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Clinical and Vaccine Immunology, August 2006, p. 930-935, Vol. 13, No. 8
1071-412X/06/$08.00+0 doi:10.1128/CVI.00151-06
Copyright © 2006, American Society for Microbiology. All Rights Reserved.
Laboratory of Immunology, Institute of Biological Sciences, Federal University of Juiz de Fora, Minas Gerais, Brazil,1 Laboratory of Immunology of Infectious Diseases, Department of Biochemistry and Immunology, Institute of Biological Sciences and Institute for Investigation in Immunology-Millennium Institute, Federal University of Minas Gerais, Belo Horizonte, Minas Gerais, Brazil2
Received 23 April 2006/ Returned for modification 9 June 2006/ Accepted 14 June 2006
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) (1,100 ± 157 pg/ml) and tumor necrosis factor alpha (650 ± 42 pg/ml) but not interleukin-4 were detected in splenocyte culture supernatants of pCI-Ag85B-vaccinated mice following stimulation with recombinant Ag85B. Further, the main source of IFN-
is CD8+ T cells, as demonstrated by intracellular cytokine staining. As far as protection, a significant reduction in bacterial load in spleens (P < 0.05) was detected in pCI-Ag85B-immunized mice compared to the pCI vector control group. The results obtained here suggest that use of the Ag85B DNA vaccine is a promising strategy to control M. bovis infection due to its ability to induce a Th1 type of immune response. However, protective efficacy needs to be improved, since partial protection was achieved in spleens but not in lungs of vaccinated mice. |
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In developing countries, there is a strong possibility of infection in human populations by M. bovis due to difficulties in adopting controlling measures, mainly because of social and economic problems and also due to health-related factors, such as malnutrition and human immunodeficiency virus infection, that can make people more prone to infection (24). Besides, the test-and-slaughter policy has been only partially effective in countries such as the United Kingdom, Ireland, and New Zealand, which have a reservoir of wild animals infected by M. bovis. Therefore, the use of an effective vaccine against bovine tuberculosis is desirable for both industrialized and developing countries (32).
M. bovis bacillus Calmette-Guérin (BCG) is an attenuated strain of M. bovis and is presently the only available vaccine that can be used against bovine tuberculosis. However, the reported protective efficacies of BCG vaccination in cattle over the last 70 years have differed greatly, ranging from none to about 70% protection (3). These different outcomes are similar to those observed for BCG vaccination in human populations (9). Moreover, BCG vaccination faces two additional problems: (i) BCG vaccination induces a delayed type hypersensitivity response to purified protein derivative (PPD) which cannot be distinguished from exposure to M. tuberculosis or M. bovis, and therefore it compromises the diagnostic efficacy of PPD; and (ii) sensitization of cattle to environmental mycobacteria adversely affected the subsequent protective efficacy of BCG. Therefore, alternatives to live vaccines, which do not interfere with the diagnosis of the disease, have been studied for the control of tuberculosis, among which are the subunit vaccines and the DNA vaccines (12, 21).
Since DNA vaccines can induce substantial cellular immunity and can evoke both CD4 and CD8 T-cell responses, DNA immunization has become a viable strategy in the development of new vaccines against intracellular pathogens (15). DNA vaccines expressing single Mycobacterium antigens have been shown to elicit protective immune responses against primary tuberculosis infections and to amplify BCG responses using prime/boost strategies (18, 27). Our data suggest that the DNA vaccine carrying the Ag85B gene induced high levels of anti-Ag85B antibodies, a Th1 type of immune response with significant production of gamma interferon (IFN-
) and tumor necrosis factor alpha (TNF-
) and low levels of interleukin-4 (IL-4) in BALB/c mice, and partial protection in immunized animals.
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, and a single recombinant clone was selected. Plasmid DNA was extracted with the Wizard Miniprep kit (Promega Corp, Madison, WI). The pCI-Ag85B construct was digested with endonuclease and DNA sequenced to confirm the presence and the orientation of Mycobacterium Ag85B gene. DNA sequence analysis. Double-stranded DNA sequencing of the M. bovis Ag85B gene inserted into pCI vector (Promega) was performed using the DYEnamic ET dye terminator cycle sequencing kit (MegaBACE) and the MegaBACE 1000 capillary sequencer (Amersham Biosciences, São Paulo, Brazil). The sequence data were compiled and analyzed with the sequence analysis program DNASIS V5.00 (Hitachi Software). Subsequent homology searches were performed with the BLAST programs available from the National Biotechnology Information Center (2).
