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Original Article |
/β T Cells Effectively Eliminate Abnormally Activated T Cells Lacking the Interleukin 2 Receptor β in Vivo
k46200a{at}nucc.cc.nagoya-u.ac.jp
| Abstract |
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/β type T cell receptor, especially on CD8+ T cells and independent of the Fas–Fas ligand (FasL) system. IL-2Rβ1/+ T cells that eliminated activated IL-2Rβ2/– T cells expressed FasL, perforin, granzyme B, and tumor necrosis factor
/β. These results indicate a novel function of IL-2Rβ that is necessary for the induction of regulatory T cells acting to eliminate activated T cells.
Key Words: T lymphocytes mice, knockout CD8+ T lymphocytes bone marrow transplantation adoptive transfer
Interleukin (IL)-2 is one of the earliest discovered and most extensively studied cytokines. It was first characterized as a growth factor for T cells, and its main function was thought to be the induction of T cell proliferation and expansion 12. Since the discovery of IL-2, the receptor for IL-2 (IL-2R) has also been extensively studied. IL-2R is expressed not only in T cells, but also in a wide variety of hematopoietic cells, including NK cells, B cells, monocytes, and neutrophils. At least three subunit molecules forming the "IL-2 receptor complex" have been identified so far. They are designated
In this decade, the targeted disruption of genes of interest by homologous recombination has been applied to mammalian biology and has revealed much information about the function of hundreds of gene products. Studies of cytokines have been accelerated by this technique. Mice disrupted with a gene encoding a cytokine molecule or its receptor have been created and extensively studied. IL-2 and its receptor are not the exception: IL-2–deficient mice were first created and described in 1991 7, followed by IL-2R
In this study, we investigated the relationship between IL-2Rβ2/– T cells and normal T cells, and found a possible regulatory activity of normal T cells against IL-2Rβ2/– T cells. We propose here that the most indispensable function of IL-2Rβ is the induction of regulatory T cells, the loss of which may lead to the abnormalities seen in IL-2Rβ2/– mice.
Antibodies and Flow Cytometry.
Bone Marrow Transplantation.
T Cell Transfer.
Purification of Cells Using Magnetic Beads.
Reverse-transcribed PCR.
Statistical Analysis.
, β, and
chain.
chain is known as
c (common
), and works as a subunit of many different cytokine receptors. β chain is also shared with the receptor for IL-2 and IL-15 34. The overlapping usage of the receptor subunits and the expression of the receptor in various cell types complicate the action of IL-2, and in consequence, the overall function of IL-2 has not yet been fully characterized 56.
– and β–deficient mice, both of which were demonstrated in 1995 89. A striking phenotype of these gene-targeted mice was the expansion of activated T cells and autoimmune-like disorders, which might be difficult to interpret with the previously identified function of the IL-2/IL-2R system. Some studies on IL-2–deficient mice and IL-2R
–deficient mice have introduced a possible mechanism to explain the abnormal expansion of activated T cells in these mice. It was reported earlier that IL-2 is necessary to induce activation-induced cell death of T cells 10. Based on this theory, activated T cells produced by stimulation with either self-antigens or nonself-antigens may not die, but survive long after IL-2 fails to function. Actually, T cells in IL-2–deficient mice and IL-2R
–deficient T cells were both shown to be resistant to Fas-mediated activation-induced cell death 1112. In contrast to IL-2– or IL-2R
–deficient mice, T cells in IL-2Rβ2/– mice were shown to be normal in superantigen-induced and Fas-mediated apoptosis 13. This discrepancy may simply be due to the involvement of other cytokines, including IL-15, which uses the IL-2Rβ for its receptor component. However, for a better explanation of abnormal expansion of activated T cells in these gene-targeted mice, one must consider another, more important underlying function of the IL-2/IL-2R systems.
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Materials and Methods
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Abstract
Materials and Methods
Results
Discussion
References
Mice.
