scholarly journals The CD4+ T-cell response to protein immunization is independent of accompanying IFN-γ-producing CD8+ T cells

Immunology ◽  
2001 ◽  
Vol 93 (3) ◽  
pp. 341-349 ◽  
Author(s):  
DOYLE ◽  
RAMM ◽  
KELSO
Blood ◽  
2011 ◽  
Vol 118 (21) ◽  
pp. 1974-1974
Author(s):  
Suzanne M. McGoldrick ◽  
Abraham Guerrero ◽  
Tori N. Yamamoto ◽  
Colleen Delaney ◽  
Stanley R. Riddell

Abstract Abstract 1974 Cytomegalovirus (CMV) is a major infectious complication in patients undergoing allogeneic hematopoietic stem cell transplantation (HSCT) and has been linked to deficiencies of virus-specific T cell immunity. Compared to bone marrow or peripheral blood stem cell transplants, recipients of single or double umbilical cord blood transplants (UCBT) receive lower numbers of donor T cells that have not previously been primed to CMV and are at increased risk for early and recurrent CMV infections. At our institution, the rate of CMV reactivation in CMV seropositive patients undergoing CBT is close to 100% with standard dose Acyclovir as prophylaxis [Delaney unpublished data]. Here, we systematically analyzed the kinetics of recovery, durability, and specificity of CMV-specific CD8+ and CD4+ T cell responses in UCBT recipients. CD8 T cell responses to CMV were analyzed by interferon γ (IFN-γ) intracellular cytokine staining after stimulating recipient peripheral blood mononuclear cells (PBMC) obtained at various time points after CBT with autologous patient fibroblasts infected with the RV798 virus, which is a mutant CMV strain that lacks the viral US genes that downregulate class I MHC and can present all potentially immunogenic epitopes of the virus. The mean absolute CD8 T cell counts were 59, 93 and 213 cells/μl and the mean CD4 T cell counts were 154, 223 and 397 cells/μl in PBMC at day 56, 180 and 365 respectively. Direct assays of PBMC after a 4–6 hour stimulation with RV798-infected fibroblasts did not detect a significant frequency of IFN-γ+ CD8+ T cells in CBT recipients, in contrast to normal CMV+ donors that exhibited frequencies of CD8+ T cells of 2–10%. However, IFN-γ+ CMV specific CD8 T cells were readily detectable in PBMC obtained as early as day 42 after UCBT from 8 out of 8 CMV positive CBT recipients after a 10 day stimulation with RV798 infected fibroblasts. These responses were sustained at multiple time points through day 365 post transplant. This result was not a consequence of in vitro priming of CD8 T cells by prolonged stimulation with RV798 since we did not detect a CMV-specific T cell response in 3 out of 3 CMV seronegative recipients at any time through day 365 with the same assay. To assess CD4+ T cell responses, we performed lymphoproliferative assays (LPA) by stimulating patient PBMC obtained at the same time points with whole CMV antigen. The proportion of patients with a positive response at day 56, 80, 180 and 365 was 0.38, 0.50, 0.88, and 1.0 respectively. All of the CMV positive CBT recipients in our study had multiple occurrences of CMV reactivation throughout the first year post CBT requiring antiviral drug therapy. The CMV-specific CD8 T cell response in normal CMV+ individuals recognizes a large number of distinct dominant and subdominant antigens and a potential explanation for the failure to control CMV after CBT is that the T cell response may not be sufficiently diverse. We analyzed the specificity of CMV specific CD8+ T cells that developed after CBT in 4 recipients by assessing recognition of COS cells transfected with the class I HLA restricting alleles and with a CMV plasmid library consisting of 142 ORFs, subdivided into pools. A response was seen in 3 out of 4 patients to at least 3 different CMV antigens by day 80 post CBT, including previously defined dominant epitopes in pp65 and this diversity was maintained through 6–12 months post transplant. One patient had a less diverse response early post CBT and the response changed over time to include recognition of new epitopes. Collectively, our results demonstrate that CD8+ and CD4+ T cells are primed to CMV antigens very early after CBT despite the infusion of limited numbers of naïve T cells and the administration of post transplant immunosuppression. The inability to control CMV infection may be due to a quantitative deficiency of CMV-specific T cells resulting from the inability of CMV-specific T cells to expand in vivo to numbers sufficient to eliminate virus replication. Disclosures: No relevant conflicts of interest to declare.


