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Journal of Virology, October 2003, p. 11158-11169, Vol. 77, No. 20
0022-538X/03/$08.00+0 DOI: 10.1128/JVI.77.20.11158-11169.2003
Copyright © 2003, American Society for Microbiology. All Rights Reserved.
Department of Virology,1 Department of Neurology, City of Hope National Medical Center and Beckman Research Institute, Duarte, California 910102
Received 29 August 2002/ Accepted 17 July 2003
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], tumor necrosis factor [TNF], and interleukin-6 [IL-6]) in vitro, whereas splenocytes treated with mammalian CV-1 DNA or non-CpG ODN did not. After immunization with ovalbumin (OVA), only splenocytes from mice immunized with HSV DNA or HSV-ODN as the adjuvants proliferated strongly and produced typical Th1 responses, including CD8+ cytotoxic T-lymphocyte responses, upon restimulation with OVA. Furthermore, HSV-ODN synergized with IFN-
to induce nitric oxide (NO), IL-6, and TNF production from macrophages. These results demonstrate that HSV DNA and HSV-ODN are immunostimulatory, driving potent Th1 responses both in vitro and in vivo. Considering that HSV DNA has been found to persist in nonneuronal cells, these results fuel speculation that HSV DNA might play a role in pathogenesis, in particular, in diseases like herpes stromal keratitis (HSK) that involve chronic inflammatory responses in the absence of virus or viral antigens. |
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Although bacterial DNAs elicit the most potent responses, mammalian cells also react to Saccharomyces cerevisiae, nematode, insect, and viral genomic DNAs but, remarkably, mammalian DNA is relatively inert even when unmethylated (2). To date, there is no evidence for a role of viral CpG-containing genomes in virus infections as most published studies have reported on the adjuvant effects of CpG motifs in viral vectors deployed in DNA vaccination strategies (33). However, considering that TLR4 and CD14 mediate innate responses to respiratory syncytial virus (17) and that vaccinia virus encodes agonists specific for host TLR and IL-1 signaling (7), it would be surprising if TLR9 signaling were not involved in the host response to infection with DNA viruses. We report here that herpesvirus genomic DNAs show considerable variation in the frequencies of immunostimulatory CpG motifs; for example, CpG motifs were profoundly suppressed in the gammaherpesviruses Epstein-Barr virus (EBV) and herpesvirus saimiri (HVS) compared to alphaherpesviruses such as herpes simplex virus (HSV), in which CpG motifs were relatively enriched. Furthermore, we showed that HSV genomic DNA and CpG-containing ODNs derived therefrom are potent immune response activators both in vitro and in vivo. Considering the intrinsic immunostimulatory capacity of HSV DNA and its tendency to persist in a variety of tissues besides latently infected neurons, we speculate that in addition to initiating host innate responses, HSV DNA might be involved in the pathogenesis of HSV disease.
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Computer-based scans of herpesvirus genomes for stimulatory and inhibitory CpG motifs. Inhibitory CpG motifs that neutralize stimulation by CpG motifs in cis and trans have recently been identified in the genomes of adenovirus serotypes 2 and 5 but not serotype 12 (31). We used computer-assisted scans of selected herpesvirus and adenovirus genomes to determine frequencies for stimulatory and inhibitory CpG motifs. Published consensus hexamer sequences for stimulatory and inhibitory CpG motifs defined for E. coli and adenovirus DNAs, respectively, were used in this analysis. We derived a CpG index designed to facilitate comparison of immunostimulatory potentials regardless of genome size, G+C content, and overall CpG suppression; this was not done in a prior study with adenoviruses (31). The actual frequencies of stimulatory and inhibitory motifs relative to the respective theoretical frequencies (as determined on the basis of genomic G+C content) were used to calculate a ratio of stimulatory to inhibitory motifs (e.g., for HSV type 1 [HSV-1], 1.049/0.948 = 1.107). This value was multiplied by the total number of CpG motifs found in the genome and then normalized to a 100-kb-sized genome to allow comparisons between different viruses.
