Nasopharyngeal carcinoma (NPC) is Epstein–Barr virus (EBV) positive in all undifferentiated cases, expressing the latency II phenotype of latent membrane proteins (LMPs) 1 and 2, in addition to EBV nuclear antigen (EBNA) 1. Several studies have attempted to treat NPC with EBV‐specific cytotoxic T lymphocyte (CTL) with a partial response. To improve this therapy, there is a need to expand CTL targeted to the latency II antigens of EBV, rather than the immunodominant EBV nuclear antigens 3–6 peptides typically expanded by lymphoblastoid cells. In order to maximize the expansion of LMP‐specific CTL in vitro for use in adoptive immunotherapy of nasopharyngeal carcinoma patients, we used lymphoblastoid cell lines coated with synthetic peptides corresponding to CTL determinants from the LMP proteins. We investigated several issues pertaining to the expansion of an immunologically weak CTL response, including peptide and interleukin‐2 concentration, and screening assays for selecting the optimal peptide for use in expansion of LMP‐specific CTL. Although screening of ex vivo peripheral blood mononuclear cells did not prove to be useful in the selection of an LMP peptide for use in CTL cultures, the peptide and interleukin‐2 concentrations were critical for the maximum expansion of CTL. Therefore, it is imperative that stimulation protocols are optimized for the expansion of LMP‐specific CTL.
Nasopharyngeal carcinoma (NPC) is Epstein–Barr virus (EBV) positive in all undifferentiated cases, expressing the latency II phenotype of latent membrane proteins (LMPs) 1 and 2, in addition to EBV nuclear antigen (EBNA) 1. Several studies have attempted to treat NPC with EBV-specific cytotoxic T lymphocyte (CTL) with a partial response. To improve this therapy, there is a need to expand CTL targeted to the latency II antigens of EBV, rather than the immunodominant EBV nuclear antigens 3–6 peptides typically expanded by lymphoblastoid cells. In order to maximize the expansion of LMP-specific CTL in vitro for use in adoptive immunotherapy of nasopharyngeal carcinoma patients, we used lymphoblastoid cell lines coated with synthetic peptides corresponding to CTL determinants from the LMP proteins. We investigated several issues pertaining to the expansion of an immunologically weak CTL response, including peptide and interleukin-2 concentration, and screening assays for selecting the optimal peptide for use in expansion of LMP-specific CTL. Although screening of ex vivo peripheral blood mononuclear cells did not prove to be useful in the selection of an LMP peptide for use in CTL cultures, the peptide and interleukin-2 concentrations were critical for the maximum expansion of CTL. Therefore, it is imperative that stimulation protocols are optimized for the expansion of LMP-specific CTL.
Primary infection with the human herpesvirus, Epstein-Barr virus (EBV), may result in subclinical seroconversion or may appear as infectious mononucleosis (IM), a lymphoproliferative disease of variable severity. Why primary infection manifests differently between patients is unknown, and, given the difficulties in identifying donors undergoing silent seroconversion, little information has been reported. However, a longstanding assumption has been held that IM represents an exaggerated form of the virologic and immunologic events of asymptomatic infection. T-cell receptor (TCR) repertoires of a unique cohort of subclinically infected patients undergoing silent infection were studied, and the results highlight a fundamental difference between the 2 forms of infection. In contrast to the massive T-cell expansions mobilized during the acute symptomatic phase of IM, asymptomatic donors largely maintain homeostatic T-cell control and peripheral blood repertoire diversity. This disparity cannot simply be linked to severity or spread of the infection because high levels of EBV DNA were found in the blood from both types of acute infection. The results suggest that large expansions of T cells within the blood during IM may not always be associated with the control of primary EBV infection and that they may represent an overreaction that exacerbates disease.