2008 ◽  
Vol 37 ◽  
pp. 62-68 ◽  
Author(s):  
David A. Hokey ◽  
Jian Yan ◽  
Lauren A. Hirao ◽  
Anlan Dai ◽  
Jean D. Boyer ◽  
...  

1994 ◽  
Vol 6 (10) ◽  
pp. 1515-1523 ◽  
Author(s):  
Anne Kelso ◽  
Penny Groves ◽  
Anthony B. Troutt ◽  
Michael H. Pech

Blood ◽  
2004 ◽  
Vol 104 (11) ◽  
pp. 606-606 ◽  
Author(s):  
Louis J. Picker ◽  
Andrew W. Sylwester ◽  
Bridget L. Mitchell ◽  
Cara Taormina ◽  
Christian Pelte ◽  
...  

Abstract Human Cytomegalovirus (HCMV) is among the largest and most complex of known viruses with 150–200nm virions enclosing a double stranded 230kb DNA genome capable of coding for >200 proteins. HCMV infection is life-long, and for the vast majority of immune competent individuals clinically benign. Disease occurs almost exclusively in the setting of immune deficiency, suggesting that the stable host-parasite relationship that characterizes these infections is the result of an evolutionarily “negotiated” balance between viral mechanisms of pathogenesis and the host immune response. In keeping with, and perhaps because of this balance, the human CD4+ T cell response to whole HCMV viral lysates is enormous, with median peripheral blood frequencies of HCMV-specific cells ~5–10 fold higher than for analogous preparations of other common viruses. Although certain HCMV ORFs have been identified as targets of either the CD4+ or CD8+ T cell response, the specificities comprising the CD4+ T cell response, and both the total frequencies and component parts of the CD8+ T cell response are unknown. Here, we used cytokine flow cytometry and ~14,000 overlapping 15mer peptides comprising all 213 HCMV ORFs encoding proteins >100 amino acids in length to precisely define the total CD4+ and CD8+ HCMV-specific T cell responses and the HCMV ORFs responsible for these responses in 33 HCMV-seropositive, HLA-disparate donors. An additional 9 HCMV seronegative donors were similarly examined to define the extent to which non-HCMV responses cross-react with HCMV-encoded epitopes. We found that when totaled, the median frequencies of HCMV-specific CD4+ and CD8+ T cells in the peripheral blood of the seropositive subjects were 4.0% and 4.5% for the total CD4+ or CD8+ T cell populations, respectively (which corresponds to 9.1% and 10.5% of the memory populations, respectively). The HCMV-specific CD4+ and CD8+ T cell responses included a median 12 and 7 different ORFs, respectively, and all told, 73 HCMV ORFs were identified as targets for both CD4+ and CD8+ T cells, 26 ORFs as targets for CD8+ T cells alone, and 43 ORFS as targets for CD4+ T cells alone. UL55, UL83, UL86, UL99, and UL122 were the HCMV ORFs most commonly recognized by CD4+ T cells; UL123, UL83, UL48, UL122 and UL28 were the HCMV ORFs most commonly recognized by CD8+ T cells. The relationship between immunogenicity and 1) HLA haplotype and 2) ORF expression and function will be discussed. HCMV-seronegative individuals were non-reactive with the vast majority of HCMV peptides. Only 7 potentially cross-reactive responses were identified (all by CD8+ T cells) to 3 ORFs (US32, US29 and UL116) out of a total of almost 4,000 potential responses, suggesting fortuitous cross-reactivity with HCMV epitopes is uncommon. These data provide the first glimpse of the total human T cell response to a complex infectious agent, and will provide insight into the rules governing immunodominance and cross-reactivity in complex viral infections of humans.


