marker NK1.1 and all other lymphoid markers tested. Cells of R3 consisted of a variety of myeloid cell types expressing different combinations of the markers CD11b, F4/80, BM8, CD31, Ly6C, GR1, CD11c, B220, and MHC II (not shown), but also contained NK cells, NKT cells, and T cells that accounted for 1.5% to 3.5% of all living PECs (Figure 1C).
In BMMs, 2 subpopulations were discernible by forward/side scatter analysis, representing about 89% (R1) and 9.5% (R3) of all living cells, respectively (Figure 2A). All cells of region R1 were positive for the myeloid markers F4/80, BM8, CD68, CD11b, CD11c, and CD31 and, thus, represented macrophages comparable to the population R1 of PECs (Figure 2B versus Figure 1B). In contrast, the composition of R3 was very heterogeneous and comprised different myeloid cells expressing various combinations of myeloid markers (data not shown). Similar to our findings with PECs, region 3 of BMMs also contained a small fraction of lymphoid cells (0.7%-4% of all living BMMs) that were identified as CD8+CD3+ T cells carrying an / T-cell receptor (TCR; Figure 2C). From these results we conclude that not only PEC cultures, but, unexpectedly, also conventional BMM cultures contain a minor population of lymphoid cells.
The phenotypic analysis of BALB/c PECs (3 experiments) or BMMs (2 experiments) showed no differences compared to that of B6 mice (data not shown).
Lymphoid cells account for the production of IFN- by inflammatory PECs and BMMs
IL-12/IL-18 were reported to strongly induce IFN- in PE-Ms19,29 and BMMs.15 In these earlier studies, the production of IFN- was monitored by ELISA, the macrophages were not sorted, and no single-cell analyses were performed to ascertain the expression of IFN- protein by macrophages.
ICS of C57BL/6 PECs stimulated with IL-12/IL-18 revealed that cells producing high amounts of IFN- were exclusively located within region R3 (Figure 3A). The IFN-+ cells were identified as NK cells (NK1.1+DX5+) and, to a minor extent, also as CD3+CD4+ and CD3+CD8+ T cells (Figure 3B). Importantly, within R3 no IFN-+ cells of myeloid origin were detectable (not shown).
Because IFN-+NK1.1+DX5+ cells not only coexpressed B220, but also the myeloid cell markers CD11b, CD11c, and CD31 (Figures 3B and 4A), we decided to purify and further characterize these cells. Compared to unselected C57BL/6 PECs, the purified CD11c+NK1.1+DX5+cells (Figure 4A) exhibited a significantly increased cytolytic activity that is typical for activated, peritoneal NK cells (Figure 4B). Titration experiments revealed reproducibly that NK cells within the PEC population are a potent source of IFN- on activation by IL-12/IL-18, but not without cytokine restimulation (Figure 4C and data not shown). As few as 1000 sorted NK cells secreted about 5 times as much IFN- protein as 100 000 cells of the unseparated PEC population. This strongly suggests that a contamination of PE-Ms with less than or equal to 0.2% NK cells accounts for the IFN- release of PE-Ms observed after stimulation with IL-12 plus IL-18.19
In most studies that reported IFN- production by peritoneal macrophages, adherent macrophages, prepared by a 1- to 2-hour adherence step and removal of nonadherent cells by 3 (or fewer) vigorous washings, rather than total peritoneal cells (PECs or PCs) were used.14,17-20 We therefore tested whether lymphoid cells are still present within macrophage monolayers derived from PECs. FACS analysis of PE-M monolayers detached by accutase clearly showed that apart from the predominant macrophage population (R1) approximately 0.3% of all recovered cells were NK, T, and NKT cells (R3; Figure 4D). Thus, the standard method for preparing adherent peritoneal macrophages does not result in the complete removal of lymphoid cells.
The ICS analysis of C57BL/6 BMMs confirmed our results obtained with the PECs. The production of IFN- on stimulation with IL-12/IL-18 was restricted to the CD3+CD8+ T cells, whereas IFN-+ macrophages (CD11b+F4/80+) were not detectable (Figure 3C).
Highly purified macrophages do not secrete IFN- on stimulation with IL-12/IL-18
Because the intracellular stainings of IFN- were performed with total PECs or BMMs in suspension cultures, we considered the possibility that the nonadherence accounts for the lack of IFN- production. Furthermore, the ICS analyses of IL-12/IL-18-stimulated PECs revealed a few ambiguous IFN-+ cells within the macrophage region R1 (Figure 3A). We therefore sorted macrophages carrying the marker CD68 (present on all PECs of R1; also positive for F4/80+), analyzed them for the expression of IFN- by ICS under nonadherent conditions, and tested them for the release of IFN- after adherence and stimulation with IL-12/IL-18 by ELISA.