IL-2Rβ2/– mice described previously 9 were maintained in our animal facility. All IL-2Rβ2/– mice used in this study had been back-crossed at least 10 times to C57BL/6 (B6) mice, providing a pure genetic background. These mice were further crossed with B6/CD45.1/CD45.1 congenic strain to make IL-2Rβ2/– mice with the CD45.1 allotype marker. B6 recombination activating gene (RAG)-2–/– (B6.RAG-2–/–) mice were provided by the Central Institute for Experimental Animals (Kawasaki, Japan) with the permission of Dr. F.W. Alt (Harvard Medical School, Boston, MA). B6lpr/lpr mice were purchased from Japan SLC, Inc. B6gld/gld mice were provided by Dr. K. Okumura (Juntendo University, Tokyo, Japan). TCR-β2/– mice were provided by Dr. Y. Yoshikai (Nagoya University). Lymphocytic choriomeningitis virus (LCMV)-specific TCR transgenic mice were provided by Dr. R. Zinkernagel (Institute of Experimental Immunology, University Hospital, Zürich, Switzerland) and mated with RAG-2–/– mice to generate TCR transgenic mice with RAG-2–/– background.
FITC-conjugated anti–mouse CD69 mAb (clone H1.2F3), PE-conjugated anti-CD62L antibody (clone MEL14), FITC- or biotin-conjugated anti-CD45.1 antibody (clone A20), FITC- or biotin-conjugated anti-CD45.2 antibody (clone 104), FITC- or PE-conjugated anti–Thy-1.2 antibody (clone 30-H12), PE-conjugated anti-B220 antibody (clone RA3-6B2), and FITC-conjugated anti–Gr-1 antibody (clone RB6-8C5) were purchased from PharMingen. FITC- or PE-conjugated anti-CD4 antibody (clone H129.19) and FITC- or PE-conjugated anti-CD8
antibody (clone 53-6.7) were purchased from Sigma Chemical Co. Cells were stained with antibodies for 20 min on ice, and analyzed using a FACSCaliburTM (Becton Dickinson). Biotin-conjugated antibodies were visualized by secondary staining with streptavidin-conjugated RED670 (GIBCO BRL).
Bone marrow cells were obtained by flushing out the femoral bone marrow of 3-wk-old mice. In a combination of bone marrow cell preparation, T cells were depleted by treatment with anti–Thy-1.2 antibody and rabbit complement (ICN Pharmaceuticals, Inc.). A total of 2 x 106 bone marrow cells were intravenously injected into an irradiated (9 Gy) B6.RAG-2–/– mouse.
Lymph node cells from IL-2Rβ2/– mice or spleen cells and lymph node cells from other types of mice were collected and passed through nylon wool columns. Some of the nylon wool–passed cells were analyzed before transfer. The remaining cells were either mixed or unmixed, and a total of 1–4 x 107 cells were injected intravenously to sublethally irradiated (4 Gy) B6.RAG-2–/– mice.
Spleen and lymph node cells were stained with biotin-conjugated anti-CD4 or anti-CD8 antibody, and secondarily incubated with streptavidin microbeads (MACS; Miltenyi Biotec). The following column work was performed according to the manufacturer's protocol (Miltenyi Biotec).
RNA was extracted from collected cells using RNAzol (Tel-Test), and cDNA was created using the RNA LA PCR kit (Takara). 30 cycles of PCR reaction were performed under the following conditions: 94°C, 30 s; 60°C, 30 s; 72°C, 90 s. PCR primers used in this study were as follows: 5' β-actin, TGG AAT CCT GTG GCA TCC ATG AAA C; 3' β-actin, TAA AAC GCA GCT CAG TAA CAG TCC G; 5' IL-2, TGA TGG ACC TAC AGG AGC TCC TGA G; 3' IL-2, GAG TCA AAT CCA GAA CAT GCC GCA G; 5' IL-4, CGA AGA ACA CCA CAG AGA GTC AGC T; 3' IL-4, GAC TCA TTC ATG GTG CAG CTT ATC G; 5' IFN-
, AGC GGC TGA CTG AAC TCA GAT TGT AG; 3' IFN-
, GTC ACA GTT TTC AGC TGT ATA GGG; 5' TNF-
, GGC AGG TCT ACT TTG GAG TCA TTG C; 3' TNF-
, ACA TTC GAG GCT CCA GTG AAT TCG G; 5' TNF-β, TGG CTG GGA ACA GGG GAA GGT TGA C; 3' TNF-β, CGT GCT TTC TTC TAG AAC CCC TTG G; 5' Fas ligand (FasL), GGT CAG CAC TGG TAA GAT TG; 3' FasL, GAG TTC ACC AAC CAA AGC CT; 5' granzyme B, GCC CAC AAC ATC AAA GAA CAG; 3' granzyme B, AAC CAG CCA CAT AGC ACA CAT; 5' perforin, GTC ACG TCG AAG TAC TTG GTG; and 3' perforin, AAC CAG CCA CAT AGC ACA CAT.