DNA and ODNs. HSV-1 DNA was prepared from virions isolated from CV-1 cells infected with HSV-1 strain F, McKrae, or KOS at low multiplicity of infection of 0.1 PFU/cell. When >90% of the cells showed cytopathic effects (usually by day 3 postinfection), cell cultures were harvested by gentle tapping of the flask to dislodge the cells that were then pelleted by low-speed centrifugation. The culture medium containing released extracellular virions was stored at 4°C, and the cell pellet was washed in ice-cold phosphate-buffered saline (PBS) in a 15-ml conical centrifuge tube. The cells were resuspended by vortexing in cold reticulocyte standard buffer buffer (10 mM Tris-HCl [pH 7.4], 10 mM KCl, 1.5 mM MgCl2) containing 0.5% NP-40, placed on ice for 5 min, and then vortexed again to promote lysis of the plasma membrane while preserving the nuclei intact. This procedure facilitated isolation of cytoplasmic virions relatively free of contamination with cellular DNA. Nuclei were pelleted by centrifugation at 800 x g and 4°C for 10 min, and the supernatant was combined with medium supernatant. The nuclei were washed with cold reticulocyte standard buffer by centrifugation, and the wash supernatant was combined with the medium. Virions in the supernatant medium were pelleted by centrifugation for 1 h at 25,000 rpm in a Ti60 rotor and a Beckman ultracentrifuge. The virus pellet was resuspended in 0.8 ml of 10 mM Tris-HCl (pH 8.4)-10 mM MgCl2. Contaminating cellular nucleic acids were removed by digestion for 2 h at 37°C with DNase I (200 µg/ml) and a mixture of RNase A plus T1. Virion DNA was released by overnight incubation at 37°C with an equal volume of 2x lysis buffer (0.8 M NaCl, 10 mM Tris-HCl [pH 8], 200 mM EDTA, 1% sodium dodecyl sulfate, 200 µg of proteinase K/ml). HSV-1 virion DNA was extracted twice with an equal volume of phenol-chloroform (1:1 [vol/vol]) equilibrated with Tris-HCl (pH 7.5) and twice with chloroform-isoamyl alcohol (24:1) before the DNA was precipitated with a 2.5 volume of 95% ethanol chilled to -20°C. The DNA recovered by centrifugation was rinsed once with 70% ethanol and dissolved in 10 mM Tris-HCl-1 mM EDTA (pH 7.5) (TE buffer) prepared in pyrogen-free glass-distilled water. DNA concentrations were determined spectrophotometrically (optical density at 260 nm of 1 = 50 µg/ml; 260/280 ratio > 1.75 and < 2.0). DNA quality was assessed by agarose gel electrophoresis of intact and BamHI-digested DNA (5 µg) in a 0.8% Tris-acetate-EDTA-agarose gel.
CV-1 cell DNA was prepared similarly except that cellular DNA was extracted from the nuclear pellet and commercially obtained E. coli DNA (Sigma, St. Louis, Mo.) was further purified by phenol-chloroform extraction followed by extraction with Triton X-114 to remove residual contaminating LPS. Unmodified ODNs and ODNs with terminal phosphorothioate (PT) linkages (two at the 5' end and three at the 3' end) (PT-ODN) to protect against nuclease degradation were either synthesized at the DNA Synthesis Core Facility or were obtained commercially (MWG Inc., Ebersberg, Germany). The purity of the ODNs was verified by matrix-assisted laser desorption ionization-time of flight (mass spectrometry). All DNAs were tested (using a Limulus amebocyte assay [BioWhittaker, Walkersville, Md.]) for contaminating endotoxins; endotoxin levels were <10 ng/mg for E. coli, CV-1, and HSV-1 DNAs and <1 ng/mg for synthetic ODNs.
In vitro stimulation of mouse spleen cell cultures with CpG DNA. HSV-1 DNA and ODNs containing consensus CpG motifs derived from the gD and ICP27 genes were tested for their ability to induce proliferation and cytokine production in spleen cell cultures to determine immunostimulatory activity. E. coli DNA and a previously described CpG ODN containing two immunostimulatory CpG motifs were used as positive controls (46). CV-1 DNA and an ODN with a sequence identical to that of the CpG ODN but with an ApC or GpC substituting for CpG were used as negative controls. The sequences of the ODNs are given in Table 1. Spleens were removed from 6- to 8-week-old female C57BL/6 mice (Taconic), and splenocytes prepared from mechanically dissociated spleens (15) were grown in cultures with various concentrations of DNA or ODNs in RPMI 1640 supplemented with 10% fetal bovine serum (FBS), 50 µM 2-mercaptoethanol, 10 mM HEPES, 4 mM glutamine, 10 U of penicillin/ml, and 20 µg of streptomycin/ml (cRPMI-10). Cultures were tested for proliferation after 24 h and for cytokine production by a standard enzyme-linked immunosorbent assay (ELISA) or enzyme-linked immunospot (ELISPOT) assay after 40 h or by reverse transcriptase PCR after 72 h.
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TABLE 1. Oligonucleotides containing immunoregulatory CpG motifs
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)/ml, and the following day CpG ODNs were added to the cultures at 1 to 3 mM final concentration.