Blood ◽  
2009 ◽  
Vol 114 (22) ◽  
pp. 4096-4096
Author(s):  
Katayoun Rezvani ◽  
Agnes S. M. Yong ◽  
Stephan Mielke ◽  
Behnam Jafarpour ◽  
Bipin N. Savani ◽  
...  

Abstract Abstract 4096 Poster Board III-1031 We previously demonstrated the immunogenicity of a combined vaccine approach employing two leukemia-associated antigenic peptides, PR1 and WT1 (Rezvani Blood 2008). Eight patients with myeloid malignancies received one subcutaneous 0.3 mg and 0.5 mg dose each of PR1 and WT1 vaccines in Montanide adjuvant, with 100 μg of granulocyte-macrophage colony-stimulating factor (GM-CSF). CD8+ T-cell responses against PR1 or WT1 were detected in all patients as early as 1 week post-vaccination. However, responses were only sustained for 3-4 weeks. The emergence of PR1 or WT1-specific CD8+ T-cells was associated with a significant but transient reduction in minimal residual disease (MRD) as assessed by WT1 expression, suggesting a vaccine-induced anti-leukemia response. Conversely, loss of response was associated with reappearance of WT1 transcripts. We hypothesized that maintenance of sustained or at least repetitive responses may require frequent boost injections. We therefore initiated a phase 2 study of repeated vaccination with PR1 and WT1 peptides in patients with myeloid malignancies. Five patients with acute myeloid leukemia (AML) and 2 patients with myelodysplastic syndrome (MDS) were recruited to receive 6 injections at 2 week intervals of PR1 and WT1 in Montanide adjuvant, with GM-CSF as previously described. Six of 7 patients completed 6 courses of vaccination and follow-up as per protocol, to monitor toxicity and immunological responses. Responses to PR1 or WT1 vaccine were detected in all patients after only 1 dose of vaccine. However, additional boosting did not further increase the frequency of PR1 or WT1-specific CD8+ T-cell response. In 4/6 patients the vaccine-induced T-cell response was lost after the fourth dose and in all patients after the sixth dose of vaccine. To determine the functional avidity of the vaccine-induced CD8+ T-cell response, the response of CD8+ T-cells to stimulation with 2 concentrations of PR1 and WT1 peptides (0.1 and 10 μM) was measured by IC-IFN-γ staining. Vaccination led to preferential expansion of low avidity PR1 and WT1 specific CD8+ T-cell responses. Three patients (patients 4, 6 and 7) returned 3 months following the 6th dose of PR1 and WT1 peptide injections to receive a booster vaccine. Prior to vaccination we could not detect the presence of PR1 and WT1 specific CD8+ T-cells by direct ex-vivo tetramer and IC-IFN-γ assay or with 1-week cultured IFN-γ ELISPOT assay, suggesting that vaccination with PR1 and WT1 peptides in Montanide adjuvant does not induce memory CD8+ T-cell responses. This observation is in keeping with recent work in a murine model where the injection of minimal MHC class I binding peptides derived from self-antigens mixed with IFA adjuvant resulted in a transient effector CD8+ T cell response with subsequent deletion of these T cells and failure to induce CD8+ T cell memory (Bijker J Immunol 2007). This observation can be partly explained by the slow release of vaccine peptides from the IFA depot without systemic danger signals, leading to presentation of antigen in non-inflammatory lymph nodes by non-professional antigen presenting cells (APCs). An alternative explanation for the transient vaccine-induced immune response may be the lack of CD4+ T cell help. In summary these data support the immunogenicity of PR1 and WT1 peptide vaccines. However new approaches will be needed to induce long-term memory responses against leukemia antigens. To avoid tolerance induction we plan to eliminate Montanide adjuvant and use GM-CSF alone. Supported by observations that the in vivo survival of CD8+ T-effector cells against viral antigens are improved by CD4+ helper cells, we are currently attempting to induce long-lasting CD8+ T-cell responses to antigen by inducing CD8+ and CD4+ T-cell responses against class I and II epitopes of WT1 and PR1. Disclosures: No relevant conflicts of interest to declare.