The statistical analysis was performed using StatView J-4.5 software.
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Results
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Abstract
Materials and Methods
Results
Discussion
References
IL-2Rβ–deficient T Cells in Bone Marrow Chimera Reconstituted with a Mixture of IL-2Rβ1/+ and IL-2Rβ2/– Cells Are Not Abnormally Activated.
To investigate the mechanism of abnormal development of multiple hematopoietic cells in IL-2Rβ2/– mice, we first examined bone marrow chimeric mice reconstituted with IL-2Rβ2/– bone marrow cells. When lymphocyte-deficient RAG-2–/– mice were reconstituted with IL-2Rβ2/– bone marrow cells, T cells arising from the transferred bone marrow cells later than 6 wk showed a markedly activated memory phenotype of CD69+CD62Llo (Fig. 1, IL-2Rβ2/– BM chimera), CD44hi, and CD45RBlo (data not shown), all of which were characteristic features of T cells in IL-2Rβ2/– mice (Fig. 1, IL-2Rβ2/– [9]). These mice also showed phenotypes of decreased B220+ cells in lymphatic organs, increased Gr-1+ cells in bone marrow, and anemia (data not shown), all of which were observed in IL-2Rβ2/– mice 9, indicating that most phenotypes caused by IL-2Rβ deficiency were restored by bone marrow reconstitution. However, when RAG-2–/– mice were reconstituted with a mixture of IL-2Rβ1/+ and IL-2Rβ2/– bone marrow cells, T cells arising from IL-2Rβ2/– bone marrow cells, which were distinguished from IL-2Rβ1/+–derived cells by CD45 allotype-specific antibody and were shown to exist with a number similar to that in simple IL-2Rβ2/– bone marrow chimera, showed no sign of activation (Fig. 1, IL-2Rβ1/+ + IL-2Rβ2/– BM chimera). B cells, granulocytes, and erythrocytes were also normal in these mice (data not shown), and inflammatory bowel disease was never observed. This result indicates that IL-2Rβ2/– T cells do not develop into an abnormally activated phenotype when they exist together with normal IL-2Rβ1/+ cells, which may have the activity to regulate the abnormal activation of IL-2Rβ2/– T cells.
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The CD4+/CD8+ ratio was also significantly different between IL-2Rβ1/+ and IL-2Rβ2/– cells (Table ). This difference was mainly caused by a decrease in the CD4+/CD8+ ratio in IL-2Rβ1/+ cells, because that ratio in mixed bone marrow chimeric mice was significantly lower than that in mice simply reconstituted with IL-2Rβ1/+ bone marrow (1.25 ± 0.29, n = 10 vs. 1.84 ± 0.22, n = 5; P < 0.01, unpaired two group t test), whereas the CD4+/CD8+ ratio of IL-2Rβ2/– cells in mixed bone marrow chimeric mice was similar to that in simple IL-2Rβ2/– bone marrow chimeric mice (2.68 ± 0.46, n = 10 vs. 2.74 ± 0.28, n = 5; P > 0.5). Therefore, an especially significant skewing of CD8+ T cells to IL-2Rβ1/+–derived cells was more likely to be due to an increase in IL-2Rβ1/+ CD8+ cells, rather than to a decrease in IL-2Rβ2/– CD8+ cells.
Functional T Cells Are Needed, but Fas/FasL Is Unnecessary for Regulation of IL-2Rβ2/– T Cells.