The macrophage cell line RAW 264.7 (American Type Culture Collection, Manassas, Va.) was plated at a density of 3.5 x 105 cells/well (in a 48-well dish) in Dulbeccos minimal essential medium supplemented with 10% low-endotoxin FBS, 4 mM glutamine, and HEPES. The following day, cultures were fed with 550 µl of fresh medium supplemented with CpG ODN (1 to 3 µM) and IFN-
(5 U/ml) or (as a positive control) purified LPS (10 to 100 ng/ml) (E. coli 0127:B8; Sigma). After 24 h, macrophage culture supernatants were assayed (using a Greiss reaction) for NO and (using a standard ELISA) for TNF and IL-6.
Determination of NO levels in macrophage cultures. NO levels in culture supernatants were determined (using Greiss reagent: 1% sulfanilamide, 0.1% N-[1-napthyl]ethylenediamine dihydrochloride, 2.1% phosphoric acid) as nitrite concentration levels and quantitated by comparison to a standard curve generated using sodium nitrate (53). Briefly, a 100-µl aliquot of medium from the macrophage cultures was mixed with an equal volume of Greiss reagent. After 5 min at room temperature, absorbance was read at 540 nm. The data presented are averages of results for triplicate cultures ± standard errors of the means and are representative of three to six experiments.
CpG DNA as the adjuvant for immunization of mice with OVA. Female 8- to 10-week-old C57BL/6 mice (two mice per group) were immunized with ovalbumin (OVA) (50 µg/site) emulsified in mineral oil, namely, incomplete or complete Freund's adjuvant (IFA or CFA, respectively) with or without DNA (50 µg/site) or ODN (25 µg/site). Deeply anesthetized (ketamine-xylazine) mice were injected subcutaneously in the upper flank of each leg with 100 µl of the different OVA formulations (55). All ODN preparations contained <1 ng of endotoxin/mg of DNA, and CV-1 DNAs contained <10 ng of endotoxin/mg of DNA as determined using the Limulus amebocyte assay (BioWhittaker). At 12 days after immunization, mice were sacrificed, the draining lymph nodes (dLN) and spleens were removed, and single-cell suspension cultures were prepared and used for proliferation and cytokine production assays. Serum was collected for determination of antibody levels.
In vitro proliferation and cytokine production by T cells from OVA-immunized mice. Splenocytes or dLN cells were cultured in 96-well round-bottom plates (5 x 105 cells in 0.2 ml of medium; three to six replicates) with (i) medium alone, (ii) concanavalin A (ConA) at 10 µg/ml, or (iii) OVA at 100 µg/ml. After 72 h, each well was pulsed with 1 µCi of [3H]TdR and tritium incorporation into DNA was measured 16 h later. Results were expressed either as counts per minute of incorporation into DNA or as the stimulation index by comparison to cells with medium alone.
A standard ELISA or ELISPOT assay was used to measure cytokine levels. Cytokine-specific ELISPOT assays were done according to a protocol supplied by Rafi Ahmed (Emory Vaccine Center, Atlanta, Ga.) Briefly, responder spleen cells from immunized C57BL/6 mice (H2b) were cultured with medium alone, ConA, OVA, or the OVA peptide SIINFEKL (to which class I MHC-restricted CD8+ cytotoxic T lymphocyte [CTL] reacts), presented on EL4 (H2b) cells or EMT-6 (H2d) cells at effector-to-target cell ratios of 50:1, 10:1, 2:1, and 0.4:1 in a 96-well Millipore HA filter plate coated with 2 µg of anti-IFN-
monoclonal antibody (MAB 78; R&D Systems, Minneapolis, Minn.)/ml. Syngeneic spleen cells from nonimmunized mice were added to the cultures to maintain cell density between 5 x 105 and 6 x 105 cells/well, and IL-2 was added to achieve a final concentration of 2 U/ml. Cells were grown in cultures for 40 h to accumulate secreted IFN-
, the cells were washed off the membrane, and bound IFN-
was detected using a biotinylated mouse anti-IFN-
monoclonal antibody (BAF 485; R&D Systems) using streptavidin-horseradish peroxidase and nickel-enhanced 3,3'-diaminobenzidine as the substrate.
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TABLE 2. Sequence analysis of viral genomes
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Methylation status of HSV-1, CV-1, and E. coli DNAs.
