890 resultados para CD62L, naive T cells, adoptive T cell transfer


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Nuclear factor of activated T cells (NFAT) ist eine Familie der Transkriptionsfaktoren, welche eine wichtige Rolle bei der Regulation der T-Zellvermittelten Signalkaskade in der Lymphozytenpopulation spielt. In dieser Arbeit konnte gezeigt werden, dass Nuclear Factor of Activated T cells-2 (NFATc2) defiziente Mäuse einen erhöhten Atemwegswiderstand, einen pathologische Veränderung der Lunge und einen erhöhten IgE Spiegel im Vergleich zu den Wildtypen vorweisen. Die NFATc2 Defizienz konnte ebenfalls sowohl mit einer erhöhten Anzahl an Th2 und Th17 Zellen, die eine erhöhte Proliferation vorweisen, als auch einer erniedrigten Anzahl an CD8+ CD122- T-Zellen, die geringere Mengen an IFN-g produzieren, in Verbindung gebracht werden. Die aus den NFATc2(-/-) Mäusen isolierten CD4+ T-Zellen zeigen im Vergleich zu denen der Wildtypen neben der erhöhten Proliferation einen vermehrte Aktivierung (CD4higCD44highCD69high). Weiterhin konnte in dieser Arbeit gezeigt werden, dass in Anwesenheit eines Allergens, die NFATc2(-/-) Mäuse eine erhöhte Anzahl an regulatorischen T-Zellen (CD4+CD25+Foxp3+GITR++) in der Lunge vorweisen, die wiederum die Effektorzellen in diesen hemmen. Ein Grund für die geringere Freisetzung an IFN-g durch die CD8+ T-Zellen in den NFATc2 defizienten Mäusen ist eine erhöhte Subpopulation von CD8+CD122+ (IL-2Rb Kette) CD127hi (IL-7Ra Kette) „long-lived memory Zellen“ in den NFATc2(-/-) Mäusen. Diese besitzen einen regulatorischen Effekt, so dass immundefiziente SCID Mäuse, die in einem adoptiven Transfer mit OVA-spezifischen CD8+ und CD4+ T-Zellen, welchen aus NFATc2(-/-) Mäuse isoliert werden, behandelt wurden, eine erhöhten Atemwegswiderstand, eine erhöhte IL-17 und eine erniedrigte IFN-g Produktion vorweisen. Eine Depletion der memory CD8+CD122+IL-7Rhigh T-Zellen hebt dagegen die verringerte IFN-g Produktion der CD8+CD122- T-Zellen auf und führt zu einer Erniedrigung des Atemwegswiderstandes in einem SCID Model Zusammenfassend zeigen unsere Untersuchungen, dass sowohl die IFN-g Produktion der CD8+ Effektor T-Zellen als auch die Anzahl an CD4+CD25+Foxp3+GITR++ regulatorischen T-Zellen die Entwicklung der Th2 und Th17 als auch die Höhe des Atemwegswiderstandes unterdrückt.