The immunodominant, CD8(+) cytotoxic T lymphocyte (CTL) response to the HLA-B8-restricted peptide, RAKFKQLL, located in the Epstein-Barr virus immediate-early antigen, BZLF1, is characterized by a diverse T cell receptor (TCR) repertoire. Here, we show that this diversity can be partitioned on the basis of crossreactive cytotoxicity patterns involving the recognition of a self peptide-RSKFRQIV-located in a serine/threonine kinase and a bacterial peptide-RRKYKQII-located in Staphylococcus aureus replication initiation protein. Thus CTL clones that recognized the viral, self, and bacterial peptides expressed a highly restricted alphabeta TCR phenotype. The CTL clones that recognized viral and self peptides were more oligoclonal, whereas clones that strictly recognized the viral peptide displayed a diverse TCR profile. Interestingly, the self and bacterial peptides equally were substantially less effective than the cognate viral peptide in sensitizing target cell lysis, and also resulted only in a weak reactivation of memory CTLs in limiting dilution assays, whereas the cognate peptide was highly immunogenic. The described crossreactions show that human antiviral, CD8(+) CTL responses can be shaped by peptide ligands derived from autoantigens and environmental bacterial antigens, thereby providing a firm structural basis for molecular mimicry involving class I-restricted CTLs in the pathogenesis of autoimmune disease.
Dramatic clonal expansions of unknown functional significance have been documented in the T cell receptor (TCR) alpha beta peripheral blood repertoires of apparently healthy adults. In this study, we provide evidence that persistent infection with the ubiquitous Epstein-Barr virus (EBV) causes major distortions within the memory repertoire of healthy virus carriers. Using complementarity determining region 3 (CDR3) length analysis to measure repertoire diversity, dominant expansions that dramatically skewed the entire TCRBV6 blood repertoire towards oligoclonality were enriched in the CD8(+)CD45RO(+)CD45RA(-) subset of HLA B8(+) healthy virus carriers. Evidence of phenotypic heterogeneity between individuals was also observed for these expansions based on their variable coexpression of CD45RO and CD45RA. TCR junctional region sequencing revealed that these expansions were clonal and that they represented commonly selected HLA. B8-restricted memory cytotoxic T cells that recognize the immunodominant latent EBV epitope, FLRGRAYGL. Furthermore, the functional identity of these virus-specific CD8(+) T cells was confirmed by their FLRGRAYGL-specific cytotoxicity. Therefore, the functional significance of dramatic clonal expansions in healthy adults can be linked in some cases to virus-specific CD8(+) T cells that play an essential role in immunosurveillance. This first identified link for expansions in the circulation of healthy adults strongly implies that restricted-memory TCR responses to environmental antigens play a pivotal role in expansion development, which should have an important impact on studies interpreting TCR expansion patterns in health and disease.
Epstein–Barr virus (EBV) infects B cells, resulting in the outgrowth of immortalised lymphoblastoid cell lines (LCLs). Here, we demonstrate through the use of intracellular staining that interleukin-1β (IL-1β) is expressed in LCLs and investigate the influence of the individual latent proteins on the expression of IL-1β. Using RT-PCR, IL-1β was shown to be up-regulated in EBV-transformed LCLs as well as in group III Burkitt's lymphoma (BL) cell lines, compared with group I BL cell lines. The up-regulation of IL-1β message could be mediated by the latent membrane protein-1, EBV nuclear proteins 2, 3, 4, and 6 genes. Electrophoretic mobility shift assays (EMSAs) demonstrated that the −300 region of the IL-1β promoter, which contains a nuclear factor-κB (NF-κB) binding site, contained a functional RBP binding site. Binding of RBP to this site could be inhibited by addition of EBV nuclear proteins 3 and 6, suggesting that these proteins displace RBP from its recognition sequence, removing transcriptional repression and allowing gene transcription to occur. In group I BL cells, containing low levels of NF-κB, only RBP binding was observed in EMSAs, whereas NF-κB binding could be demonstrated in EBV-transformed B cell lines containing high levels of activated NF-κB. In addition, the expression of latent membrane protein-1 led to activation of NF-κB that was capable of binding the IL-1β promoter. The study demonstrates that EBV can up-regulate IL-1β expression, possibly by using RBP, NF-κB, or both.
Five healthy human leukocyte antigen-B8 (HLA-B8)-positive virus carriers were studied to investigate the CD8+ cytotoxic T lymphocyte (CTL) response to an HLA-B8-restricted peptide, RAKFKQLLQ, located in the Epstein-Barr virus (EBV) immediate-early trans-activator protein, BZLF1. Of the 5 virus carriers, 4 were infected with type A and 1 with type B EBV. Using limiting-dilution analysis of peripheral blood mononuclear cells, a high RAKFKQLLQ-specific CTL precursor frequency was demonstrated after specific peptide or autologous lymphoblastoid cell line stimulation in both type A and type B EBV carriers. The RAKFKQLLQ-specific CTL precursor frequencies in all 5 persons were at least as dominant as those observed with two other EBV-associated, HLA-B8-restricted latent epitopes, FLRGRAYGL and QAKWRLQTL. These findings show that healthy virus carriers maintain a high frequency of BZLF1-specific memory T cells, potentially to control virus spread from lytically infected cells.