Compared to freshly isolated C57BL/6 PECs, IFN- secretion in response to IL-12/IL-18 was significantly reduced in PE-Ms that were prepared by adherence of PECs and 3 subsequent washing steps (Figure 5A). Furthermore, the frequency of washing correlated inversely with the extent of IFN- release; the more often the monolayers of PE-Ms were washed, the less IFN- was present (not shown). IFN- was neither detectable in the culture supernatants (Figure 5A, ELISA) nor in the cytoplasm (Figure 5B, ICS) of highly purified CD68+ PE-Ms after stimulation with IL-12/IL-18 for 24 to 72 hours. The absent IFN- production is unlikely to result from the purification procedure because all other functions of macrophages that were tested (phagocytosis, production of TNF or NO after stimulation with IFN-/LPS, production of IL-10 or IL-12p70 after exposure to Staphylococcus aureus) remained unaltered after sorting (Figure 5A and data not shown).
Identical results were obtained with C57BL/6 BMMs. Unlike the unseparated population of BMMs, highly purified BMMs (macrophages of R1), sorted for CD11b+F4/80+ or CD68+ cells, failed to produce IFN- in response to IL-12/IL-18 as analyzed by ELISA and ICS, whereas the synthesis of TNF was unimpaired (Figure 5D-E).
The lack of detectable IFN- production after purification of the macrophage populations was independent of the mouse strain because it was also observed with sorted CD68+ PE-Ms (1 experiment) or CD11b+F4/80+ BMMs (2 experiments, not shown) derived from BALB/c mice.
These data further corroborate that the high amounts of IFN- previously detected in culture supernatants of peritoneal as well as BMM populations (95%-98% purity) do not originate from macrophages.
Highly purified macrophages do not activate STAT4 on stimulation with IL-12/IL-18
In T and NK cells stimulation with IL-12 activates STAT4.30-33 In adherent cultures of unsorted BMMs or PE-Ms, the IL-12/IL-18-induced IFN- production was accompanied by the tyrosine phosphorylation or nuclear translocation of STAT4.16,19 We therefore tested whether IL-12 plus IL-18 is able to activate STAT4 in adherent cultures of sorted (CD68+ or CD11b+F4/80+) C57BL/6 macrophages. Unlike unsorted PE-Ms or BMMs, highly purified PE-Ms and BMMs did not translocate STAT4 into the nucleus after stimulation with IL-12/IL-18 (Figure 5C,F). These results strongly suggest that in unselected macrophage populations both the production of IFN- and the activation of STAT4 are due to the presence of lymphoid cells.
RAG2-/-c-/- macrophages neither release IFN- protein nor activate STAT4 in response to IL-12/IL-18
To exclude the possibility that our cell separation technique selectively affected the ability of macrophages to produce IFN-, we investigated macrophages of RAG2-/-c-/- mice backcrossed to BALB/c. Due to a combined deficiency of the common chain and the RAG2 gene, these mice lack all lymphoid cells (T, B, NK, and NKT cells), whereas macrophages and DCs develop normally.29,34 In resident PCs (not shown), PECs, and BMMs, stimulation with IL-12 (with or without IL-18) did not lead to a detectable production of IFN- using ICS (Figure 6A) or ELISA (Figure 6B), to the activation of STAT4 as assessed by EMSA (Figure 6C), or to the generation of NO (which would be induced by endogenously produced IFN-; data not shown). C pneumoniae that was previously reported to stimulate IFN- production in BMMs of wild-type mice24 also failed to induce IFN- in RAG2-/-c-/- macrophages (not shown), as did LPS (Figure 6B). There was no general secretory defect of these cells because on stimulation with IFN-/LPS their release of TNF (Figure 6B; compare with Figure 5A,D) and NO (not shown) was comparable to that of wild-type macrophages. Finally, intraperitoneal treatment of BALB/c wild-type or RAG2-/-c-/- mice with IL-12/IL-18 in vivo (see "Materials and methods") was also unable to induce the expression of IFN- protein in PE-Ms as assessed by ICS (not shown). In contrast, IFN- protein expression was readily detectable in the peritoneal lymphoid cells of the BALB/c wild-type controls.