2014 ◽  
Vol 307 (2) ◽  
pp. G233-G240 ◽  
Author(s):  
Shuaiyu Zheng ◽  
Hongyi Zhang ◽  
Xiaojin Zhang ◽  
Fei Peng ◽  
Xuyong Chen ◽  
...  

Interferon (IFN)-γ-driven and CD8+ T cell-dependent inflammatory injury to extrahepatic biliary epithelium (EHBE) is likely to be involved in the development of biliary atresia (BA). We previously showed that viral protein NSP4 is the pathogenic immunogen that causes biliary injury in BA. In this study, NSP4 or four synthetic NSP4 (NSP4157–170, NSP4144–152, NSP493–110, NSP424–32) identified by computer analysis as candidate CD8+ T cell epitopes were injected into neonatal mice. The pathogenic NSP4 epitopes were confirmed by studying extrahepatic bile duct injury, IFN-γ release and CD8+ T cell response against EHBE. The results revealed, at 7 days postinjection, inoculation of glutathione S-transferase (GST)-NSP4 caused EHBE injury and BA in neonatal mice. At 7 or 14 days postinject, inoculation of GST-NSP4, NSP4144–152, or NSP4157–170 increased IFN-γ release by CD8+ T cells, elevated the population of hepatic memory CD8+ T cells, and augmented cytotoxicity of CD8+ T cells to rhesus rotavirus (RRV)-infected or naive EHBE cells. Furthermore, depletion of CD8+ T cells in mice abrogated the elevation of GST-NSP4-induced serum IFN-γ. Lastly, parenteral immunization of mouse dams with GST-NSP4, NSP4144–152, or NSP4157–170 decreased the incidence of RRV-induced BA in their offspring. Overall, this study reports the CD8+ T cell response against EHBE is activated by epitopes within rotavirus NSP4 in experimental BA. Neonatal passive immunization by maternal vaccination against NSP4144–152 or NSP4157–170 is effective in protecting neonates from developing RRV-related BA.


2007 ◽  
Vol 81 (16) ◽  
pp. 8571-8578 ◽  
Author(s):  
Karen Pueschel ◽  
Annette Tietz ◽  
Mary Carsillo ◽  
Michael Steward ◽  
Stefan Niewiesk

ABSTRACT Acute measles in children can be prevented by immunization with the live attenuated measles vaccine virus. Although immunization is able to induce CD4 and CD8 T cells as well as neutralizing antibodies, only the latter have been correlated with protective immunity. CD8 T cells, however, have been documented to be important in viral clearance in the respiratory tract, whereas CD4 T cells have been shown to be protective in a mouse encephalitis model. In order to investigate the CD4 T-cell response in infection of the respiratory tract, we have defined a T-cell epitope in the hemagglutinin (H) protein for immunization and developed a monoclonal antibody for depletion of CD4 T cells in the cotton rat model. Although the kinetics of CD4 T-cell development correlated with clearance of virus, the depletion of CD4 T cells during the primary infection did not influence viral titers in lung tissue. Immunization with the H epitope induced a CD4 T-cell response but did not protect against infection. Immunization in the presence of maternal antibodies resulted in the development of a CD4 T-cell response which (in the absence of neutralizing antibodies) did not protect against infection. In summary, CD4 T cells do not seem to protect against infection after immunization and do not participate in clearance of virus infection from lung tissue during measles virus infection. We speculate that the major role of CD4 T cells is to control and clear virus infection from other affected organs like the brain.


2013 ◽  
Vol 87 (23) ◽  
pp. 12510-12522 ◽  
Author(s):  
Nayana Prabhu ◽  
Adrian W. Ho ◽  
Kenneth H. S. Wong ◽  
Paul Edward Hutchinson ◽  
Yen Leong Chua ◽  
...  