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Zu den Immunevasionsmechanismen des murinen Cytomegalovirus, die sich im Laufe der Koevolution von Virus und Wirt entwickelt haben, gehört die Interferenz von drei viralen Regulatoren mit der Antigenpräsentation über MHC-Klasse-I-Moleküle, wodurch die Aktivierung von zytotoxischen CD8 T-Zellen beeinflusst wird: Während m152/gp40 peptidbeladene MHC-Klasse-I-Komplexe im cis-Golgi-Kompartiment akkumuliert, führt m06/gp48 diese Komplexe der lysosomalen Degradation zu. Im Gegensatz dazu vermittelt m04/gp34 deren Transport an die Zelloberfläche, wurde in der Literatur bisher aber trotzdem als Inhibitor der CD8 T-Zellaktivierung beschrieben. Ziel der vorliegenden Arbeit war es, den Einfluss dieser viralen Proteine auf die Peptidpräsentation bzw. die T-Zellaktivierung zu untersuchen. Dazu wurde ein Set von Viren verwendet, das neben mCMV-WT aus mCMV-Deletionsmutanten besteht, die jedes der regulatorischen Proteine einzeln bzw. in allen möglichen Kombinationen exprimieren, einschließlich einer Mutante, die keines der Proteine besitzt. Entgegen der bisher gültigen Annahme konnte in der vorliegenden Arbeit gezeigt werden, dass m04/gp34 die Antigenpräsentation nicht inhibiert. Wird es allein exprimiert, bleibt die T-Zellaktivierung unbeeinflusst. Wird es zusammen mit m152/gp40 exprimiert, stellt es die T-Zellaktivierung wieder her, indem es den herunter regulierenden Effekt von m152/gp40 antagonisiert. Dieser positiv regulierende Effekt von m04/gp34 wird wiederum durch m06/gp48 aufgehoben. Es konnte ebenfalls gezeigt werden, wie die verschiedenen Effekte dieser Virusproteine in vivo das Überleben im infizierten Wirt steuern. So wird im adoptiven Transfermodell die Infektion mit der Deletionsmutante, die m152/gp40 alleine exprimiert, schlechter kontrolliert als die Infektion mit der m152/gp40 und m04/gp34 exprimierenden Mutante. Dieser die CD8 T-Zellkontrolle verbessernde Effekt von m04/gp34 wird durch m06/gp48 wieder aufgehoben. Dass ein viraler Erreger nicht nur negative Regulatoren der Antigenpräsentation exprimiert, sondern auch einen positiven Regulator, der den Effekt eines negativen Regulators wieder aufhebt, ist in der Literatur beispiellos. Durch differentielle Expression dieser Regulatoren eröffnet sich damit dem Virus die Möglichkeit, die Antigenpräsentation gezielt zu modulieren.

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Die Kontrolle der Infektion mit dem humanen Cytomegalovirus (HCMV) wird primär durch antivirale CD8 T-Zellen vermittelt. Während der Koevolution zwischen Virus und Wirt wurden Immunevasionsmechanismen entwickelt, die direkt die Expression der Peptid-MHC-Klasse-I-Komplexe an der Zelloberfläche beeinflussen und es dem Virus ermöglichen, der Immunkontrolle des Wirtes zu entkommen. Da HCMV und das murine CMV (mCMV) zum Teil analoge Strategien zur Modulation des MHC-Klasse-I-Antigen-Präsentationswegs entwickelt haben, wurde in der vorliegenden Arbeit auf das experimentelle Modell mit mCMV zurückgegriffen. Die für die Immunevasion verantwortlichen Genprodukte m04/gp34, m06/gp48 und m152/gp40 werden aufgrund ihres regulatorischen Einflusses auf die Antigenpräsentation als vRAPs (viral regulators of antigen presentation) bezeichnet. Diese interferieren mit dem Transport Peptid-beladener MHC-Klasse-I-Moleküle und reduzieren in ihrer konzertierten Wirkung die Präsentation viraler Peptide an der Zelloberfläche.rnDie Transplantation hämatopoietischer Zellen nach Immunoablation stellt eine etablierte Therapieform bei malignen hämatologischen Erkrankungen dar. Zwischen Immunoablation und der Rekonstitution des Immunsystems sind die Empfänger der transferierten Zellen stark immunsupprimiert und anfällig für eine CMV-Erkrankung bei Reaktivierung des Virus. Neben der Gabe antiviraler Medikamente ist der adoptive Transfer antiviraler CD8 T-Zellen eine vielversprechende Therapiemöglichkeit, um reaktivierende CMV zu kontrollieren, bis das körpereigene Immunsystem wieder funktionsfähig ist. Obwohl im murinen Modell sehr wohl etabliert, stellen im humanen System die eingeschränkte Wirkung und die Notwendigkeit der konsequenten Gabe hoher Zellzahlen gewisse logistische Schwierigkeiten dar, welche die Methode bisher von der klinischen Routine ausschließen.rnDas murine Modell sagte eine Rolle von IFN-γ voraus, da Depletion dieses Zytokins zu einer verminderten Schutzwirkung gegen die mCMV-Infektion führt.rnIm ersten Teil dieser Arbeit sollte ein möglicher inhibitorischer Effekt von m04 auf m152 untersucht werden, der bei der Rekombinanten Δm06W beobachtet wurde. Mit neu generierten Viren (Δm06L1+2) konnte dieser Effekt allerdings nicht bestätigt werden. Bei Δm06W fehlte jedoch eine höher N-glykosylierte Isoform des m152-Proteins. Um zu untersuchen, ob die N-Glykosylierung von m152 für seine Funktion notwendig ist, wurde ein rekombinantes Virus generiert, das in Folge einer Deletion aller 3 N-Glykosylierungssequenzen nur eine nicht-glykosylierte Isoform des m152-Proteins bilden kann. In Übereinstimmung mit der zwischenzeitlich publizierten Kristallstruktur das Komplexes von m152 und dem Liganden RAE-1 des aktivierenden NK-Zellrezeptors NKG2D konnte erstmals gezeigt werden, dass die Funktionen von m152 in der adaptiven und in der angeborenen Immunität auch von der nicht N-glykosylierten Isoform wahrgenommen werden können.rnIm zweiten Teil der Arbeit sollte mit Hilfe eines Sets an vRAP Deletionsmutanten der Einfluss von IFN γ auf die einzeln oder in Kombination exprimierten vRAPs untersucht werden. Es zeigte sich, dass Vorbehandlung der Zellen mit IFN-γ die Antigenprozessierung nach Infektion stark erhöht und die vRAPs dann nicht mehr in der Lage sind, die Präsentation aller Peptid-beladener MHC-Klasse-I-Komplexe zu verhindern. Des Weiteren konnte gezeigt werden, dass vorher nicht-schützende CD8 T-Zellen Schutz vermitteln können, wenn das Gewebe der Rezipienten konstitutiv mit IFN-γ versorgt wird. Die zusätzliche Gabe von IFN-γ stellt daher eine vielversprechende Möglichkeit dar, den adoptiven Transfer als Therapie in der klinischen Routine einzusetzen.

