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Blood, 15 February 2005, Vol. 105, No. 4, pp. 1566-1573. Prepublished online as a Blood First Edition Paper on October 7, 2004; DOI 10.1182/blood-2004-04-1233.
IMMUNOBIOLOGY Fibromodulin as a novel tumor-associated antigen (TAA) in chronic lymphocytic leukemia (CLL), which allows expansion of specific CD8+ autologous T lymphocytesFrom the Klinische Kooperationsgruppe (KKG) Gene Therapy, Munich, Germany, GSF-National Research Center for Environment and Health; Medical Clinic III, Klinikum Grosshadern Medical Center (KGMC), Ludwig-Maximilians-University, Munich; Medical Clinic I, University of Cologne, Cologne; Clinical Molecular Biology and Tumor Genetics, GSF-National Research Center for Environment and Health, Munich, and the Department of Otorhinolaryngology, Ludwig-Maximilians-University, Munich, Germany.
Fibromodulin (FMOD) was shown to be highly overexpressed in chronic lymphocytic leukemia (CLL) cells compared with normal B lymphocytes by gene expression profiling. Therefore FMOD might serve as potential tumor-associated antigen (TAA) in CLL, enabling expansion of FMOD-specific T cells. In CLL samples derived from 16 different patients, high expression of FMOD by real-time reverse transcriptasepolymerase chain reaction (RT-PCR) was detectable in contrast to normal B lymphocytes. We used unpulsed native CLL cells and CD40 ligand (CD40L)stimulated CLL cells as antigen-presenting cells (APCs) to expand autologous T cells from 13 patients. The number of T cells during 4 weeks of in vitro culture increased 2- to 3.5-fold and the number of T cells recognizing FMOD peptides bound to HLA-A2 dimers increased 10-fold. The expanded T cells also were able to secrete interferon- (IFN- ) upon recognition of the antigen demonstrated by IFN- ELISPOT assays. T cells not only recognized HLA-A2binding FMOD peptides presented by transporter-associated with antigen-processing (TAP)deficient T2 cells, but also FMOD overexpressing autologous CLL cells in an HLA-A2restricted manner. In summary, FMOD was shown for the first time to be naturally processed and presented as TAA in primary CLL cells, enabling the expansion of autologous tumor-specific T cells.
It is well established that T lymphocytes are able to specifically recognize tumor cells, which is the principle of antigen-specific immunotherapy.1,2 It is suggested that most if not all tumors express antigens that cytotoxic T lymphocytes (CTLs) can potentially attack. According to Vonderheide et al, the requirements for a tumor-associated antigen (TAA) are to be overexpressed or de novo expressed in tumor cells compared to normal cells, to include peptide sequences that bind to major histocompatibility (MHC) molecules, to be processed by tumor cells such that antigen-derived peptides are available for binding to MHC molecules, to be recognized by the T-cell repertoire in an MHC-restricted fashion, and to permit the expansion of naive CTL precursors bearing specific T-cell receptors.3
Fibromodulin (FMOD) is one of the members of the leucinerich repeat protein family, first described as a 59-kDa collagen binding protein.4 FMOD exhibits a wide tissue distribution, with the highest abundance observed in articular cartilage, tendon, and ligament. FMOD is involved in the assembly of the extracellular matrix by virtue of its ability to interact with type I and type II collagen fibrils.5 Furthermore, interactions of FMOD with the transforming growth factor TGF- FMOD was identified as the gene with the highest fold difference in expression in CLL cells compared with normal B lymphocytes in 3 independent gene expression profiling analyses.8-10 The gene expression of CLL cells was compared with the expression of memory B cells, germinal center B cells, and naive B cells and with peripheral blood B lymphocytes of age-matched healthy donors.8,9 The overexpression also was demonstrated by RT-PCR.9 Recently, in a large series comprising 60 patients with CLL and 7 patients with mantle cell lymphoma, overexpression of FMOD was observed for all leukemic samples on the mRNA level, while expression of FMOD was not detected in 13 chronic myeloid leukemia (CML) patients, 11 acute lymphoblastic leukemia (ALL) patients, and in peripheral blood mononuclear cells (PBMCs) of 70 healthy donors tested. Overexpression of FMOD was also confirmed on the protein level by flow cytometric and Western blot analyses.11 Based on these findings suggesting that FMOD might serve as a unique tumor-associated antigen expressed in B-CLL, we wanted to investigate whether T cells from CLL patients are able to specifically recognize and respond to naturally processed and presented HLA-A0201 binding peptides of FMOD.