We performed the examination of mixed bone marrow chimera using some different types of mutant mice as partners for IL-2Rβ2/–. As shown in Fig. 2, when bone marrow cells of B6lpr/lpr mice which lacked the functional Fas molecule were mixed with IL-2Rβ2/–, the resulting IL-2Rβ2/– T cells were normal in their activation and memory phenotype. Functional FasL-deficient B6gld/gld cells also had the same effect on the regulation of IL-2Rβ2/– T cells. In contrast with these Fas/FasL mutant strains, when TCR-β2/– bone marrow cells were mixed with IL-2Rβ2/– and reconstituted the RAG-2–/– host, the resulting CD4+ or CD8+ T cells were all IL-2Rβ2/––derived, and showed a striking activated phenotype similar to those in IL-2Rβ2/– mice or simple IL-2Rβ2/– bone marrow chimeras (see Fig. 1). T cells in LCMV-specific TCR transgenic mice with RAG-2–/– background, which consequently express TCR molecules with a single specificity, showed no activity to regulate the activation of IL-2Rβ2/– T cells (Fig. 2, TCR tg (RAG-2–/–)). All of these chimeric mice were effectively reconstituted with each partner of bone marrow cells, because the percentages of mutant partner–derived T cells per total T cells were not significantly different from those of mice reconstituted with wild-type B6 and IL-2Rβ2/– bone marrow (P > 0.5 for every combination). Percentages of CD45.1– cells (partners for IL-2Rβ2/–) per total T cells recovered from mixed bone marrow chimera of each combination were 60.5 ± 15.3 (n = 5), 60.6 ± 10.5 (n = 4), 58.2 ± 10.0 (n = 4), 53.7 ± 5.1 (n = 3), for B6, B6lpr/lpr, B6gld/gld, and TCR transgenic, respectively, and that of CD45.1– cells per total B cells was 58.0 ± 11.5 (n = 3) for TCR-β2/–. These results indicated that functional T cells with an adequate TCR repertoire were required, but that Fas or FasL was unnecessary to regulate the abnormal activation of IL-2Rβ2/– T cells.
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, TNF-
, TNF-β, FasL, granzyme B, and perforin were analyzed by the reverse transcription PCR method. The expression in T cells recovered from mice transferred with IL-2Rβ2/– T cells was compared with that in T cells simply transferred without IL-2Rβ2/– T cells and recovered. As shown in Fig. 6 A, recovered T cells expressed all the genes tested, including TNF-
, TNF-β, FasL, granzyme B, and perforin. Among these, the expression levels of TNFs, especially TNF-β, were higher in cells transferred with IL-2Rβ2/– T cells (Fig. 6 B). These results indicated the possibility that normal T cells eliminated IL-2Rβ2/– T cells by using these molecules associated with T cell cytotoxic activity.
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–deficient mice have demonstrated some insights into the possible mechanism. T cells in IL-2–deficient mice were shown to be more resistant to apoptosis induced by reactivation or Fas triggering 11. IL-2R
–deficient T cells were also shown to be apoptosis resistant 1217. This failure of spontaneous death may be a possible mechanism explaining the expansion of abnormally activated T cells under the condition in which IL-2 or IL-2R never functions. However, studies on IL-2Rβ–deficient mice revealed that T cells in these mice were normally sensitive to Fas-mediated or superantigen-induced cell death 13. This finding indicated the existence of another essential mechanism causing the accumulation of abnormally activated T cells in IL-2Rβ–deficient mice. In this study, we have demonstrated by two different experimental systems that normal T cells regulate the abnormal activation of IL-2Rβ2/– T cells. Our experimental result of bone marrow transplantation appears to be a "prevention of abnormal activation," while that of T cell transfer seems more like an "elimination of already activated cells," possibly demonstrating that two different mechanisms are involved in regulating abnormal T cells. However, these two experiments showed some coincidental results: (a) lack of Fas or FasL molecules does not affect regulatory activity; (b) cells with transgenic TCR lack regulatory activity; and (c) CD8+ cells from IL-2Rβ1/+ mice are increased when they regulate IL-2Rβ2/– T cells. These coincidences may indicate that the two experimental systems reflected the same event, and it would only be logical to consider that a common mechanism worked to express two different-looking phenomena. Based on this assumption, the suppression of activation observed in bone marrow–transplanted mice could be maintained by continuous elimination of activated T cells. Depletion of T cells lacking IL-2Rβ, observed in the T cell transfer experiment, is not due to mere "general weakness" of those cells compared with normal IL-2Rβ1 T cells, because IL-2Rβ2/– T cells, although their number is slightly reduced, do coexist with IL-2Rβ1 T cells in the mixed bone marrow chimeric mice, and do not decrease when transferred with TCR transgenic T cells. Therefore, lack of IL-2Rβ itself cannot trigger the elimination; however, some sign of the activated state could do so.