These results unequivocally demonstrate that both PE-Ms and BMMs of RAG2-/-c-/- mice lack the capacity to release high amounts of IFN- in response to IL-12/IL-18.
Activated primary macrophages, but not RAW264.7 macrophages, express IFN- mRNA
Earlier studies showed that IL-12 (with or without IL-18) induced IFN- mRNA in resident peritoneal macrophages, BMMs, and PE-Ms. In resident and inflammatory peritoneal macrophages the expression of IFN- mRNA was demonstrated by RT-PCR and therefore could have resulted from contaminating lymphoid cells.17,19 In BMMs, however, IFN- mRNA was directly detected by in situ hybridization.15
To ascertain that macrophages stimulated with IL-12/IL-18 express IFN- mRNA without releasing IFN- protein, we assessed 3 different macrophage populations of alymphoid RAG2-/-c-/- mice (resident PCs, PECs, and BMMs) by conventional RT-PCR analysis. In all 3 cases IFN- mRNA was clearly induced by IL-12/IL-18, in the case of PECs and BMMs also after stimulation with LPS (Figure 7A) or C pneumoniae (not shown). These results were confirmed in 2 independent experiments by quantitative real-time RT-PCR analysis (Table S1).
The up-regulation of IFN- mRNA by IL-12/IL-18 was also demonstrated in highly purified CD11b+F4/80+ C57BL/6 BMMs and, to a similar extent, in BALB/c BMMs (Figure 7B). The real-time RT-PCR further revealed that there was a comparable 1000-fold inducibility of IFN- mRNA by IL-12/IL-18 in sorted BMMs and CD4+ splenic T cells from naive BALB/c or C57BL/6 mice; however, in the chosen T-cell population the baseline expression of IFN- mRNA was strikingly higher than in the macrophages (Figure 7B). On the protein level, again no IFN- was found in the corresponding culture supernatants of sorted BMMs, whereas CD4+ T cells secreted 3.2 ± 0.1 ng/mL (mean ± SEM of 2 experiments with C57BL/6 T cells) and 3.5 ng/mL (1 experiment with BALB/c T cells) on stimulation with IL-12/IL-18 for 24 hours.
Thus, primary mouse macrophages can be readily activated for the expression of IFN- mRNA, but not for the production of IFN- protein within the sensitivity limits of the applied methods. In accordance with previous data15 neither IFN- mRNA nor protein (not shown) were detectable in RAW264.7 macrophages after stimulation with IL-12/IL-18 or LPS using conventional or real-time RT-PCR and ELISA (Figure S1 and data not shown).
Discussion
Composition and purity of macrophage populations
In PECs and day-8 BMM cultures, typical macrophages were identified by size, granularity, and the expression of surface molecules that are largely selective for (F4/80, BM8, CD68) or abundantly expressed on macrophages (CD11b; Figures 1, 2, R1).35,36 CD68 was found not only on PE-Ms as published before,37 but also on the surface of BMMs (Figure 2B).
In PECs, a second myeloid subpopulation (R2) could be defined that was also positive for F4/80, BM8, CD31, and CD11b. However, unlike the R1 macrophages, these cells were CD68 negative, expressed the markers Ly6C and GR1 (30%), and stained positively for the pan-NK cell marker DX5, whereas NK1.1 was absent. After a culture period of 24 hours, FACS analysis of the detached cell monolayer revealed that the subpopulation R2 had disappeared (not shown). This suggests that PECs of region R2 represent a precursor stage of macrophages in region R1. Based on their coexpression of a macrophage (F4/80) and a NK cell marker (DX5), the cells of R2 might be related to the F4/80+NK1.1+ cytotoxic macrophage and NK cell precursors that were previously generated from BM cells in the presence of exogenous M-CSF and IL-2.38 A similar population was also observed in the spleen and BM of mice after administration of M-CSF.39 The ontogeny and function of these F4/80+NK1.1+ (or F4/80+DX5+) cells under physiologic conditions remains currently unknown.
In region R3 of freshly isolated PECs, adherent PE-Ms, and BMMs, we not only detected subsets of myeloid cells (eg, granulocytes, DCs; not shown), but also small quantities ( 1%-4%) of NK cells or T cells or both.