Ag85B DNA vaccine.
DNA vaccine construct pCI-Ag85B was amplified in the E. coli DH5
strain, and DNA isolation was performed using the EndoFree Plasmid Giga kit (QIAGEN, Valencia, CA). DNA was resuspended in phosphate-buffered saline (PBS) at a final concentration of 1 mg/ml for further immunization. The plasmid preparation contained less than 0.05 endotoxin units per 100 µg of DNA, as assessed by the QCL-1000 Limulus amebocyte lysate analysis kit (BioWhittaker, Walkersville, MD). The relative amount (%) of supercoiled isoform in each vaccine sample was determined using densitometric analysis and reference plasmid preparations for calibration. The proportion of supercoiled isoform in the vaccinal solution was on average 70%.
Production of recombinant Ag85B protein. Escherichia coli harboring the pMAL-Ag85B construct was cultured in LB medium, and expression of the fusion protein was induced by 0.4 mM IPTG (isopropyl-ß-D-thiogalactopyranoside). After IPTG induction, bacterial cells were harvested by centrifugation at 4,000 x g for 20 min, and the supernatants were discarded. The pellets were resuspended in 100 ml of PBS (pH 8.4) containing 25 mg of lysozyme. The resuspended pellets were frozen and thawed three times at 70°C. The resulting suspensions were sonicated twice for 30 s and then centrifuged at 9,000 x g for 45 min. The protein present in the bacterial supernatant was located onto a polyacrylamide gel to confirm the presence of the recombinant protein by sodium dodecyl sulfate-polyacrylamide gel electrophoresis (SDS-PAGE). E. coli lysates containing the induced maltose binding protein (MBP)-Ag85B fusion protein were diluted 1:5 in PBS. Then, the suspensions were loaded into an amylose resin column (New England Biolabs) and washed 10 times with PBS. The fusion protein concentration was determined by a Bradford protein assay.
SDS-PAGE and immunoblotting. E. coli extracts expressing the MBP-Ag85B fusion protein and purified MBP-Ag85B protein were separated on a 10% denaturing polyacrylamide gel by electrophoresis. From the gel, the proteins were transferred to nitrocellulose membranes (Bio-Rad) by Western blotting as previously described (20). The nitrocellulose membranes were blocked with 5% skim milk at 4°C overnight and reacted with rabbit anti-MBP serum (1:10,000) for 2 h at room temperature. After a reaction with the primary antibody, the blots were washed three times with TBST (0.5 M NaCl-0.02 M Tris [pH 7.5], 0.05% Tween 20) and incubated for 1 h at room temperature with anti-rabbit immunoglobulin (IgG)-alkaline phosphatase conjugate (1:10,000) (Promega). After three washes with TBST, the reaction mixture was developed following incubation at room temperature with nitroblue tetrazolium chloride and BCIP (5-bromo-4-chloro-3-indolyl-1-phosphate) for alkaline phosphatase.
Animals and immunization protocol. Forty BALB/c mice, on average 8 weeks old, were divided into four groups of 10 mice each. For intramuscular (i.m.) DNA immunization, mice were preinjected with 10 mM cardiotoxin (Sigma) 5 days before vaccination. The cardiotoxin was given to optimize the immune response by inducing regeneration in muscle cells and DNA uptake as previously described (13). At days 0, 15, 30, and 45, the construct pCI-Ag85B was administered by i.m. injection. Each quadriceps was inoculated with 50 µl of DNA at a concentration of 1 µg/µl in PBS such that each animal received a total of 100 µg of plasmid DNA. As a negative control, one group of mice was injected with pCI plasmid without an insert. Another mouse group was vaccinated with 106 CFU of BCG obtained from Fundação Ataulpho de Paiva (São Paulo, Brazil) and injected subcutaneously. As a negative control of BCG immunization, PBS was administered subcutaneously to another mouse group.