Krämer et al. also performed a study of mixed bone marrow transplantation using IL-2–deficient mice, and found that IL-2–/––derived T cells did not develop into an abnormal state in mixed chimera containing 30% IL-2+ lymphocytes 18. Although their finding is similar to our observation in mixed bone marrow chimera of IL-2Rβ2/– and IL-2Rβ1 cells, it is unclear whether the same mechanism works for the normalization of mutant T cells in the mixed bone marrow transplantation system of IL-2–/–and that of IL-2Rβ2/–, because no information, such as the detailed distribution of the lymphocyte population in IL-2–/– mixed bone marrow chimera and the result of the mixed T cell transfer experiment for IL-2–/–, is provided. Furthermore, in the case of the IL-2–/– system, because IL-2 could be secreted from normal T cells and act on IL-2–/– T cells, it is impossible to identify whether the normalizing mechanism is a paracrine action of IL-2, or the regulatory activity of wild-type T cells. In our case, because IL-2 could never act on receptor-deficient T cells, a regulatory mechanism other than the action of IL-2 on the activated T cells must be working between normal T cells and IL-2Rβ–deficient T cells. By adding the system of the T cell transfer experiment, we have postulated the mechanism to be the elimination of activated T cells.
Recognition and Effector Molecules of the Regulatory T Cells.
The experiment using TCR transgenic mice showed a coincidental result in bone marrow transplantation and T cell transfer. T cells with transgenic TCR showed no activity to regulate activated IL-2Rβ2/– T cells. This result may indicate that
/β-type functional TCR is directly involved in the process of regulation and/or elimination as the recognition molecule on the regulatory T cells. However, it is also possible that T cells in TCR transgenic mice are functionally monotonous, and may not include the regulatory T cell population. A significant increase in Vβ12 TCR–using cells in CD8+ T cells that had eliminated IL-2Rβ2/– T cells in mixed T cell transferred mice (our unpublished observations) may indicate that CD8+ T cells bearing Vβ12 TCR are the key population responding to IL-2Rβ2/– T cells. However, the increase in Vβ12+ T cells is still small (control = 1.92 ± 0.10% vs. posttransfer = 3.20 ± 0.40%, n = 3; P < 0.01), suggesting that the responsible T cells are more likely to be multiclonal.
What molecules are involved in the process for the regulatory cells to recognize abnormally activated T cells remains an important question. They could be T cell activation–linked molecules potentially presented to the regulatory cells by the activated cells. IL-2Rβ2/– T cells express increased levels of many cytokines, including IL-2, IL-4, IL-10, IFN-
, TNF-
, and TGF-β (13; our unpublished observations), and cell surface molecules such as CD69 and CD44. These molecules could be working for recognition by the regulatory T cells.
The additional question arises as to what molecules are working in the effector phase. We performed an analysis of the expression of several genes which may possibly be involved in the effector phase of cytotoxic T cells 1920. A Fas–FasL deficiency causes expansion of T cells and autoimmune-like abnormalities, suggesting a possible involvement of this system in the regulation of activated T cells 21. Although FasL expression was clearly identified in the T cells eliminating IL-2Rβ2/– T cells (Fig. 6), our study proved that Fas and FasL interaction was not indispensable in the regulation and/or elimination of IL-2Rβ–deficient T cells (Fig. 5). Similarly, expression of TNFs, perforin, and granzyme B was observed, and the level of TNF-β expression was elevated in T cells eliminating IL-2Rβ2/– T cells. Mice lacking the activity of TNFs, perforin, or granzyme B molecules show no sign of an increase in activated T cells 222324, suggesting that the defect of a single molecule may be indecisive in the regulatory activity. Taken together, these molecules involved in the cytotoxic T cell function may compensate for one another, and IL-2Rβ may be the key molecule controlling the central function or development of cells using these molecules.
Cell Surface Phenotypes of Regulatory T Cells.
Our study indicated that CD8+ cells are more effective regulators against the activated IL-2Rβ2/– T cells. The regulatory cells found in this study may be related to the suppressor T cell subsets that have been described in previous reports. Both CD8+ and CD4+ subsets were reported to include suppressor T cells 252627, and the suppressor activity is sometimes related to Fas–FasL dependency 28. In our study, however, the regulatory activity is stronger in CD8+ cells than in CD4+ cells, and Fas–FasL independent. CD4+ cells alone are also sufficient to achieve the regulatory activity (Fig. 5), indicating the heterogeneity of the responsible cells. This elimination by CD4+ cells is not due to any minor contamination of CD8+ cells, <5% of which remain after purification with anti-CD8 antibody and MACS, because a small number of CD8+ T cells (one tenth of IL-2Rβ2/– cells) is not sufficient to eliminate IL-2Rβ2/– T cells (data not shown).