In PECs, CD11b+CD11c+CD31+DX5+NK1.1+ cells were the predominant IFN--producing population after stimulation by IL-12/IL-18. We consider these cells as activated NK cells because of their high NK cell cytotoxicity, their ability to produce large amounts of IFN-, and the expression of CD11b and CD11c, which were previously found on the surface of activated human NK cells.40 The peritoneal CD11b+CD11c+CD31+DX5+NK1.1+ cells might be related to cytolytic dendritic cells (DCs) in lymphoid organs,41,42 or to the recently described splenic bitypic NK/DC regulatory cells (CD11c+DX5+), which were reported to exhibit high cytotoxic activity against NK-sensitive YAC cells, to express the NK1.1 (80%) and the F4/80 marker (30%), and to produce IFN- (25%).43
The detection of CD3+TCR+CD8+ T cells within R3 of BMMs was unexpected. Although for certain subtypes of DCs a lymphoid origin, the presence of CD8, and the expression of CD3 and pre-T mRNA were demonstrated,44,45 there is no evidence that DCs (or other myeloid cells) express TCR components on the cell surface. Furthermore, our CD3+TCR+CD8+ population was negative for myeloid cell markers (eg, CD11c), but positive for Ly6C (not shown) that is found on about 50% of all peripheral CD8+ T cells.46
Production of IFN- by macrophages
Previously, several groups including ours provided data that not only argued for the expression of IFN- mRNA,14 but also for the release of small17,24 or, in the case of BMMs or PE-Ms stimulated with IL-12/IL-18, very high (2-40 ng/mL) amounts of IFN- protein by activated macrophages.15,19,24,29 This hypothesis was supported by the binding of an anti-IFN- antibody to F4/80+ cells within resident peritoneal cells,17 the simultaneous detection of IFN- mRNA in about 30% of IL-12/IL-18-stimulated BMMs by in situ hybridization and of IFN- protein in the respective culture supernatants,15 the IL-12/IL-18-dependent activation of STAT4 in PE-Ms or BMMs with less than 2% to 5% lymphoid contaminants and with high amounts of IFN- in the conditioned medium,16,19 and the expression of IFN- mRNA or protein or both by macrophage populations even after antibody-mediated or genetic depletion of NK or T cells.7,14,17,24
Although these data were compatible with, they did not prove the hypothesis that the IFN- protein in the culture supernatants originated from macrophages. First, in none of these studies did the purity of the analyzed macrophage populations reach or exceed 99%. Our results show that as few as 0.2% activated NK cells or 0.7% CD8+ T cells are sufficient to generate the IFN- protein that was measured in cultures of PE-Ms or BMMs prepared by conventional techniques. Second, the methods applied in the earlier reports did not allow definition of the divergent cellular origin of IFN- mRNA expression and IFN- release. Instead, it was tacitly assumed that the IFN- mRNA and protein in the cultures were both derived from the most prevalent cell type, that is, the macrophage. Third, for several reasons (eg, variable surface marker expression) antibody-based methods for the elimination of T and NK cells never led to complete depletion of the target cell population so that residual NK or T cells might have caused the previously reported results.
To address this latter issue, we investigated macrophages from alymphoid RAG2-/-c-/- mice. RAG2-/-c-/- macrophages did not release any IFN- protein in response to IL-12/IL-18, LPS, or C pneumoniae, but readily expressed IFN- mRNA after exposure to these stimuli (Figures 6B and 7A and data not shown). Thus, RAG2-/-c-/- macrophages are not unresponsive to IL-12 with or without IL-18 as previously postulated on the basis of a slight reduction of the IL-12 receptor 1 mRNA,29 but have the same phenotype as highly purified wild-type macrophages; that is, they fail to release IFN- after stimulation with IL-12 or IL-12/IL-18 despite the expression of IFN- mRNA. Accordingly, the very low ( 50-250 pg/mL) or hardly measurable levels of IFN- ( 5 pg/mL) in sera or mixed spleen cell cultures of RAG2-/-c-/- mice after stimulation with IL-127,47 are unlikely to originate from macrophages, but may instead be released by nonmyeloid IFN--producing cells, for example, fibroblasts or erythroid cells.48,49
Previous immunofluorescence analyses suggested a cell-associated expression of IFN- protein in macrophages activated by LPS, C pneumoniae, or IL-12,14,17,24 although the positive IFN- staining of unstimulated macrophages that lacked IFN- mRNA by RT-PCR remained puzzling.14,17 Nevertheless, the IFN- mRNAof IL-12/IL-18-stimulated macrophages might be translated without secretion of the protein. However, even in the presence of brefeldin A, neither ICS and FACS nor immunocytochemistry nor the analysis of lysates of activated macrophages by ELISA allowed us to detect intracellular IFN- protein in PE-MsorBMMs (Figures 3, 5, and 6 and data not shown). Thus, it is highly unlikely that in IL-12/IL-18-stimulated macrophages IFN- accumulates intracellularly.