We investigated the CD8+ cytotoxic T lymphocyte (CTL) repertoire to an HLA B8-restricted peptide, RAKFKQLLQ, located in the Epstein-Barr virus (EBV) immediate-early protein, BZLF1. Repertoire selection was monitored by determining the TCR beta chain sequences of RAKFKQLLQ-specific CTL established from primary infected and healthy virus carriers. PCR analysis of spontaneous EBV-transformed lymphoblastoid cell lines (LCL) from three individuals with primary infection showed that two were infected with type A and one with type B EBV. Polyclonal and clonal CTL that were generated by stimulating peripheral blood mononuclear cells with an HLA B8+ homozygous LCL lysed T cell blasts pulsed with the peptide, RAKFKQLLQ; lysis of certain HLA B8+ LCL targets was associated with the abundance of BZLF1 transcripts. TCR beta analysis showed that while there was loop length restriction in the putative peptide contact site of all responding beta chains, diverse and unique (non-recurrent) TCR beta clonotypes were selected in individuals during primary infection and continued to emerge after long-term virus exposure. TCR-contact site heterogeneity was excluded as the selective force in diversity generation since the epitope-encoded sequences were found to be identical within endogenous virus isolates. In this first study of TCR repertoire selection for an EBV lytic antigen, a BZLF1-reactive component of diverse clonotypes was identified in primary type A or type B EBV infection which was sustained in the EBV-specific memory response throughout life-long infection. This diversity selection is likely to play a critical role in maintaining a balanced viral load throughout EBV persistence.
The first use of granulocyte/macrophage-colony-stimulating-factor-transduced, lethally irradiated, autologous melanoma cells as a therapeutic vaccine in a patient with rapidly progressive, widely disseminated malignant melanoma resulted in the generation of a novel antitumour immune response associated with partial, albeit temporary, clinical benefit. An initially negative reaction to non-transduced, autologous melanoma cells was converted to a delayed-type hypersensitivity (DTH) reaction of increasing magnitude following successive vaccinations. While intradermal vaccine sites showed prominent dendritic cell accrual, DTH sites revealed a striking influx of eosinophils in addition to activated/memory T lymphocytes and macrophages, recalling the histology of challenge tumour cell rejection in immune mice. Cytotoxic T lymphocytes (CTL) reactive with autologous melanoma cells were detectable at high frequency after vaccination, not only in limiting-dilution analysis, but also in bulk culture without added cytokines. Clonal analysis of CTL showed a conversion from a purely CD8+ response to a high proportion of CD4+ clones following vaccination. A prominent acute-phase response manifested by a five- to tenfold increase in C-reactive protein was observed, as was a systemic eosinophilia. Vaccination resulted in the regression of axillary lymphatic metastases, stabilisation of pulmonary metastases, and a dramatic, reversible increase in cerebral oedema associated with multiple central nervous system metastases; however, lesions in the adrenal glands, pancreas and spleen proved refractory. The antitumour effects and immune response were not detectable 2 months following the last vaccination. Irradiation of the extensive cerebral metastases resulted in rapid deterioration and death of the patient.
The memory response to the immunodominant Epstein‐Barr virus (EBV) epitope FLRGRAYGL, which associates with HLA B8, is exceptionally restricted, being dominated by cytotoxic T lymphocytes (CTL) with a single, public T cell receptor (TCR). CTL clones that express this receptor fortuitously cross‐react with the alloantigen HLA B44. However, of the two major subtypes of this HLA, B * 4402 and B * 4403, that differ by a single amino acid, only the former is recognized by these mature CTL clones. Individuals heterozygous for HLA B8 and B * 4402 use alternative TCR for the EBV determinant since the dominant TCR is potentially self‐reactive. We now demonstrate that this clonotype is also essentially absent from the repertoire of CTL directed against the viral epitope in seven from seven unrelated individuals heterozygous for HLA B8 and B * 440 3 . Thus immune tolerance of these CTL recognizing HLA B * 4402 is associated with expression of either B * 4402 or B * 4403. This suggests that tolerance in the human T cell compartment requires a lower threshold of recognition than for effector function, thus providing a buffer zone minimizing the risk of autoimmunity. These data also illustrate the potential for non‐restricting HLA molecules to bias dramatically the T cell repertoire used for specific immune responses. Such influences may be the basis of the “protective” effects of certain HLA alleles in susceptibility to autoimmune disorders.