Patients and B-CLL samples After informed consent, peripheral blood was obtained from patients satisfying diagnostic criteria for B-CLL.12 Mononuclear cells were isolated on a Ficoll/Hypaque (Seromed, Berlin, Germany) density gradient by centrifugation, depleted of monocytes by adherence to plastic tissue-culture flasks, and cryopreserved in liquid nitrogen in the presence of 10% dimethyl sulfoxide (DMSO; Sigma-Aldrich, Steinheim, Germany). More than 90% of isolated cells coexpressed CD5 and CD19, as assessed by flow cytometry. Patients were either untreated or had not received cytoreductive treatment for a period of at least 3 months before investigation. The study included 16 HLA-A0201positive patients (4 women and 12 men; 44 to 82 years of age, Binet A, 1; Binet B, 4; Binet C, 11). Real-time polymerase chain reaction (PCR) analysis Total RNA was extracted from cells using the Trifast reagent (PEQLAB, Erlangen, Germany) according to the manufacturer's protocol. cDNA synthesis and real-time PCR were performed with some modifications as previously described.13 For detection of FMOD-specific cDNA the following primer pairs were used: 5'-CAACACCTTCAATTCCAGCA-3' and 5'-ACCTGCAGCTGGGAGAAGT-3', resulting in a product size of 186 bp with a melting point of 86°C. Samples were normalized for GAPDH RNA expression with the following primer pairs: 5'-GCACCACCAACTGCTTAGCACC-3', 5'-GTCTGAGTGTGGCAGGGACTC-3' (product size: 637 bp) and for CD19 RNA expression with the following primer pairs: 5'-CTCCTTCTCCAACGCTGAGT-3',5'-TGGAAGTGTCACTGGCATGT-3'. Cell lines and peptides Mec-1 cells were obtained from the American Type Culture Collection (ATCC, Rockville, MD). T2 cells, a hybridoma of T- and B-lymphoblastoid cells with a deficient TAP transporter, were a generous gift from Dr Elfriede Nössner, Institute of Molecular Immunology, GSF, in Munich. HLA-A0201binding peptides from the sequence of FMOD were identified using 2 different publicly available data bases: http://syfpeithi.bmi-heidelberg.com/ and http://bimas.dcrt.nih.gov/molbio/hla_bind/.14 The following 4 peptides were used: F1 (7-17): LLLAGLFSL, F2 (206-215): YLQHNEIQEV, F3 (250-259): YMEHNNVYTV and F4 (226-235): YLLDLSYNHL. As controls, the MAGE-3derived, HLA-A0201binding peptide MAGE-3 (271-279): FLWGPRALV and as a peptide not binding to HLA-A0201, the immunoglobulin-derived peptide A98-Id (AHTKDGFNF) were used.3,15 All peptides were synthesized and purified by high-performance liquid chromatography (HPLC) by Dr G. J. Arnold at the Gene Center, Ludwig-Maximilians-University, in Munich. The peptides were dissolved in DMSO. All 4 FMOD peptides were shown to bind HLA-A0201 in a binding assay using the TAP-deficient cell line T2 (data not shown). Immunophenotyping Immunophenotyping was performed with the following monoclonal antibodies (mAbs) conjugated with fluorescein isothiocyanate (FITC), phycoerythrin (PE), or phycoerythrin cyanine 5 (PE-Cy5): CD3, CD4, CD5, CD8, CD19, CD30, CD54, CD58, CD80, HLA-DR (Immunotech/Coulter, Marseille, France), CD38, CD86, HLA-ABC (PharMingen, Hamburg, Germany). Fluorescence was measured using a FACScan (Coulter Electronics, Miami, FL). B-CLL stimulation with CD40 ligand (CD40L)
For CD40L-induced activation, B-CLL cells were cultured with some modifications as previously described.16 Briefly, CD40L stably transfected mouse fibroblast L cells (CD40L-L cells) were Generation of effector T cells
At least 2 x 105 CD3-positive T cells from CLL patients were incubated with native or CD40L-stimulated autologous CLL cells in the presence of interleukin-2 (IL-2: 40 U/mL, Cellconcepts, Umkirch, Germany) and interleukin-7 (IL-7; 10 ng/mL, Cellconcepts). Stimulation was performed on days 0, 7, 14, and 21. As indicated, native or stimulated CLL cells were incubated with either F1 plus F2 peptide (termed F1/2) or F3 plus F4 peptide (F3/4) (40 µg/mL) in the presence of ELISPOT assay