To determine their methylation statuses, CV-1 (Fig. 1, lanes 1, 2, and 3), HSV (lanes 4, 5, and 6), and E. coli (lanes 7, 8, and 9) DNAs were left undigested (lanes 3, 6, and 9) or digested with the restriction enzymes MspI (lanes 1, 4, and 7) or HpaII (lanes 2, 5, and 8), isoschizomers that are insensitive or sensitive, respectively, to cytosine methylation at the cleavage site (CC
GG). HpaII does not cleave when the cytosine adjacent to the cleavage site is methylated. The digestion products were resolved by agarose gel electrophoresis and visualized by ethidium bromide staining. Figure 1 shows that HSV-1 and E. coli DNA were equally sensitive to digestion with HpaII and MspI, demonstrating that the majority of the CpG dinucleotides were unmethylated. In contrast, CV-1 DNA was largely resistant to digestion with HpaII (compare lanes 2 and 3) but sensitive to digestion with MspI (compare lanes 1 and 3), confirming that (as expected) it is highly methylated. Discreet digestion bands are observed with HSV but not CV-1 DNA because of the difference in genome size (150 kb compared to about 106 kb, respectively).
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FIG. 1. Methylation status of genomic DNAs. Genomic DNA from CV-1 (lanes 1 to 3), HSV-1 (lanes 4 to 6), and E. coli (lanes 7 to 9) were digested with the methylation-insensitive restriction enzyme MspI (lanes 1, 4, and 7) or the methylation-sensitive enzyme HpaII (lanes 2, 5, and 8) or left uncut (lanes 3, 6, and 9). Size markers are given in lanes M.
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FIG. 2. In vitro proliferative responses to CpG DNA. (A) Naive splenocytes were cultured in triplicate with various DNAs or ODNs for 24 h; the cultures were then labeled with tritiated thymidine for 18 h before measurement of incorporation of the label into DNA. Negative controls were medium alone, nCpG ODN, and CV-1 DNA; positive controls were E. coli DNA, CpG ODN, and ConA. The number hyphenated to each ODN indicates final concentration (in micrograms per milliliter) in the culture. ConA was used at 5 µg/ml, and CV-1 and HSV-1 DNA were used at 100 µg/ml. Results are representative of results of five experiments. (B) Proliferation in response to treatment with different concentrations of DNA from two different HSV-1 strains and a strain of BHV-1. E. coli DNA served as positive control and CV-1 DNA as negative control. Results are representative of results of two experiments.
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mRNA and protein by DNA was strictly dependent on the presence of CpG motifs in the DNA, as shown in Fig. 3B and C; neither CV-1 DNA nor nCpG ODN induced IFN-
mRNA or protein.
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FIG. 3. In vitro cytokine response to CpG DNA. Splenocytes were cultured in the presence of ODNs or DNA for 48 h (which was determined to be the optimal time for cytokine production). Supernatants were analyzed for secreted IL-6 (A) and IFN- (B) mRNA transcripts or secreted protein (C). In panel B, the arrow marks the IFN- band and the asterisk marks the internal GAPDH control band.
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(10 U/ml) to activate RAW cells to produce NO and the inflammatory cytokines TNF and IL-6. Representative results are shown in Fig. 4. The patterns of responses to CpG ODNs were similar for all macrophage cells, although overall, lower responses were observed with primary macrophages. Suboptimal levels of IFN-
alone (10 ng of IFN-
/ml in medium control as described for Fig. 4) or LPS (0.3 ng/ml) or CpG ODN (data not shown) alone were incapable of activating macrophages to produce significant levels of NO, TNF, or IL-6. Interestingly, the nCpG ODN induced RAW cells to produce significant levels of TNF but no IL-6, which suggests that there may be additional motifs besides CpG motifs in DNA that can activate specific immune cells, as suggested by two recent reports (20, 34) and our unpublished studies. These results confirm that HSV CpG DNA can activate macrophages to produce effector molecules that are normally induced upon encounter with bacterial or viral pathogens or components derived from them. Depletion of macrophages by treatment of HSV-infected mice with cladronate-liposomes results in enhanced mortality, showing that macrophages are important for resistance to HSV (E. Cantin, unpublished results) as previously suggested by others (9, 25). Hence, activation of macrophages by HSV DNA may play a role in the induction of protective innate responses that could also be detrimental if not appropriately regulated.
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FIG. 4. Macrophage responses to CpG ODNs. The RAW 264.7 macrophage cell line (A), primary C57BL/6 BM-derived macrophages (B), and peritoneal exudate macrophages (C) were activated overnight with recombinant IFN- (10 U/ml) prior to stimulation with the indicated ODNs at 1 µM or with 100 ng of LPS/ml as the positive control. RAW cells cultured with IFN- alone (10 U/ml) served as the negative control (Med). NO levels were determined using the Griess reaction, and cytokine levels were determined using conventional ELISAs (BioSource). Results are representative of four (A and B) or two (C) experiments..