The factors that regulate the contraction of the CD8 T cell response and the magnitude of the memory cell population against localized mucosal infections such as influenza are important for generation of efficient vaccines but are currently undefined. In this study, we used a mouse model of influenza to demonstrate that the absence of gamma interferon (IFN-γ) or IFN-γ receptor 1 (IFN-γR1) leads to aberrant contraction of antigen-specific CD8 T cell responses. The increased accumulation of the effector CD8 T cell population was independent of viral load. Reduced contraction was associated with an increased fraction of CD8 T cells expressing the interleukin-7 receptor (IL-7R) at the peak of the response, resulting in enhanced numbers of memory/memory precursor cells in IFN-γ−/−and IFN-γR−/−compared to wild-type (WT) mice. Blockade of IL-7 within the lungs of IFN-γ−/−mice restored the contraction of influenza virus-specific CD8 T cells, indicating that IL-7R is important for survival and is not simply a consequence of the lack of IFN-γ signaling. Finally, enhanced CD8 T cell recall responses and accelerated viral clearance were observed in the IFN-γ−/−and IFN-γR−/−mice after rechallenge with a heterologous strain of influenza virus, confirming that higher frequencies of memory precursors are formed in the absence of IFN-γ signaling. In summary, we have identified IFN-γ as an important regulator of localized viral immunity that promotes the contraction of antigen-specific CD8 T cells and inhibits memory precursor formation, thereby limiting the size of the memory cell population after an influenza virus infection.


2008 ◽  
Vol 76 (10) ◽  
pp. 4609-4614 ◽  
Author(s):  
Dietmar M. W. Zaiss ◽  
Alice J. A. M. Sijts ◽  
Tim R. Mosmann

ABSTRACT Cytotoxicity is a key effector function of CD8 T cells. However, what proportion of antigen-specific CD8 T cells in vivo exert cytotoxic activity during a functional CD8 T-cell response to infection still remains unknown. We used the Lysispot assay to directly enumerate cytotoxic CD8 T cells from the spleen ex vivo during the immune response to infection with the intracellular bacterium Listeria monocytogenes. We demonstrate that not all antigen-responsive gamma interferon (IFN-γ)-secreting T cells display cytotoxic activity. Most CD8 T cells detected at early time points of the response were cytotoxic. This percentage continuously declined during both the expansion and contraction phases to about 50% at the peak and to <10% of IFN-γ-producing cells in the memory phase. As described for clonal expansion, this elaboration of a program of differentiation after an initial stimulus was not affected by antigen or CD4 help but, like proliferation, could be influenced by later reinfection. These data indicate that cytotoxic effector function during the response to infection is regulated independently from IFN-γ secretion or expansion or contraction of the overall CD8 T-cell response.


2002 ◽  
Vol 195 (11) ◽  
pp. 1463-1470 ◽  
Author(s):  
Imtiaz A. Khan ◽  
Magali Moretto ◽  
Xiao-qing Wei ◽  
Martha Williams ◽  
Joseph D. Schwartzman ◽  
...  

Interferon (IFN)-γ–producing CD8+ T cells are important for the successful resolution of the obligate intracellular parasite Toxoplasma gondii by preventing the reactivation or controlling a repeat infection. Previous reports from our laboratory have shown that exogenous interleukin (IL)-15 treatment augments the CD8+ T cell response against the parasite. However, the role of endogenous IL-15 in the proliferation of activated/memory CD8+ T cells during toxoplasma or any other infection is unknown. In this study, we treated T. gondii immune mice with soluble IL-15 receptor α (sIL-15Rα) to block the host endogenous IL-15. The treatment markedly reduced the ability of the immune animals to control a lethal infection. CD8+ T cell activities in the sIL-15Rα–administered mice were severely reduced as determined by IFN-γ release and target cell lysis assays. The loss of CD8+ T cell immunity due to sIL-15Rα treatment was further demonstrated by adoptive transfer experiments. Naive recipients transferred with CD44hi activated/memory CD8+ T cells and treated with sIL-15Rα failed to resist a lethal T. gondii infection. Moreover, sIL-15Rα treatment of the recipients blocked the ability of donor CD44hi activated/memory CD8+ T cells to replicate in response to T. gondii challenge. To our knowledge, this is the first demonstration of the important role of host IL-15 in the development of antigen-specific memory CD8+ T cells against an intracellular infection.


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