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Naive T cells are migratory cells that continuously recirculate between blood and lymphoid tissues. Antigen-specific stimulation of T cells within the lymph nodes reprograms the trafficking properties of T cells by inducing a specific set of adhesion molecules and chemokine receptors on their surface which allow these activated and effector T cells to effectively and specifically home to extralymphoid organs. The observations of organ-specific homing of T cells initiated the development of therapeutic strategies targeting adhesion receptors for organ-specific inhibition of chronic inflammation. As most adhesion receptors have additional immune functions besides mediating leukocyte trafficking, these drugs may have additional immunomodulatory effects. Therapeutic targeting of T-cell trafficking to the central nervous system is the underlying concept of a novel treatment of relapsing remitting multiple sclerosis with the humanized anti-alpha-4-integrin antibody natalizumab. In this chapter, we describe a possible preclinical in vivo approach to directly visualize the therapeutic efficacy of a given drug in inhibiting T-cell homing to a certain organ at the example of the potential of natalizumab to inhibit the trafficking of human T cells to the inflamed central nervous system in an animal model of multiple sclerosis.

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Naive T cells continuously recirculate between secondary lymphoid tissue via the blood and lymphatic systems, a process that maximizes the chances of an encounter between a T cell and its cognate antigen. This recirculation depends on signals from chemokine receptors, integrins, and the sphingosine-1-phosphate receptor. The authors of previous studies in other cell types have shown that Rac GTPases transduce signals leading to cell migration and adhesion; however, their roles in T cells are unknown. By using both 3-dimensional intravital and in vitro approaches, we show that Rac1- and Rac2-deficient T cells have multiple defects in this recirculation process. Rac-deficient T cells home very inefficiently to lymph nodes and the white pulp of the spleen, show reduced interstitial migration within lymph node parenchyma, and are defective in egress from lymph nodes. These mutant T cells show defective chemokine-induced chemotaxis, chemokinesis, and adhesion to integrin ligands. They have reduced lateral motility on endothelial cells and transmigrate in-efficiently. These multiple defects stem from critical roles for Rac1 and Rac2 in transducing chemokine and sphingosine-1-phosphate receptor 1 signals leading to motility and adhesion.