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and IL-10 whereas CpG PdE ODN stimulates both proliferation and cytokine production. These results show that the effects of thiolation of the ODNs are obviously complex and unpredictable. Thus, the ICP27 5/3-PT ODN showed enhanced proliferation and dramatically reduced IFN-
but only slightly reduced IL-10 production, while for the gD and CpG 5/3-PT ODNs, changes in these responses were less extreme. Complete substitution of the gD and ICP27 ODNs with PT effectively abolished their in vitro activity while it dramatically enhanced proliferation but not cytokine production by the CpG ODN (Fig. 5). Similarly divergent immunological responses have recently been reported for studies examining the responses of spleen cells and macrophages to PT-modified ODNs with distinct CpG motifs (4, 48). Since the 5/3-PT ODN-elicited responses were more similar to those obtained with normal ODNs, they were used for in vivo studies.
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FIG. 5. In vitro proliferative and cytokine responses to phosphodiester and phosphorothioate modified ODNs. PdE, phosphodiester ODN; 5/3-PT, ODN with terminal phosphorothioate linkages; cPTO, completely phosphorothioate ODN. (A) Cytokine production in spleen cell cultures treated with ODNs at 1.1 µM final concentration. Medium-treated samples contained 909 ± 22 pg of IFN- /ml and no IL-10. No IL-4 or IL-12 was detected in these samples (not shown). (B) Proliferative response of splenocyte cultures treated with various concentrations of ODN. ODNs were tested in triplicate in 48-h splenocyte cultures that were tritium labeled for the last 24 h. The stimulation index (SI) was calculated as test sample/medium control. nCpG, open circle; CpG, grey circle; gD, black square; ICP27, black circle. The SI for PHA (9.4) is shown as a solid horizontal line in each panel.
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FIG. 6. Memory proliferative response after immunization using CpG DNAs as the adjuvant. Mice were injected in both lower flanks with OVA with or without DNA or ODN-PT as the adjuvant in PBS or IFA. On days 10 to 12, three to four replicate splenocyte cultures containing various concentrations of OVA were used to measure proliferative memory responses. (A) Memory after immunization with OVA alone (triangles), OVA with nCpG-PT (circles), and OVA with CpG-PT (squares) either as solutes in PBS (gray lines) or emulsified in IFA (black lines). (B) Mice were immunized with OVA in IFA with either HSV-1 DNA (squares) or CV-1 DNA (circles). (C) Mice were immunized with OVA in IFA with ICP27-PT (squares), gD-PT (circles), CpG-PT (diamonds), or nCpG-PT (triangles). Stimulation indices are normalized to medium controls for each set of mice (two to three per group). Each panel is representative of two experiments.
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TABLE 3. CpG ODN as adjuvant affects antibody isotope selection
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, while as expected, CV-1 DNA was inactive (Fig. 7A). The gD ODN-PT stimulated IFN-
production significantly more than the ICP27 or CpG ODN-PTs, both of which induced moderate levels of IFN-
compared to those obtained after immunization with nCpG-ODN-PT, which failed to induce IFN-
above background levels (Fig. 7C). Figures 7B and D show that none of the mice immunized with any of the DNA preparations produced IL-4, a characteristic Th2-type cytokine, above background levels. The ratio of IFN-
to IL-4 shows that HSV DNA and CpG ODNs derived therefrom promoted strong Th1 responses (Fig. 7; ratios given between upper and lower panels).
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FIG. 7. Memory cytokine response after immunization with CpG DNA as the adjuvant. Mice were immunized as described for Fig. 6. On days 10 to 12, splenocytes were cultured in the presence of OVA (200 µg/ml) or medium. Supernatants were collected after 72 h and analyzed by ELISA for IFN- and IL-4 levels (BioSource). The ratios of secreted IFN- and IL-4 are given between the paired IFN- (A and C) and IL-4 (B and D) panels. Asterisks indicate a ratio below 0.3. Results are representative of two experiments.
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Induction of T-cell responses in mice immunized with HSV-1 DNA.
To examine whether OVA immunization with HSV-1 DNA as the adjuvant drives expansion of antigen-specific T cells in vivo, the frequencies of IFN-
- and IL-4-producing spleen cells were investigated by ELISPOT assay. When grown in cultures with OVA, spleen cells from mice immunized with HSV-1 DNA produced >5-fold more IFN-
-specific spot-forming cells (SFC) compared to those from mice immunized with CV-1 DNA as the adjuvant for OVA (478 versus 88 SFC, respectively). No IL-4-specific SFC were produced above background levels (<10 SFC) for any of the immunization groups, and as expected, in vitro activation of spleen cells with phytohemagglutinin produced the greatest number of SFC (data not shown). When splenocytes from OVA-immunized mice were stimulated with MHC-matched EL4 cells (H-2b) versus mismatched EMT-6 cells (H-2d) pulsed with the OVA-specific, MHC class I-restricted CTL peptide epitope SIINFEKL, 158 versus 86 SFC were obtained, respectively.