At present, we cannot exclude the possibility that macrophages produce minute amounts of IFN- protein below the sensitivity limits of our assays, that other populations of macrophages not investigated here (eg, splenic macrophages) are capable of releasing IFN-,7 and that certain other cytokines (eg, IL-2) or pathogens (eg, Listeria monocytogenes, T gondii, Salmonella typhimurium) stimulate the production of IFN- by macrophages in vitro or in vivo.7,47,50 However, in the light of the present results the previously published data deserve careful reassessment, notably with respect to the purity and phenotypic definition of the cell populations. In the same context, it might be worthwhile to revisit the production of high amounts of IFN- ( 20 ng/mL) that was reported for DC populations after stimulation with IL-12/IL-18.7,8,51
Differential regulation of IFN- in macrophages versus lymphoid cells
Within the limits of sensitivity of the applied assays IL-12 plus IL-18 clearly induced IFN- mRNA, but no IFN- protein in purified or alymphoid macrophage populations (Figures 5A,B,D,E; 6A-B; 7A-B; and Table S1). In contrast, in T cells and NK cells both IFN- mRNA and protein are readily detectable after stimulation with IL-12 plus IL-18.52-54 This suggests that the expression of IFN- in macrophages is controlled on the level of translation. Possible mechanisms include the protein kinase-dependent inactivation of elongation factors and the subsequent down-regulation of protein synthesis or stability in response to various stress factors such as oxidants, cytokine stimulation, or amino acid depletion, which has already been described for macrophages.55-57
In T and NK cells the IL-12- or IL-12/IL-18-induced transcription of the IFN- gene requires the phosphorylation and translocation of STAT4 into the nucleus where it binds to the IFN- promotor.31,33,58-60 Our observation that the removal of the lymphoid contaminants (0.2%-0.7%) from macrophage populations completely eliminated the STAT4 signal in the EMSA analysis raises the intriguing possibility that the expression of IFN- mRNA in macrophages occurs in a STAT4-independent manner. Conversely, the translation of IFN- mRNA in macrophages might only occur in the presence of STAT activation. Ongoing studies further address this issue.
In conclusion, the 2 most frequently used macrophage populations (adherent PE-Ms and BMMs) contain unexpected lymphoid cells (when generated by routine methods) that account for the high amounts of IFN- previously found in supernatants of activated macrophage cultures. Thus, a purity of myeloid cell preparations of 95% to 98% is insufficient to attribute a specific (eg, secretory) function to the main subpopulation of cells. The discovery of T cells in cultures of BMMs questions the previous use of BMM cultures as selective sources of macrophages. The presence ofmyeloid markers (CD11b, CD11c, CD31) on the surface of peritoneal NK cells and the expression of NK cell markers (DX5) by subpopulations of macrophages exemplify that macrophages cannot be identified by a single phenotypic marker. The observation that highly purified macrophages express IFN- mRNA, but fail to produce readily detectable amounts of IFN- protein in response to IL-12/IL-18, challenges the concept of autocrine macrophage activation and points to a hitherto unrecognized translational control of IFN- production.
Acknowledgements
We thank M. Modolell and N. Justies (Max Planck Institute for Immunobiology, Freiburg, Germany) for all materials and reagents required for the generation of BMMs, T. Miethke (Tu Munich, Germany) for C. pneumoniae, H. Mossmann (Max Planck Institute for Immunobiology, Freiburg, Germany) for providing mice, C. Kurzmann for technical assistance, and P. Rohwer (Nikolaus-Fiebiger-Center for Molecular Medicine, Erlangen, Germany), and K. Geiger and M. Follo (Core Facility, Medical Center, Freiburg, Germany) for cell sorting.
Footnotes
Prepublished online as Blood First Edition Paper, September 21, 2004; DOI 10.1182/blood-2004-05-1749.
Supported by the priority program "Innate Immunity" SPP 1110 (DFG996/3-1) and the Sonderforschungsbereich 620 (project A9) of the German Research Foundation and by the European Community (QLK2-CT-2001-02103).
The online version of the article contains a data supplement.
The publication costs of this article were defrayed in part by page charge payment. Therefore, and solely to indicate this fact, this article is hereby marked "advertisement" in accordance with 18 U.S.C. section 1734.
References
Farrar MA, Schreiber RD. The molecular cell biology of interferon-gamma and its receptor. Annu Rev Immunol. 1993;11: 571-611.