Analysis of antibody response. Mice were bled 15 days after each immunization, and individual mouse sera were tested for antibody responses by enzyme-linked immunosorbent assay (ELISA). Plates (96-well) (Maxisorp; Nunc) were incubated overnight with the recombinant Ag85B protein (5 µg/ml) in carbonate-bicarbonate buffer, pH 9.6, at 4°C. Then, blocking solution (PBS containing Tween 20 [0.05%] plus 10% fetal bovine serum) was added for 2 h at 37°C. Sera from immunized mice were diluted 1:100 in PBS-Tween 20, added to the plates and incubated for 2 h at 37°C. To determine total serum IgG, IgG1, or IgG2a, plates were treated with peroxidase-conjugated goat anti-mouse IgG whole molecule (1:10,000; Sigma) or peroxidase-conjugated goat anti-mouse IgG1 or IgG2a (1:6,000; Sigma), respectively. The reaction mixture was developed by the addition of 200 µmol of o-phenylenediamine (Sigma) and 0.04% H2O2. The reaction was stopped by the addition of 5% H2SO4, and plates were then read at 492 nm in an ELISA reader (Bio-Rad).
Cytokine assay.
Spleens of mice 2 weeks after the last immunization were passed through steel mesh to obtain single-cell suspensions. Splenocytes were then isolated by density gradient centrifugation with Ficoll (Sigma). Cells were washed twice with sterile PBS then cultured in RPMI 1640 medium supplemented with penicillin G-sodium (100 U/ml), streptomycin sulfate (100 µg/ml), amphotericin B (250 ng/ml), and 10% fetal bovine serum and then placed at 1 x 106 cells/well in 96-well tissue culture plates. Murine splenocytes from vaccinated animals were stimulated with recombinant Ag85B protein at 25 µg/ml. Nonstimulated splenocytes were used as a negative control, and splenocytes stimulated with concanavalin A (5 µg/ml) were used as a T-cell-activating control. After 72 h at 37°C in air with 5% CO2, splenocyte culture supernatants were tested for the presence of cytokines with the ELISA kit DuoSet (R&D Systems, MN) (mouse TNF-
, IL-4, and IFN-
).
Intracellular cytokine staining.
For intracytoplasmatic cytokine staining, splenocytes from five mice/group were pooled and adjusted to 2 x 105 cells per well. Splenocytes were maintained in culture at 37°C in 5% CO2 in medium alone or stimulated with rAg85B (50 µg/ml), or ConA (5 µg/ml). After 16 h of culture, 1 µl/ml of brefeldin A (1-mg/ml stock) (Sigma Chemical Co., St. Louis, MO) was added to impair cytokine secretion. After 4 h of incubation, these cells were stained for surface markers and intracellular cytokines as described by Bottrel et al. (4). Briefly, cultured cells were stained for surface markers using fluorescein isothiocyanate-labeled anti-CD4 (Serotec, Düsseldorf, Germany) and anti-CD8 (Serotec) monoclonal antibodies by incubation for 20 min with antibody solution (0.15 M PBS, 0.5% bovine serum albumin, 2 mM NaN3), followed by washes and fixation using 2% formaldehyde solution. These cells were permeabilized and further stained with phycoerythrin-labeled anti-IFN-
(Serotec) and anti-TNF-
(Serotec) monoclonal antibodies in a 0.5% saponin solution in PBS. After 15 min, cells were washed with permeabilization solution and resuspended in PBS. A minimum of 30,000 splenocyte-gated events were acquired in list mode and analyzed using a lymphocyte gate determined based on size and granularity profiles. All quadrants were set according to the labeled isotype controls and analyzed using the CELLquest software (Becton Dickinson, San Jose, CA).
M. bovis challenge. Two weeks after the fourth DNA immunization, mice were infected intravenously with 1 x 106 CFU of virulent M. bovis (ATCC 19274). Animals were then killed 2 weeks after challenge infection. Spleens and lungs from infected and noninfected control mice were homogenized in PBS, 10-fold serially diluted, and plated on Lowenstein-Jensen medium. Plates were incubated at 37°C in air with 5% CO2, and the number of CFU was counted visually after 21 days.