The importance of cytotoxic T lymphocytes (CTLs) in the immunosurveillance of Epstein-Barr virus (EBV)-infected B cells is firmly established, and the viral antigens of CTL recognition in latent infection are well defined. The epitopes targeted by CTLs during primary infection have not been identified, however, and there is only limited information about T cell receptor (TCR) selection. In the present report, we have monitored the development of memory TCR-beta clonotypes selected in response to natural EBV infection in a longitudinal study of an HLA-B8+ individual with acute infectious mononucleosis (IM). By stimulating peripheral blood lymphocytes with HLA-B8+ EBV-transformed B lymphoblastoid cells, the primary virus-specific CTL response was shown to include specificities for two HLA-B8-restricted antigenic determinants, FLRGRAYGL and QAKWRLQTL, which are encoded within the latent EBV nuclear antigen EBNA-3. TCR-beta sequence analysis of CTL clones specific for each epitope showed polyclonal TCR-beta repertoire selection, with structural restrictions on recognition that indicated antigen-driven selection. Furthermore, longitudinal repertoire analysis revealed long-term preservation of a multiclonal effector response throughout convalescence, with the reemergence of distinct memory T cell clonotypes sharing similar structural restrictions. Tracking the progression of specific TCR-beta clonotypes and antigen-specific TCR-V beta family gene expression in the peripheral repertoire ex vivo using semiquantitative PCR strongly suggested that selective TCR-beta expansions were present at the clonotype level, but not at the TCR-V beta family level. Overall, in this first analysis of antigen-specific TCR development in IM, a picture of polyclonal TCR stimulation is apparent. This diversity may be especially important in the establishment of an effective CTL control during acute EBV infection and in recovery from disease.
Epstein–Barr virus (EBV) is the aetiological agent of infectious mononucleosis (IM) which is a common sequel to primary EBV infection. Thereafter, the virus is maintained as a lifetime latent infection. Although the proteins expressed during the latent EBV infection provide a rich source of immunogenic epitopes, very little is known about cytotoxic T lymphocyte (CTL) control of primary EBV infection. The present report is based on an analysis of CTL clones derived from a patient suffering from acute IM. An intriguing feature of six CTL clones that displayed an HLA-restricted pattern of cell lysis was their initial coexpression of the T cell markers CD3, CD4, and CD8. Detailed analysis of one of these clones, which was restricted through the class II MHC antigen DR2, revealed reactivity with an epitope within the EBV lytic cycle early antigen, BHRF1, which corresponds to the C-terminal region of the protein (AGLTLSLLVICSYLFISRG) (residues 171–189). There have been no previously published reports describing a CTL response during acute IM directed against an EBV lytic antigen. Interestingly, the coexpression of CD4 and CD8 by these CTLs during acute IM suggests that CD3+CD4+CD8+cortical thymocytic precursor cells are recruited in order to overcome the EBV infection.
Persistent Epstein-Barr virus (EBV) infection is primarily controlled by HLA class I-restricted memory cytotoxic T-cell (CTL) responses which can be reactivated in vitro by stimulation of peripheral blood lymphocytes with autologous lymphoblastoid cell lines. During an investigation of a donor infected by both type A and type B EBV, CTL specific for type B EBV were isolated. The CTL were found to recognize an epitope encoded by the EBNA-6B gene. The minimal epitope sequence was identified as QNGALAINTF, corresponding to residues 213 to 222 in the EBNA-6B protein, and presentation of this epitope was shown to be via HLA B62 (B15). This is the first report of the characterization of an epitope that is EBV type B specific. CTL recognizing sequences common to type A and type B EBV were identified as well. A cross-reactive epitope recognized by these CTL was encoded within the EBNA-6 gene of both type A and type B. This minimal sequence for this epitope was LLDFVRFMGV (residues 284 to 293 in both types), and the epitope was restricted through HLA A*0201. This second epitope sequence overlaps with a published EBV B44-restricted epitope (EENLLDFVRF). The implications of these findings are discussed with respect to the design and efficacy of epitope-based vaccines.