Murray HW. Interferon-gamma and host antimicrobial defense: current and future clinical applications. Am J Med. 1994;97: 459-467.
Schroder K, Hertzog PJ, Ravasi T, Hume DA. Interferon-gamma: an overview of signals, mechanisms and functions. J Leukoc Biol. 2004;75: 163-189.
Leite-De-Moraes MC, Hameg A, Arnould A, et al. A distinct IL-18-induced pathway to fully activate NK T lymphocytes independently from TCR engagement. J Immunol. 1999;163: 5871-5876.
Frucht DM, Fukao T, Bogdan C, Schindler H, O'Shea JJ, Koyasu S. IFN-gamma production by antigen-presenting cells: mechanisms emerge. Trends Immunol. 2001;22: 556-560.
Schleicher U, Mattner J, Blos M, et al. Control of Leishmania major in the absence of Tyk2 kinase. Eur J Immunol. 2004;34: 519-529.
Ohteki T, Fukao T, Suzue K, et al. Interleukin 12-dependent interferon gamma production by CD8alpha+ lymphoid dendritic cells. J Exp Med. 1999;189: 1981-1986.
Hochrein H, Shortman K, Vremec D, Scott B, Hertzog P, O'Keeffe M. Differential production of IL-12, IFN-alpha, and IFN-gamma by mouse dendritic cell subsets. J Immunol. 2001;166: 5448-5455.
Stober D, Schirmbeck R, Reimann J. IL-12/IL-18-dependent IFN-gamma release by murine dendritic cells. J Immunol. 2001;167: 957-965.
Fukao T, Matsuda S, Koyasu S. Synergistic effects of IL-4 and IL-18 on IL-12-dependent IFN-gamma production by dendritic cells. J Immunol. 2000;164: 64-71.
Fukao T, Koyasu S. Expression of functional IL-2 receptors on mature splenic dendritic cells. Eur J Immunol. 2000;30: 1453-1457.
Fenton MJ, Vermeulen MW, Kim S, Burdick M, Strieter RM, Kornfeld H. Induction of gamma interferon production in human alveolar macrophages by Mycobacterium tuberculosis. Infect Immun. 1997;65: 5149-5156.
Wang J, Wakeham J, Harkness R, Xing Z. Macrophages are a significant source of type 1 cytokines during mycobacterial infection. J Clin Invest. 1999;103: 1023-1029.
Fultz MJ, Barber SA, Dieffenbach CW, Vogel SN. Induction of IFN-gamma in macrophages by lipopolysaccharide. Int Immunol. 1993;5: 1383-1392.
Munder M, Mallo M, Eichmann K, Modolell M. Murine macrophages secrete interferon gamma upon combined stimulation with interleukin (IL)-12 and IL-18: a novel pathway of autocrine macrophage activation. J Exp Med. 1998;187: 2103-2108.
Fukao T, Frucht DM, Yap G, Gadina M, O'Shea JJ, Koyasu S. Inducible expression of Stat4 in dendritic cells and macrophages and its critical role in innate and adaptive immune responses. J Immunol. 2001;166: 4446-4455.
Puddu P, Fantuzzi L, Borghi P, et al. IL-12 induces IFN-gamma expression and secretion in mouse peritoneal macrophages. J Immunol. 1997;159: 3490-3497.
Salkowski CA, Kopydlowski K, Blanco J, Cody MJ, McNally R, Vogel SN. IL-12 is dysregulated in macrophages from IRF-1 and IRF-2 knockout mice. J Immunol. 1999;163: 1529-1536.
Schindler H, Lutz MB, Rollinghoff M, Bogdan C. The production of IFN-gamma by IL-12/IL-18-activated macrophages requires STAT4 signaling and is inhibited by IL-4. J Immunol. 2001;166: 3075-3082.
Fultz MJ, Vogel SN. Autoregulation by interferons provides an endogenous `priming' signal for LPS-responsive macrophages. J Endotoxin Res. 1995; 2: 77-84.
Fantuzzi L, Puddu P, Varano B, Del Corno M, Belardelli F, Gessani S. IFN-alpha and IL-18 exert opposite regulatory effects on the IL-12 receptor expression and IL-12-induced IFN-gamma production in mouse macrophages: novel pathways in the regulation of the inflammatory response of macrophages. J Leukoc Biol. 2000;68: 707-714.
Di Marzio P, Puddu P, Conti L, Belardelli F, Gessani S. Interferon gamma upregulates its own gene expression in mouse peritoneal macrophages. J Exp Med. 1994;179: 1731-1736.