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Live attenuated Salmonella are attractive vaccine candidates for mucosal application because they induce both mucosal immune responses and systematic immune responses. After breaking the epithelium barrier, Salmonella typhimurium is found within dendritic cells (DC) in the Peyer's patches. Although there are abundant data on the interaction of S. typhimurium with murine epithelial cells, macrophages and DC, little is known about its interaction with human DC. Live attenuated S. typhimurium have recently been shown to efficiently infect human DC in vitro and induce production of cytokines. In this study, we have analysed the morphological consequences of infection of human DC by the attenuated S. typhimurium mutant strains designated PhoPc, AroA and SipB and the wild-type strains of the American Type Culture Collection (Manassas, VA, USA), ATCC 14028 and ATCC C53, by electron microscopy at 30 min, 3 h and 24 h after exposure. Our results show that genetic background of the strains profoundly influence DC morphology following infection. The changes included (i) membrane ruffling; (ii) formation of tight or spacious phagosomes; (iii) apoptosis; and (iv) spherical, pedunculated membrane-bound microvesicles that project from the plasma membrane. Despite the fact that membrane ruffling was much more pronounced with the two virulent strains, all mutants were taken up by the DC. The microvesicles were induced by all the attenuated strains, including SipB, which did not induce apoptosis in the host cell. These results suggest that Salmonella is internalized by human DC, inducing morphological changes in the DC that could explain immunogenicity of the attenuated strains.

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Glucocorticoids are anti-inflammatory steroids with important applications in the treatment of inflammatory diseases. Endogenous glucocorticoids are mainly produced by the adrenal glands, although there is increasing evidence for extra-adrenal sources. Recent findings show that intestinal crypt cells produce glucocorticoids, which contribute to the maintenance of intestinal immune homeostasis. Intestinal glucocorticoid synthesis is critically regulated by the transcription factor liver receptor homologue-1 (LRH-1). As expression of steroidogenic enzymes and LRH-1 is restricted to the proliferating cells of the crypts, we aimed to investigate the role of the cell cycle in the regulation of LRH-1 activity and intestinal glucocorticoid synthesis. We here show that either pharmacological or molecular modulation of cell cycle progression significantly inhibited expression of steroidogenic enzymes and synthesis of glucocorticoids in intestinal epithelial cells. Synchronization of intestinal epithelial cells in the cell cycle revealed that expression of steroidogenic enzymes is preferentially induced at the G(1)/S stage. Differentiation of immature intestinal epithelial cells to mature nonproliferating cells also resulted in reduced expression of steroidogenic enzymes. This cell cycle-related effect on intestinal steroidogenesis was found to be mediated through the regulation of LRH-1 transcriptional activity. This mechanism may restrict intestinal glucocorticoid synthesis to the proliferating cells of the crypts.

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Transmigration through the liver endothelium is a prerequisite for the homeostatic balance of intrahepatic T cells and a key regulator of inflammatory processes within the liver. Extravasation into the liver parenchyma is regulated by the distinct expression patterns of adhesion molecules and chemokines and their receptors on the lymphocyte and endothelial cell surface. In the present study, we investigated whether liver sinusoidal endothelial cells (LSEC) inhibit or support the chemokine-driven transmigration and differentially influence the transmigration of pro-inflammatory or anti-inflammatory CD4(+) T cells, indicating a mechanism of hepatic immunoregulation. Finally, the results shed light on the molecular mechanisms by which LSEC modulate chemokine-dependent transmigration. LSEC significantly enhanced the chemotactic effect of CXC-motif chemokine ligand 12 (CXCL12) and CXCL9, but not of CXCL16 or CCL20, on naive and memory CD4(+) T cells of a T helper 1, T helper 2, or interleukin-10-producing phenotype. In contrast, brain and lymphatic endothelioma cells and ex vivo isolated lung endothelia inhibited chemokine-driven transmigration. As for the molecular mechanisms, chemokine-induced activation of LSEC was excluded by blockage of G(i)-protein-coupled signaling and the use of knockout mice. After preincubation of CXCL12 to the basal side, LSEC took up CXCL12 and enhanced transmigration as efficiently as in the presence of the soluble chemokine. Blockage of transcytosis in LSEC significantly inhibited this effect, and this suggested that chemokines taken up from the basolateral side and presented on the luminal side of endothelial cells trigger T cell transmigration. CONCLUSION: Our findings demonstrate a unique capacity of LSEC to present chemokines to circulating lymphocytes and highlight the importance of endothelial cells for the in vivo effects of chemokines. Chemokine presentation by LSEC could provide a future therapeutic target for inhibiting lymphocyte immigration and suppressing hepatic inflammation.