Statistical analysis. Statistical analysis was performed with Student's t test using the MINITAB software package (Minitab, State College, PA). For challenge studies, a mean value for each spleen and lung count was obtained after log conversion. Log units of protection were obtained by subtracting the mean CFU for BCG- or DNA-immunized mouse groups from the mean CFU for the corresponding control groups that received PBS or plasmid control alone, respectively.
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FIG. 1. (A) Coomassie blue-stained SDS-10% PAGE profile of E. coli extracts expressing the MBP-Ag85B fusion protein (lane 1), or purified MBP-Ag85B fusion protein (lane 2). (B) Western blot analysis showing MBP-Ag85B recognition by rabbit anti-MBP antibodies (lane 3). The arrow indicates the MBP-Ag85B band. The numbers at the left indicate the molecular mass standard (MW) in kilodaltons (Amersham Biosciences).
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FIG. 2. Total anti-Ag85B-specific IgG responses of mice immunized with DNA vaccine. Animals (n = 10) were injected i.m. with DNA vaccine construct pCI-Ag85B, or control plasmid pCI. DNA immunization was performed at days 0, 15, 30, and 45, and specific IgG levels to Ag85B were assayed by ELISA at days 15, 30, 45, and 60 after each vaccination in a working dilution of 1:100. Results are expressed as means of each group immunized. Error bars indicate standard deviations of the means. Statistically significant differences to pCI control group are denoted by an asterisk (P < 0.05). OD, optical density.
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FIG. 3. Antibody subclass response in mice following i.m. immunization with the Ag85B gene. IgG1 and IgG2a subclass levels in sera of mice (n = 10) immunized with DNA vaccine pCI-Ag85B or control plasmid pCI were determined after the third immunization (day 45). Results are expressed as means of each group immunized. Error bars indicate standard deviations of the means. Statistically significant differences to pCI control group are denoted by an asterisk (P < 0.05). OD, optical density.
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, TNF-
, and IL-4 in immunized mice were measured 2 weeks after the last immunization. Figure 4 shows that high levels of IFN-
and TNF-
were detected in cell supernatants of pCI-Ag85B-vaccinated mice in vitro stimulated with rAg85B compared to pCI-vaccinated animals. Regarding IL-4, no significant levels were detected when cells from pCI-Ag85B and control groups were specifically activated. For a negative control, MBP alone was used to stimulate splenocytes, and no significant T-cell activation was detected in either mouse group (data not shown). In contrast, ConA significantly stimulated the cytokine production by splenocytes from all vaccinated mouse groups (data not shown).
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FIG. 4. Production of IL-4, IFN- , and TNF- from mouse splenocytes (n = 5) immunized with the pCI-Ag85B DNA vaccine i.m. following 72 h of rAg85B stimulation. Bars indicate the mean values of cytokines in pg/ml ± standard deviations. Statistically significant differences compared to pCI control group are denoted by an asterisk (P < 0.05).
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To determine which cell phenotype was responsible for cytokine production, splenocytes were stained for CD4 and CD8 surface markers and for cytoplasmatic IFN-
and TNF-
. CD8+ T cells were the major source of IFN-
in splenocyte cultures of mice immunized with pCI/Ag85B compared to pCI empty plasmid-injected animals. (Table 1). |
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TABLE 1. T-cell subpopulation producing IFN- or TNF- following DNA immunization with pCI-Ag85B
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TABLE 2. Protection level induced by immunization with the Ag85B DNA vaccine compared to BCG
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is a critical cytokine that activates macrophages and plays a pivotal role in antimicrobial protection, as demonstrated with gene knockout mice (10). Gene vaccines have been employed successfully in animal studies to induce protective immunity against a variety of bacteria, viruses, and parasites (1). This type of vaccine is capable of eliciting a strong cell-mediated immunity that is required to control infection by many intracellular agents, such as Mycobacterium spp. (23). Here, we demonstrated that DNA vaccination using a plasmid encoding Mycobacterium bovis Ag85B is a potent strategy to generate a specific Th1 type of immune response and partial protection against M. bovis infection.