The ELISPOT assay used to quantify peptide epitope-specific, IFN- T-cell staining by HLA-A2dimerX technology DimerX staining was performed according to the manufacturer's instructions. DimerX HLA-A2:Ig fusion protein (1 µL/3 x 105 cells; Becton Dickinson, Heidelberg, Germany) was incubated with peptide (600 µg/mL) in phosphate-buffered saline overnight at 37°C. T cells were stained with the HLA-A0201-dimer/peptide complexes for 1 hour at 4°C. As a negative control, DimerX was treated overnight with DMSO in phosphate-buffered saline at the same concentration used for peptide incubation. The secondary rabbit antimouse immunoglobulin/R-phycoerythrin (RPE) F(ab')2 antibody (DakoCytomation, Copenhagen, Denmark) was used. In addition, T cells were stained with antiCD8-PE-Cy5 (Immunotech/Coulter, Marseille, France) and analyzed by flow cytometry. HLA-A2-dimer/peptide staining was performed on day 28. To obtain the precursor frequency of FMOD-specific T cells in the peripheral blood of CLL patients, HLA-A2-dimer/peptide staining was performed on day 0 without further enrichment of the T cells. Statistics Because of non-normality, statistical associations between dependent subgroups were carried out by the Wilcoxon test, and for independent subgroups the Mann-Whitney U test was applied. Correlations were calculated using Spearman correlation coefficient. A statistical significance was accepted for P < .05. The statistical calculations were performed using SPSS Version 11.5 (SPSS, Chicago, IL).
mRNA overexpression of FMOD in CLL cells Using real-time RT-PCR we detected FMOD expression in all 16 CLL samples tested and in the prolymphocytic leukemia cell line Mec-1. Normal B lymphocytes, that is, PBMCs derived from 3 different healthy donors and tonsillar B cells did not express FMOD mRNA. CLL samples were tested for FMOD expression before and after 72 hours of CD40 activation by CD40 ligand (CD40L) expressing mouse fibroblast L cells. There was no significant difference (Wilcoxon test: 0.535; P = .593) in the number of cycles needed for detection of FMOD-specific transcripts of native CLL cells and CD40L-stimulated CLL cells (Table 1). Thus, CD40L stimulation did not alter FMOD RNA expression.
Native CLL cells are able to specifically expand autologous T cells We wanted to find out whether FMOD RNA overexpression results in enhanced presentation of FMOD-derived peptides on the surface of CLL cells, which then could be recognized by autologous T cells in an HLA-A0201restricted manner. We first used native CLL cells as APCs, which were not pulsed with FMOD peptides to expand autologous T cells from CLL patients. In this setting, we successfully expanded T cells in 7 of 14 cases tested (Figure 1A). In the first 2 weeks we observed a decrease in the number of T cells, but then the surviving T cells proliferated, resulting in a 2-fold increase in the absolute numbers after 4 weeks of in vitro culture.
When T cells were obtained, we performed an IFN-
Next, we wanted to investigate if the expanded T cells also recognize tumor cells overexpressing FMOD. Therefore we used autologous, native CLL cells as APCs in the ELISPOT assay. In the assay, CLL cells were pulsed with a mix of all 4 FMOD peptides. We detected 0 to 2717 spots (median, 73) per 100 000 T cells, which were FMOD specific. Again, the background value, obtained by adding DMSO to the APC, was subtracted from the experimental values. With one exception, the number of FMOD-specific spots detected was lower than observed with T2 cells. HLA-A0201negative, but FMOD-overexpressing CLL cells from 2 different patients and HLA-A0201positive nonmalignant cells from 5 different donors, like PBMC and tonsillar B cells, were recognized by the patients' T cells only in the range of background level (Table 3).