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TNF plays fundamental roles in the induction and perpetuation of inflammation. The effects of TNF are mediated through TNF receptor (TNFR) 1 or 2. As these two receptors mediate different functions, selective targeting of one receptor may represent a more specific treatment for inflammatory disorders than the complete blocking of TNF. TNFR2 expression is up-regulated in inflammatory bowel disease. Hence, we directly assessed the role of TNFR2 signaling in the CD4(+) T-cell transfer model of colitis using TNFR2(-/-) or WT mice as donors of colitogenic CD4(+)CD45RB(hi) T cells for transfer into syngeneic RAG2(-/-) or RAG2(-/-)TNFR2(-/-) recipient mice. Although the absence of TNFR2 expression by non-lymphoid cells of the recipient mice does not influence the course of colitis, transfer of TNFR2(-/-) CD4(+) T cells leads to an accelerated onset of disease and to more severe signs of inflammation. The enhanced colitogenic potential of TNFR2(-/-) CD4(+) T cells is associated with reduced activation-induced cell death, resulting in an increased accumulation of TNFR2(-/-) CD4(+) T cells. Hence, TNFR2 signaling is crucial for the TNF-dependent contraction of the disease-inducing T cells. Therefore, a selective blocking of TNFR2 may lead to exacerbation rather than attenuation of T-cell-mediated inflammatory disorders.

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The transcription factor KLF2 directs expression of receptors involved in trafficking of naive T cells. In this issue of Immunity, Weinreich et al. (2009) demonstrate that KLF2 additionally represses IL-4 production, which otherwise induces CXCR3 expression.

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Angiomyolipomas are benign tumors of the kidney which express phenotypes of smooth muscle, fat, and melanocytes. These tumors appear with increased frequency in the autosomal dominant disorder tuberous sclerosis and are the leading cause of morbidity in adults with tuberous sclerosis. While benign, these tumors are capable of provoking life threatening hemorrhage and replacement of the kidney parenchyma, resulting in renal failure. The histogenesis of these tumors is currently unclear, although currently, we believe these tumors arise from "perivascular epithelioid cells" of which no normal counterpart has been convincingly demonstrated. Recently, stem cell precursors have been recognized that can give rise to smooth muscle and melanocytes. These precursors have been shown to express the neural stem cell marker NG2 and L1. In order to determine whether angiomyolipomas, which exhibit smooth muscle and melanocytic phenotypes, express NG2 and L1, we performed immunocytochemistry on a cell line derived from a human angiomyolipoma, and found that these cells are uniformly positive. Immunohistochemistry of human angiomyolipoma specimens revealed uniform staining of tumor cells, while renal cell carcinomas revealed positivity only of angiogenic vessels. These results support a novel histogenesis of angiomyolipoma as a defect in differentiation of stem cell precursors.

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Dendritic epidermal T cells (DETC) comprise a unique population of T cells that reside in mouse epidermis and whose function remains unclear. Most DETC express a $\gamma\delta$ TCR, although some, including our DETC line, AU16, express an $\alpha\beta$ TCR. Additionally, AU16 cells express CD3, Thy-1, CD45, CD28, B7, and AsGM-1. Previous studies in our laboratory demonstrated that hapten-conjugated AU16 could induce specific immunologic tolerance in vivo and inhibit T cell proliferation in vitro. Both these activities are antigen-specific, and the induction of tolerance is non-MHC-restricted. In addition, AU16 cells are cytotoxic to a number of tumor cell lines in vitro. These studies suggested a role for these cells in immune surveillance. The purpose of my studies was to test the hypothesis that these functions of DETC (tolerance induction, inhibition of T cell proliferation, and tumor cell killing) were mediated by a cytotoxic mechanism. My specific aims were (1) to determine whether AU16 could prevent or delay tumor growth in vivo; and (2) to determine the mechanism whereby AU16 induce tolerance, using an in vitro proliferation assay. I first showed that AU16 cells killed a variety of skin tumor cell lines in vitro. I then demonstrated that they prevented melanoma growth in C3H mice when both cell types were mixed immediately prior to intradermal (i.d.) injection. Studies using the in vitro proliferation assay confirmed that DETC inhibit proliferation of T cells stimulated by hapten-bearing, antigen-presenting cells (FITC-APC). To determine which cell was the target, $\gamma$-irradiated, hapten-conjugated AU16 were added to the proliferation assay on d 4. They profoundly inhibited the proliferation of naive T cells to $\gamma$-irradiated, FITC-APC, as measured by ($\sp3$H) TdR uptake. This result strongly suggested that the T cell was the target of the AU16 activity because no APC were present by d 4 of the in vitro culture. In contrast, the addition of FITC-conjugated splenic T cells (SP-T) or lymph node T cells (LN-T) was less inhibitory. Preincubation of the T cells with FITC-AU16 cells for 24 h, followed by removal of the AU16 cells, completely inhibited the ability of the T cells to proliferate in response to FITC-APC, further supporting the conclusion that the T cell was the target of the AU16. Finally, AU16 cells were capable of killing a variety of activated T cells and T cell lines, arguing that the mechanism of proliferation inhibition, and possibly tolerance induction is one of cytotoxicity. Importantly, $\gamma\delta$ TCR$\sp+$ DETC behaved, both in vivo and in vitro like AU16, whereas other T cells did not. Therefore, these results are consistent with the hypothesis that AU16 cells are true DETC and that they induce tolerance by killing T cells that are antigen-activated in vivo. ^