It has been shown that in vitro methylation of CpG dinucleotides in E. coli and plasmid DNAs or synthetic ODNs blocked their immunostimulatory activity (29, 30). In our studies, digestion of HSV DNA with MspI, which cleaves the CpG motif, blocked its stimulatory activity in vitro, confirming that unmethylated CpG dinucleotides are essential for immunostimulatory activity (data not shown). Although highly unlikely, it is conceivable that the observed immunostimulatory activity of genomic HSV-1 DNA is indirect and due to expression of viral proteins from the injected DNA rather than to activation of immune cells by CpG motifs. To exclude this possibility and confirm the in vivo priming of HSV-specific CD8+ CTL responses (Table 4), splenocyte cultures from mice immunized with OVA plus HSV-1 DNA or CpG ODN as the adjuvant were tested for specific responses to the immunodominant HSV-1 gB CD8+ CTL epitope SSIEFARL (43) and the OVA-specific CD8+ CTL epitope SIINFEKL (5). Table 4 shows that the OVA-specific-CTL epitope (SIINFEKL) induced specific SFC responses, whereas background levels of SFC resulted from restimulation with the gB-specific CTL epitope (SSIEFARL). This result is consistent with HSV-1 DNA not being expressed in vivo, at least at levels sufficient to prime HSV-specific CD8+ T-cell responses. Thus, we conclude that the immunostimulatory activity of HSV-1 DNA and HSV CpG ODN is mediated by CpG motifs and that these drive potent Th1- and Tc1-type responses in vivo. Table 4 shows that the gD-PT and ICP27-PT ODNs are much better at inducing OVA-specific CTL responses than the CpG-PT ODN, a result which is opposite to those obtained by measuring proliferative responses to these ODNs in vitro (Fig. 5). Overall, the results presented here demonstrate that HSV-1 DNA and ODNs are potent adjuvants, being superior to non-CpG DNA or even CFA in priming in vivo CD8+ CTL responses to OVA (Table 4).
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TABLE 4. HSV DNA as adjuvant induces OVA-specific CD8+ CTL
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The striking suppression of stimulatory CpG motifs in the gammaherpesviruses (exemplified by EBV) (Table 2) suggests a strong selective pressure against these motifs, as previously reported (23). Indeed, the ratio of stimulatory-to-inhibitory motifs is an important determinant of immunostimulatory activity, as recently reported for demethylated mouse DNA (52). It is conceivable that the tropism of these viruses for lymphoid cells, some of which are directly responsive to CpG motifs, provided the evolutionary driving force for suppression of CpG motifs (19). Similar observations for adenoviruses were reported earlier by Kreig and colleagues (31), who observed that DNA from adenovirus type 12 was stimulatory while that from adenovirus types 2 and 5 was not. These authors speculated that differences in biology and, specifically, the propensity of adenovirus 5 to establish persistent infections in lymphocytes (which does not occur with adenovirus 12) might account for suppression of immunostimulatory motifs in adenovirus 5 (31).
Consistent with its CpG index (Table 2), we found HSV-1 DNA to be highly immunostimulatory when tested in splenocyte cultures, driving proliferation and the synthesis of inflammatory cytokines (IFN-
, TNF, and IL-6), whereas mammalian DNA from CV-1 cells in which the virus was grown was inactive. We also tested two CpG ODNs derived from the HSV-1 gD and ICP-27 (ICP27) genes as well as control CpG and nCpG ODNs that had previously been shown to be immunostimulatory when tested in vivo and in vitro (46). The gD ODN was selected because, like the control CpG ODN that was previously shown to cause inflammation of the lower respiratory tract after intratracheal delivery in mice (46), it contains an optimal stimulatory motif and an overlapping inhibitory motif. The ICP27 ODN, which contains a suboptimal stimulatory motif flanked by two inhibitory motifs (Table 2), was chosen with the expectation that it would be weakly active or nonstimulatory, thus confirming the effect of inhibitory motifs identified in adenovirus DNA (31). These expectations were met when the ODNs were tested for in vitro stimulation of splenocyte cultures: the gD ODN was as active as the control CpG ODN, the ICP27 ODN was significantly less active, and the nCpG ODN was inactive (Fig. 2 and 3). However, the ICP27 ODN was as active as the control CpG ODN and the gD ODN in activating macrophages to produce NO and the inflammatory cytokines, TNF, and IL-6 (Fig. 4). In this regard it is interesting that the ICP27 ODN contains seven consecutive deoxyriboguanosine (dG) residues at the 3' end that result in spontaneous formation of highly stable structures, probably with a G-quartet conformation, as evidenced by anomalous migration in denaturing polyacrylamide gels (reference 1 and data not shown). Terminal 3' dG runs in CpG ODNs can exert complex cis-modulatory effects on their activity via a number of mechanisms, including preferential uptake via type A scavenger receptors on APCs (splenic DCs, B cells, and peritoneal macrophages) and enhanced production of cytokines (TNF-
and IL-12) (24, 35, 44). The effects of a dG run vary with the position in the ODN and the chemical constitution of the ODN backbone: a dG run at either the 5' terminus of a phosphodiester CpG ODN or the 3' terminus of a PT CpG ODN reduced in vitro cytokine production by APCs (35). Such effects could account for the apparent discrepant activity of the ICP27 ODN relative to those of the gD or CpG ODNs in activation of spleen cells and macrophages. Additionally, we have observed that ODNs comprised of G-rich sequences derived from the HSV genome have an immunostimulatory spectrum distinct from that induced by ODNs with classic CpG motifs (E. Cantin, unpublished results).