HLA-A2dimer/peptide staining specific for FMOD of expanded T cells To further validate the data obtained by ELISPOT analysis, the expanded T cells were stained with HLA-A2-dimer/peptide complexes specific for FMOD and MAGE-3 on day 28, which is another method to identify specific T cells. Background values were obtained by staining cells with the HLA-A2dimeric complex "loaded" with solvent only, and they were subtracted from the experimental values. Staining with HLA-A2dimeric complexes carrying an unrelated peptide from MAGE-3 was low (median, 1.1%; range, 0%-5.0%). In contrast, the FMOD peptides were recognized by up to 26.1% (median, 5.1%) of all the CD8-positive T cells that were viable on day 28 (Table 4; Figure 3; Figure 4).
Because of the high frequency of T cells detected that recognized specifically FMOD peptides after 4 weeks of in vitro culture, we wanted to define the precursor frequency of T cells in CLL patients recognizing FMOD peptides. We performed an HLA-A2-dimer/peptide staining with PBMCs of CLL patients without stimulation. The frequency of CD8-positive T cells being able to recognize FMOD was between 0% and 7.1% (median, 0.5%) (Table 4). Taken together, the relative amount of FMOD-recognizing T cells increased 10-fold by stimulation of the T cells with autologous native CLL cells during 4 weeks of in vitro culture. Relationship between FMOD-specific T cells detected by HLA-A2dimer/peptide staining and ELISPOT analysis
In 2 patients (CLL-12, CLL-14) the number of HLA-A2-dimer/peptidepositive T cells recognizing all 4 FMOD peptides corresponded very well with the number of specific spots detected by the IFN-
Despite the high frequency of FMOD-specific T cells from CLL patients that we observed in the HLA-A2-dimer/peptide staining without prior stimulation, no reactivity was seen using these T cells in the IFN- CD40L-stimulated CLL cells as antigen-presenting cells (APCs) during T-cell expansion In 7 of 14 CLL patients we were not able to expand T cells using native CLL cells as APCs. We detected the expression of adhesion molecules (ICAM-1 [CD58], LFA-3 [CD54]), costimulatory molecules (B7-1 [CD80], B7-2 [CD86]), and activation markers (MHC-I and MHC-II) on native and CD40L-stimulated CLL cells. The only significant difference between samples that allowed expansion of T cells using native CLL cells compared with samples that showed poor APC characteristics was the amount of MHC class IIpositive CLL cells before stimulation. The median percentage of MHC class IIpositive high-quality unmanipulated stimulator cells was 34.0% (0.3%-88.4%) compared with 2.7% (1.3%-9.8%) of MHC class IIpositive cells within the poor quality stimulator CLL cells (P = .042). All other examined parameters were comparable between the 2 groups. The poor quality unmanipulated stimulator CLL cells were then activated upon stimulation with CD40L to increase the expression of adhesion and costimulatory molecules. Stimulation with CD40L increased significantly (Wilcoxon test: each, 2.023; P = .043) the expression of adhesion and costimulatory molecules on CLL cells. Interestingly, also the expression of MHC class II molecules was significantly augmented by CD40L stimulation (P = .043).