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FGFRL1 is a single-pass transmembrane protein with three extracellular Ig domains. When overexpressed in CHO cells or related cell types, it induces cell-cell fusion and formation of large, multinucleated syncytia. For this fusion-promoting activity, only the membrane-proximal Ig domain (Ig3) and the transmembrane domain are required. It does not matter whether the transmembrane domain is derived from FGFRL1 or from another receptor, but the distance of the Ig3 domain to the membrane is crucial. Fusion can be inhibited with soluble recombinant proteins comprising the Ig1-Ig2-Ig3 or the Ig2-Ig3 domains as well as with monoclonal antibodies directed against Ig3. Mutational analysis reveals a hydrophobic site in Ig3 that is required for fusion. If a single amino acid from this site is mutated, fusion is abolished. The site is located on a β-sheet, which is part of a larger β-barrel, as predicted by computer modeling of the 3D structure of FGFRL1. It is possible that this site interacts with a target protein of neighboring cells to trigger cell-cell fusion.

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MacroH2A is a core histone variant that plays an important role in the X-inactivation process during differentiation of embryonic stem cells. It has been shown that macroH2A changes in localization during the cell cycle of somatic cells. This study aims to determine how macroH2A changes during the cell cycle of embryonic stem cells. Male and female mouse embryonic stem cells were transfected with a GFP::macroH2A construct and the relationship between macroH2A and the cell cycle was determined using FACS. This study shows that macroH2A is altered during the cell cycle of embryonic stem cells as it is in somatic cells and that in randomly cycling cells, there is a correlation between macroH2A expression and the phases of the cell cycle. High GFP expressing cells are mostly in the G2/M phase and low GFP expressing cells are mostly in the G1 phase. This correlation indicated that macroH2A is replicated with cellular DNA during the S phase resulting in higher expression in the G2/M phase. Future research, such as RT-PCR and differentiation experiments, is needed to further study this relationship and determine whether this change is at the protein or RNA level and how it changes during differentiation.

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Vaccination of mice with activated autoantigen-reactive CD4+ T cells (T cell vaccination, TCV) has been shown to induce protection from the subsequent induction of a variety of experimental autoimmune diseases, including experimental allergic encephalomyelitis (EAE). Although the mechanisms involved in TCV-mediated protection are not completely known, there is some evidence that TCV induces CD8+ regulatory T cells that are specific for pathogenic CD4+ T cells. Previously, we demonstrated that, after superantigen administration in vivo, CD8+ T cells emerge that preferentially lyse and regulate activated autologous CD4+ T cells in a T cell receptor (TCR) Vβ-specific manner. This TCR Vβ-specific regulation is not observed in β2-microglobulin-deficient mice and is inhibited, in vitro, by antibody to Qa-1. We now show that similar Vβ8-specific Qa-1-restricted CD8+ T cells are also induced by TCV with activated CD4+ Vβ8+ T cells. These CD8+ T cells specifically lyse murine or human transfectants coexpressing Qa-1 and murine TCR Vβ8. Further, CD8+ T cell hybridoma clones generated from B10.PL mice vaccinated with a myelin basic protein-specific CD4+Vβ8+ T cell clone specifically recognize other CD4+ T cells and T cell tumors that express Vβ8 and the syngeneic Qa-1a but not the allogeneic Qa-1b molecule. Thus, Vβ-specific Qa-1-restricted CD8+ T cells are induced by activated CD4+ T cells. We suggest that these CD8+ T cells may function to specifically regulate activated CD4+ T cells during immune responses.