To assess the in vivo immunostimulatory activity of HSV-1 DNA and ODNs derived therefrom, we compared immune responses in mice immunized separately with OVA and CFA as the adjuvant to responses in mice immunized with OVA emulsified in IFA and supplemented with HSV-1 or CV-1 DNA or CpG or nCpG ODNs as the adjuvant. 5/3-PT-modified ODNs were used for immunization to provide optimal stability in vivo while permitting retention of internal CpG motifs with a normal phosphodiester backbone. We showed that in vitro, HSV-1-derived and control ODNs modified with terminal PT linkages (5/3-PT ODNs) elicited immunological responses in spleen cell cultures similar to those of their phosphodiester counterparts (Fig. 5). When compared to CFA in in vivo testing, HSV-1 DNA and HSV-1 CpG ODN-PTs were superior adjuvants for eliciting Th1-type responses to OVA. The inability of CFA to augment IFN-
production by splenocytes from mice immunized with the gD ODN suggests that maximal responses were elicited by the gD ODN. In contrast, the ICP27 ODN induced relatively low levels of IFN-
yet this same ODN induced the strongest OVA-specific CD8+ CTL responses (Table 4). These seemingly discordant results might have been due to the concerted modulatory effects of flanking inhibitory CpG motifs, a 3'-terminal dG run, and terminal PT linkages in the ICP27 ODN on in vivo responses of different immune cell types (31, 35, 48, 62). Thus, compared to phosphodiester ODN, 10- to 100-fold-lower concentrations of PT-ODN can induce NO production and activate the IL-12 promoter in macrophage cultures and these enhancing effects are attributable to enhanced stability and uptake of PT-ODNs (48). In vitro restimulation of spleen cell cultures from mice immunized with OVA measures predominantly CD4+ T-cell responses (compared to the results of the ELISPOT assay reported in Table 4), where CD8+ T-cell responses were specifically measured. Results with the ICP27-ODN implied that this ODN has different effects on CD4+ and CD8+ T-cell responses. The divergent effects of the ICP27 ODN compared to those of ODNs without dG runs may derive from interaction with other receptors besides TLR9, which transduces CpG signals. The class A macrophage scavenger receptor (MSR-A) that reacts to diverse ligands including polynucleotides having a quadraplex structure is a candidate receptor for the ICP27-ODN (44, 45). Thus, it is of interest that MSR-A-/- mice show enhanced susceptibility to HSV-1 mortality (56).
A central question raised by our results is whether by virtue of being intrinsically highly immunostimulatory in vitro and in vivo, HSV-1 DNA might have a role in pathogenesis. We contend that there is ample indirect evidence to support such speculation and that this evidence warrants further studies to directly address the question. A case in point is that of herpes stromal keratitis (HSK), a blinding immunopathological disease caused by damage inflicted by proinflammatory cytokines (IFN-
and IL-2) secreted by CD4+ Th1-type cells invading the cornea (59, 61). HSK has several anomalous features, as studied in the mouse ocular model of HSV infection. First, the destructive inflammatory response in the cornea is induced when HSV DNA is the only detectable viral component persisting in the cornea; infectious HSV, viral antigen, or mRNA is undetectable. Second, replication-competent but not replication-incompetent HSV strains are required for causing HSK. And third, HSK can be induced in DO11.10 mice that express an OVA-specific TCR and therefore fail to react to HSV antigens. A model to explain these results postulates that HSK replication exposes cryptic ocular antigens and results in the activation of T cells of unknown specificity that initiate the destructive inflammatory responses, culminating in HSK (11, 12). However, the model does not account for the delayed kinetics of the inflammatory response that is experimentally observed.