We then used these activated CLL cells, without further pulsing with FMOD peptides, as APCs to expand autologous T cells. In all the cases investigated (5 of 6) we were able to expand 20 to 884 of 100 000 (median, 60) FMOD-specific T cells, as detected in the ELISPOT assay on day 14 or day 21 (Table 5). As APCs in the ELISPOT assay we used CD40L-stimulated CLL cells. To further increase the number of expanded FMOD-specific T cells, we also pulsed CD40L-stimulated CLL cells with FMOD peptides prior to coincubation with the T cells. We achieved a 3.5-fold expansion of T cells during 4 weeks of in vitro culture (Figure 1B). We then detected 4 to 1303 of 100 000 (median, 124 of 100 000) FMOD-specific T cells in the ELISPOT assay after 2 to 3 weeks of in vitro culture. The number of specific spots detected in the IFN-
If enough T lymphocytes could be expanded after 14 to 21 days of in vitro culture (CLL-1, CLL-2, CLL-4, CLL-8), we tested which FMOD-derived peptide was responsible for the reactivity observed in the ELISPOT assay (Table 5). There was specific recognition of each of the 4 tested peptides with interindividual differences. In 2 of 8 patients (CLL-4, CLL-8) the antigen specificity was tested by blocking experiments with an MHC class Ispecific monoclonal antibody (W6/32) (data not shown). Adding W6/32 resulted in a reduction (median, 78.5%) of the number of spots detected by ELISPOT. Tonsillar or peripheral B cells from HLA-A0201positive healthy donors were not specifically recognized by the T cells expanded (data not shown). The number of FMOD-reactive T cells was further validated and quantified by HLA-A2-dimer/peptide staining in 4 of the CLL samples that were expanded by peptide-pulsed CD40L-stimulated APCs (CLL-1, CLL-2, CLL-4, CLL-8). We detected FMOD-reactive CD8+ T lymphocytes at a frequency of 6.1% to 30.4% (median, 13.9%) (Table 5).
To determine the frequency of FMOD-specific CTL from CLL patients without prior stimulation, we performed an IFN-
In the present study we provide evidence that autologous FMOD-specific T lymphocytes derived from CLL patients can be expanded. Furthermore the relative amount of T cells recognizing FMOD peptides bound to HLA-A2-dimers increases by stimulation using autologous unpulsed native CLL cells as APCs. The expanded T cells are able to recognize 4 different HLA-A0201binding FMOD-derived peptides, which is shown both by ELISPOT analysis and HLA-A2-dimer/peptide staining. Importantly, there is no response against nonmalignant cells, that is, PBMC-derived from HLA-A0201positive healthy donors or tonsillar B cells. Also, HLA-A0201negative CLL cells, overexpressing FMOD are not recognized. Therefore, we conclude that FMOD serves as a novel tumor-associated antigen (TAA) in CLL.
In our setting we use unmodified CLL cells as APCs, which induce T-cell proliferation. Since the CLL cells used for T-cell cultivation were not treated with exogenous antigenic peptide or protein, the only available source of FMOD epitopes was FMOD protein endogenously processed and presented by the native CLL cells themselves. After in vitro stimulation, up to 26.1% of the expanded CD8-positive T cells specifically recognize FMOD-derived peptides by HLA-A2-dimer/peptide staining and up to 1.14% of all T cells expanded react specifically against an FMOD-derived peptide in the IFN-
Interestingly, we are able to expand autologous CD8+ T cells from CLL patients using native CLL cells as APCs in half of the cases investigated, despite a low expression of ICAM-1 (CD58), LFA-3 (CD54), B7-1 (CD80), and B7-2 (CD86). Therefore, we suggest that there must be other than the CD28/B7 costimulatory pathway involved in CLL, like ICOS/LICOS, 4-1BB/4-1BBL, CD27/CD70, and CD26, which seem to play important roles in tumor rejection and immunity.20-26 In our cohort, the expression of MHC class II molecules on the surface of CLL cells is significantly higher in the cases in which unmanipulated CLL cells could be used as APCs for an effective expansion of T cells. It is well known that IFN-
By HLA-A2-dimer/peptide staining we detect up to 7% of all CD8-positive T cells reacting specifically with the FMOD peptides without prior stimulation, which is an unexpected high number of T cells. We can detect FMOD-specific T cells in all the CLL samples tested. But in the ELISPOT assay we did not observe any reactivity against T2 cells or native CLL cells if the patients' T cells were not prestimulated in vitro. This suggests that antigen-specific T cells are present in the peripheral blood of CLL patients, but they are not able to secrete IFN-