Salins S, Newton C, Widen R, Klein TW, Friedman H. Differential induction of gamma interferon in Legionella pneumophila-infected macrophages from BALB/c and A/J mice. Infect Immun. 2001;69: 3605-3610.
Rothfuchs AG, Gigliotti D, Palmblad K, Andersson U, Wigzell H, Rottenberg ME. IFN-alpha beta-dependent, IFN-gamma secretion by bone marrow-derived macrophages controls an intracellular bacterial infection. J Immunol. 2001;167: 6453-6461.
Kirberg J, Berns A, von Boehmer H. Peripheral T cell survival requires continual ligation of the T cell receptor to major histocompatibility complex-encoded molecules. J Exp Med. 1997;186: 1269-1275.
Jacobs H, Krimpenfort P, Haks M, et al. PIM1 reconstitutes thymus cellularity in interleukin 7- and common -chain-mutant mice and permits thymocyte maturation in Rag-, but not CD3-deficient mice. J Exp Med. 1999;190: 1059-1068.
Stenger S, Donhauser N, Thüring H, Rllinghoff M, Bogdan C. Reactivation of latent leishmaniasis by inhibition of inducible nitric oxide synthase. J Exp Med. 1996;183: 1501-1514.
Diefenbach A, Schindler H, Donhauser N, et al. Type 1 interferon (IFNalpha/beta) and type 2 nitric oxide synthase regulate the innate immune response to a protozoan parasite. Immunity. 1998;8: 77-87.
Ohteki T, Suzue K, Maki C, Ota T, Koyasu S. Critical role of IL-15-IL-15R for antigen-presenting cell functions in the innate immune response. Nat Immunol. 2001;2: 1138-1143.
Jacobson NG, Szabo SJ, Weber-Nordt RM, et al. Interleukin 12 signaling in T helper type 1 (Th1) cells involves tyrosine phosphorylation of signal transducer and activator of transcription (Stat)3 and Stat4. J Exp Med. 1995;181: 1755-1762.
Thierfelder WE, van Deursen JM, Yamamoto K, et al. Requirement for Stat4 in interleukin-12-mediated responses of natural killer and T cells. Nature. 1996;382: 171-174.
Yu CR, Lin JX, Fink DW, Akira S, Bloom ET, Yamauchi A. Differential utilization of Janus kinase-signal transducer activator of transcription signaling pathways in the stimulation of human natural killer cells by IL-2, IL-12, and IFN-alpha. J Immunol. 1996;157: 126-137.
Kaplan MH, Sun YL, Hoey T, Grusby MJ. Impaired IL-12 responses and enhanced development of Th2 cells in Stat4-deficient mice. Nature. 1996;382: 174-177.
Colucci F, Soudais C, Rosmaraki E, Vanes L, Tybulewicz VL, Di Santo JP. Dissecting NK cell development using a novel alymphoid mouse model: investigating the role of the c-abl protooncogene in murine NK cell differentiation. J Immunol. 1999;162: 2761-2765.
Leenen PJ, de Bruijn MF, Voerman JS, Campbell PA, van Ewijk W. Markers of mouse macrophage development detected by monoclonal antibodies. J Immunol Methods. 1994;174: 5-19.
Martinez-Pomares L, Platt N, McKnight AJ, da Silva RP, Gordon S. Macrophage membrane molecules: markers of tissue differentiation and heterogeneity. Immunobiology. 1996;195: 407-416.
Ramprasad MP, Terpstra V, Kondratenko N, Quehenberger O, Steinberg D. Cell surface expression of mouse macrosialin and human CD68 and their role as macrophage receptors for oxidized low density lipoprotein. Proc Natl Acad Sci U S A. 1996;93: 14833-14838.
Li H, Schwinzer R, Baccarini M, Lohmann-Matthes ML. Cooperative effects of colony-stimulating factor 1 and recombinant interleukin-2 on proliferation and induction of cytotoxicity of macrophage precursors generated from mouse bone marrow cell cultures. J Exp Med. 1989;169: 973-986.
Sakurai T, Misawa E, Yamada M, Hayasawa H, Motoyoshi K. Comparative study and effects of macrophage colony-stimulating factor (M-CSF) administration on NK1.1+ cells in mouse spleen and bone marrow. Immunopharmacol Immunotoxicol. 2002;24: 547-566.