More than 50 million cattle are infected with M. bovis worldwide yearly, and the resulting economic losses are estimated to be around US$3 billion per year (28). BCG, the attenuated vaccine strain of M. bovis, has been used as a vaccine against human tuberculosis (11). However, primarily due to its interference with the intradermal tuberculin test as well as lack of protective immunity, the BCG vaccine is not used for bovine tuberculosis prevention (29). Immunization with genes encoding mycobacterial antigens such as hsp65, Ag85A, Ag85B, MPT-64, and ESAT-6 have been reported to be effective in experimental models of human tuberculosis (16, 18, 22, 30). However, few reports dealt with experimental models for bovine tuberculosis using DNA vaccines. Vordermeier et al. (31), using MPT70 and MPT83 DNA vaccines in cattle, induced specific antibody and IFN-
responses but failed to engender protective immunity against M. bovis challenge. On the other hand, DNA immunization encoding the combination of M. tuberculosis antigens Ag85B, MPT64, and MPT83 induced partial protection in cattle against M. bovis challenge (7). The Ag85 antigen complex, including Ag85A, Ag85B, and Ag85C, is recognized by T cells isolated from M. bovis-infected animals, and this complex constitutes 20 to 30% of all proteins present in supernatant of Mycobacterium short-term culture.
In this study, we analyzed both the humoral and the cell-mediated immune responses induced by the M. bovis Ag85B DNA vaccine. Mice immunized with the M. bovis Ag85B DNA vaccine mounted a strong anti-Ag85B IgG response after the third immunization compared to animals that received pCI vector alone. Regarding IgG isotypes, both IgG1 and IgG2a to Ag85B were produced in DNA-immunized mice compared to control group. As demonstrated here, Huygen et al. (16) reported that mice vaccinated with a DNA vaccine encoding Ag85A produced high levels of IgG1 and IgG2a. The protective immunity against tuberculosis depends on the recruitment of antigen-specific T cells, especially CD4+, and the release of cytokines, particularly IFN-
, for the activation of microbicidal mechanisms of macrophages (19). Therefore, we measured IL-4, IFN-
, and TNF-
levels from splenocyte supernatants of DNA-vaccinated mice. The results clearly indicated that the Ag85B DNA vaccine induced a Th1 type of immune response in mice, with higher levels of IFN-
and TNF-
and no IL-4. Several studies have implicated, besides the role of IFN-
, the role of TNF-
in the control of infections caused by Mycobacterium spp. (5, 25). Moreover, TNF-
in synergy with IFN-
induces expression of NOS2 (14). Therefore, proinflammatory cytokine synthesis and production of nitric oxide are the main effective mechanisms in fighting mycobacteria (26). Regarding the cell phenotype responsible for IFN-
production, intracellular cytokine staining was performed, and we observed that the main source of IFN-
is CD8+ T lymphocytes. As demonstrated by Caruso et al. (8), early production of IFN-
by CD4+ T cells is essential to control M. tuberculosis infection, and IFN-
production by other cells cannot substitute for the CD4 T-cell contribution. Therefore, the low efficacy of the Ag85B DNA vaccine may be due to the lower production of IFN-
by CD4+ T cells induced by this immunogen.
Regarding protective immunity, M. bovis Ag85 DNA immunization induced a significant reduction in bacterial burden in spleens but not in lungs of vaccinated mice (Table 2). Pulmonary immunity requires activation of memory T cells producing IFN-
with homing properties to the lung (17). Systemic immunizations are not particularly effective for inducing such pulmonary effector T cells, but combinations of intramuscular injections with mucosal plasmid instillations may overcome this problem. The major difficulty to mucosal plasmid DNA delivery is the necessity of protecting the DNA against nuclease degradation. Experiments are under way in our laboratory combining systemic vaccination with intranasal boosting with the Ag85B DNA vaccine in order to enhance protective immunity. Finally, DNA vaccination may open new horizons for vaccination against animal tuberculosis.
We thank Gracia M. S. Rosinha and Cristina T. Fonseca for technical assistance.
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