We observed that up to 26.1% of all CD8-positive T cells after in vitro culture specifically recognized FMOD-derived peptides bound to the HLA-A2-dimer. After in vitro expansion, T cells also secreted IFN- In 50% of our CLL samples tested, native CLL cells were not able to expand autologous T cells, probably due to their poor antigen-presenting capacity. In these cases we stimulated the CLL cells prior to coincubation with the T cells with CD40L-expressing feeder cells, which increased significantly the expression of adhesion and costimulatory molecules on CLL cells as has been previously described, and therefore restore the impaired antigen-presenting capability of native CLL cells.16,30 Using CD40L-stimulated CLL cells as APCs we were able to expand specific T cells even better compared with other experiments using native CLL cells as stimulators. Again we were able to expand FMOD-specific T cells without pulsing the APCs with the FMOD peptides. Even higher numbers of FMOD-specific spots were detectable after 2 to 3 weeks of in vitro culture, when FMOD peptidepulsed CD40L-stimulated CLL cells were used as APCs. While already achieving a specific T-cell response against autologous CLL cells using native CLL cells as APCs, an even higher response in terms of proliferation of T cells resulted using CD40L-stimulated CLL cells as APCs. In line with this observation, we hypothesize that a further increase in the autologous T-cell response might be seen if CLL cells are directly transduced by gene vectors coding for CD40L. It can be speculated that here the bystander effect of CD40L-transduced CLL cells could be advantageous because transduced CLL cells not only up-regulate adhesion and costimulatory molecules on their own surface, they also trigger neighboring CLL cells to up-regulate those molecules. This could prolong the activated status of CLL cells and thus increase their antigen-presenting capacity.31,32 In contrast to the numerous TAAs described in melanoma, only a small number of TAAs have been found in CLL so far. In CLL, first, the hypervariable sequences and somatic mutations of the lymphoma immunoglobulin variable regions, which result in individual tumor-specific antigens, were identified.33 Therefore, the clonotypic surface immunoglobulin receptor expressed by malignant B cells, also termed idiotype, represents an attractive target structure for antitumor immunity.34,35 The disadvantage of an anti-idiotypic immunization approach is the laborious development of a specific vaccine for every individual patient. In search for a more general applicable immunotherapy in CLL, Trojan et al investigated framework regionderived peptides as TAAs in CLL.36 More recently survivin, a member of the inhibitor of apoptosis protein family, was found to serve as TAA in CLL.37-39 For survivin, the specific recognition of autologous tumor cells by survivin-specific CTLs was only shown for a small fraction of CLL patients, while reaction against allogeneic tumor cells was frequently demonstrated. In contrast, autologous T-cell immunity against fibromodulin could be induced in the majority of CLL patients in our study.
Besides the provided evidence that fibromodulin can serve as TAA in CLL, more research suggests it might be involved at an important step in the pathophysiology of CLL. So far, it was shown by different groups that fibromodulin-specific mRNA is highly overexpressed in CLL cells, but the role of this overexpression has to be elucidated. Fibromodulin is able to bind to TGF- In summary, we could demonstrate that fibromodulin is a naturally processed and presented antigen in CLL that can serve as a TAA in this disease, for instance, for clinical vaccination trials or adoptive T-cell transfer. Fibromodulin seems to be an ideal TAA for a CLL-specific immune monitoring in the context of vaccination approaches including CD40L-genemodified autologous leukemic cells.
We are grateful to Susan King and Elfriede Nössner (GSF, Munich) for critical reading of the manuscript and for stimulating discussions.
Submitted April 1, 2004; accepted September 30, 2004.
Prepublished online as Blood First Edition Paper, October 7, 2004; DOI 10.1182/blood-2004-04-1233.
Supported by grants from the Deutsche Forschungsgemeinschaft (SFB 455), Wilhelm-Sander-Stiftung (95-056-2), Bayerische Forschungstiftung (AZ 490-02), and Friedrich Baur-Stiftung (C.M., A.M., M.H., and C.-M.W.).
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.
Reprints: Clemens-Martin Wendtner, Klinik I für Innere Medizin, Universität zu Köln, Joseph-Stelzmann-Strasse 9, D-50924 Köln, Germany; e-mail: clemens.wendtner{at}uni-koeln.de.
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