Werfel T, Witter W, Gtze O. CD11b and CD11c antigens are rapidly increased on human natural killer cells upon activation. J Immunol. 1991;147: 2423-2427.
Fanger NA, Maliszewski CR, Schooley K, Griffith TS. Human dendritic cells mediate cellular apoptosis via tumor necrosis factor-related apoptosis-inducing ligand (TRAIL). J Exp Med. 1999; 190: 1155-1164.
Trinite B, Voisine C, Yagita H, Josien R. A subset of cytolytic dendritic cells in rat. J Immunol. 2000; 165: 4202-4208.
Homann D, Jahreis A, Wolfe T, et al. CD40L blockade prevents autoimmune diabetes by induction of bitypic NK/DC regulatory cells. Immunity. 2002;16: 403-415.
Corcoran L, Ferrero I, Vremec D, et al. The lymphoid past of mouse plasmacytoid cells and thymic dendritic cells. J Immunol. 2003;170: 4926-4932.
Ardavin C. Origin, precursors and differentiation of mouse dendritic cells. Nat Rev Immunol. 2003; 3: 1-9.
Shevach EM, Korty PE. Ly-6: a multigene family in search of a function. Immunol Today. 1989;10: 195-200.
Suzue K, Asai T, Takeuchi T, Koyasu S. In vivo role of IFN-gamma produced by antigen-presenting cells in early host defense against intracellular pathogens. Eur J Immunol. 2003;33: 2666-2675.
Rady PL, Cadet P, Bui TK, et al. Production of interferon messenger RNA by cells of non-immune origin. Cytokine. 1995;7: 793-798.
Sennikov SV, Eremina LV, Injelevskaya TV, Krysov SV, Silkov AN, Kozlov VA. Cytokine-synthesizing activity of erythroid cells. Russ J Immunol. 2001;6: 193-202.
Kirby AC, Yrlid U, Wick MJ. The innate immune response differs in primary and secondary Salmonella infection. J Immunol. 2002;169: 4450-4459.
Lugo-Villarino G, Maldonado-Lopez R, Possemato R, Penaranda C, Glimcher LH. T-bet is required for optimal production of IFN-gamma and antigen-specific T cell activation by dendritic cells. Proc Natl Acad Sci U S A. 2003;100: 7749-7754.
Yoshimoto T, Takeda K, Tanaka T, et al. IL-12 up-regulates IL-18 receptor expression on T cells, Th1 cells, and B cells: synergism with IL-18 for IFN-gamma production. J Immunol. 1998;161: 3400-3407.
Kohno K, Kataoka J, Ohtsuki T, et al. IFN-gamma-inducing factor (IGIF) is a costimulatory factor on the activation of Th1 but not Th2 cells and exerts its effect independently of IL-12. J Immunol. 1997;158: 1541-1550.
Stoll S, Jonuleit H, Schmitt E, et al. Production of functional IL-18 by different subtypes of murine and human dendritic cells (DC): DC-derived IL-18 enhances IL-12-dependent Th1 development. Eur J Immunol. 1998;28: 3231-3239.
Wang X, Campbell LE, Miller CM, Proud CG. Amino acid availability regulates p70 S6 kinase and multiple translation factors. Biochem J. 1998; 334: 261-267.
Harding HP, Zhang Y, Zeng H, et al. An integrated stress response regulates amino acid metabolism and resistance to oxidative stress. Mol Cell. 2003; 11: 619-633.
El-Gayar S, Thüring-Nahler H, Pfeilschifter J, Rllinghoff M, Bogdan C. Translational control of inducible nitric oxide synthase by IL-13 and arginine availability in inflammatory macrophages. J Immunol. 2003;171: 4561-4568.
Robinson D, Shibuya K, Mui A, et al. IGIF does not drive Th1 development but synergizes with IL-12 for interferon-gamma production and activates IRAK and NFkappaB. Immunity. 1997;7: 571-581.
Barbulescu K, Becker C, Schlaak JF, Schmitt E, Meyer zum Buschenfelde KH, Neurath MF. IL-12 and IL-18 differentially regulate the transcriptional activity of the human IFN-gamma promoter in primary CD4+ T lymphocytes. J Immunol. 1998;160: 3642-3647.
Nakahira M, Ahn HJ, Park WR, et al. Synergy of IL-12 and IL-18 for IFN-gamma gene expression: IL-12-induced STAT4 contributes to IFN-gamma promoter activation by up-regulating the binding activity of IL-18-induced activator protein 1. J Immunol. 2002;168: 1146-1153.(Ulrike Schleicher, Andrea)