We speculate that in mice experimentally inoculated in the cornea with HSV-1, some cells support HSV-1 DNA replication but not the production of infectious progeny virus. Eventually, these abortively infected cells die, possibly due to damage sustained during HSV-1 infection. Macrophages and/or DCs phagocytosing the dead cells would be activated by their cargo of immunostimulatory HSV-1 DNA to produce proinflammatory cytokines (IL-12, IFN-
, IL-6, and TNF) and chemokines (29). T cells of indeterminate specificity recruited to this cytokine-rich microenvironment would undergo bystander activation, resulting in amplification of the inflammatory response that would culminate in damage to the corneal stroma. Moreover, since DCs activated by CpG DNA are fully competent to present antigen, they might orchestrate autoimmune attack of the cornea by presenting cryptic self-antigens exposed as a consequence of damage to the autoreactive cornea cells that escaped thymic deletion (47). In support of this hypothesis, we cite the observation of Mitchell and colleagues (42) that HSV-1 DNA persisting in the cornea is found closely associated with inflammatory lesions long after infectious HSV-1 has been cleared. Additionally, they reported that despite comparable replication in the eye, HSV-1 strain KOS (compared to strain RE) is a poor inducer of HSK and for some unknown reason its DNA, unlike that of RE, does not persist in the cornea (39).
In this regard, the observation that unlike strain F and McKrae genomic DNAs, KOS DNA failed to drive proliferation of B cells in spleen cell cultures is intriguing and worth following up. The hypothesis that HSV-1 DNA plays a role in the induction of corneal inflammatory responses leading to HSK is attractive, because it provides a framework for rationalizing anomalous features of the disease discussed above. Currently, delivery of HSV-1 ODNs to the corneas of normal mice inoculated with or without a replication-incompetent HSV-1 mutant is being attempted to determine whether this provokes HSK. Our results demonstrating that HSV-1 DNA drives potent CD4+ and CD8+ Th1-type responses in vivo lends credence to this speculation. Indeed, preliminary results show the HSV CpG ODNs but not nCpG ODN delivered to the cornea by intrastromal injection induced a strong angiogenic response (E. Cantin and R. Lausch, unpublished results); this is notable because angiogenesis has been speculated to play a critical role in the development of HSK (63). However, despite the strong early angiogenic response elicited by HSV CpG ODN treatment of mice, HSK failed to develop during the 21-day observation period, even in mice infected with a dose of HSV that fails to induce HSK when given alone, which raises the possibility that induction of angiogenesis and HSK may be unrelated events.
In conclusion, we have shown that HSV-1 DNA is highly immunostimulatory in vitro and in vivo, driving potent Th1-type responses. This property of HSV-1 DNA could be biologically significant and important in pathogenesis; this is evident in the model we propose to explain how HSV-1 DNA might participate in the initiation of an inflammatory response that culminates in HSK. Additionally, Cantin et al. and others (8, 14, 38, 49) previously reported a prolonged inflammatory response in the ganglia of infected mice in the absence of detectable infectious HSV-1 or antigen and attributed this to chronic, low-level production of HSV-1 antigens. However, equally plausible and not exclusive is that HSV-1 DNA persisting in abortively infected cells in the ganglion might contribute to the observed protracted inflammatory response. Activation of APCs for antigen presentation and stimulation of local proinflammatory cytokine production by immunostimulatory viral DNAs warrants consideration as a possible mechanism by which HSV-1 and other viruses might contribute to or exacerbate neuroinflammatory diseases like multiple sclerosis (47). In gene therapy approaches, the immune response-activating properties of the HSV-1 genome might be either beneficial (as when using HSV-1 as a vaccine vector) or deleterious (as in applications involving therapeutic gene delivery to the brain). There is growing interest in the use of
34.5 null mutants of HSV-1 that fail to replicate or cause encephalitis upon direct inoculation into the brain as oncolytic vectors and as gene transfer vectors for the central nervous system. A recent report that a
34.5 HSV-1 mutant caused severe inflammation in the brain mediated by nonspecific and specific immune responses suggests the possible involvement of immunostimulatory CpG motifs in the virus genome (40). The demonstration here that HSV DNA is highly immunostimulatory suggests a cautious approach in the application of HSV-1 as a gene therapy vector.
This work was supported by Public Health Service grant EY 13061 from the National Eye Institute.
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34.5 mutant of herpes simplex 1 causes severe inflammation in the brain. Neuroscience 83:1225-1237.[CrossRef][Medline]
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