The "regulatory T cells" described in more recent studies seem to expand to both the CD4+ and CD8+ populations 29303132333435, indicating that a variety of cells perform the immunoregulatory activity. CD4+ regulatory cells described in several studies constitutively express CD25 (IL-2R
3637383940). These CD25+CD4+ regulatory cells suppress the IL-2 production from CD4+CD25– cells, and only respond to a high dose of IL-2. CD38+CD4+ regulatory cells proliferate when subject to TCR stimulation in the presence of IL-2 41. Although the cell surface phenotypes are varied, these findings of IL-2R expression and responsiveness to IL-2 may agree with our data, further indicating the importance of the IL-2/IL-2R system in the regulation of T cell activity. The importance of the regulatory T cells found in our analysis is that they have the activity to eliminate abnormally activated T cells. Such elimination activity has not been reported in the majority of previously described regulatory T cells, except CD8+ regulatory T cells, which were shown to eliminate activated Vβ8+CD4+ cells in a Qa-1–restricted manner 42. The elimination of activated IL-2Rβ2/– T cells may be related to cytotoxic activity, because such elimination is related to CD8+ population, and the eliminating cells express molecules related to the cytotoxic effector function. Further characterization and purification of the T cells regulating IL-2Rβ2/– cells by the in vitro culture system may establish the mechanism of this elimination process.
In this study, we investigated the relationship between IL-2Rβ2/– T cells and normal T cells, and found a mechanism by which normal T cells could regulate activated IL-2Rβ2/– T cells. We propose that IL-2Rβ is essential for the development of the regulatory TCR-
/β T cells that effectively eliminate activated T cells. Lack of such regulatory activity may result in an accumulation of activated T cells such as those observed in IL-2Rβ–deficient mice.
| Acknowledgments |
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This work was supported by grants from the Ministry of Science, Education, Sports and Culture of Japan; Nitto Industry Co.; and the Takeda Science Foundation.
Submitted: 29 April 1999
Revised: 22 July 1999
Accepted: 7 September 1999
| References |
|---|
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|
|---|
Smith K.A.. Interleukin-2inception, impact, and implications, Science., 240, 1988, 1169–1176.
Waldmann T.A.. The IL-2/IL-2 receptor systema target for rational immune intervention, Immunol. Today., 14, 1993, 264–270.[Medline]
Minami Y., Kono T., Miyazaki T. & Taniguchi T.. The IL-2 receptor complexits structure, function, and target genes, Annu. Rev. Immunol., 11, 1993, 245–268.[Medline]
Sugamura K., Asao H., Kondo M., Tanaka N., Ishii N., Nakamura M. & Takeshita T.. The common
-chain for multiple cytokine receptors, Adv. Immunol., 59, 1995, 225–277.[Medline]
Theze J., Alzari P.M. & Bertoglio J.. Interleukin 2 and its receptorsrecent advances and new immunological functions, Immunol. Today., 17, 1996, 481–486.[Medline]
Nelson B.H. & Willerford D.M.. Biology of the interleukin-2 receptor, Adv. Immunol., 70, 1998, 1–81.[Medline]
Schorle H., Holtschke T., Hünig T., Schimpl A. & Horak I.. Development and function of T cells in mice rendered interleukin-2 deficient by gene targeting, Nature., 352, 1991, 621–624.[Medline]
Willerford D.M., Chen J., Ferry J.A., Davidson L., Ma A. & Alt F.W.. Interleukin-2 receptor
chain regulates the size and content of the peripheral lymphoid compartment, Immunity., 3, 1995, 521–530.[Medline]
Suzuki H., Kündig T.M., Furlonger C., Wakeham A., Timms E., Matsuyama T., Schmits R., Simard J.J., Ohashi P.S. & Griesser H.. Deregulated T cell activation and autoimmunity in mice lacking interleukin-2 receptor β, Science., 268, 1995, 1472–1476.
Lenardo M.J.. Interleukin-2 programs mouse
β T lymphocytes for apoptosis, Nature., 353, 1991, 858–861.[Medline]
Kneitz B., Herrmann T., Yonehara S. & Schimpl A.. Normal clonal expansion but impaired Fas-mediated cell death and anergy induction in interleukin-2-deficient mice, Eur. J. Immunol., 25, 1995, 2572–2577.[Medline]
Van Parijs L., Biuckians A., Ibragimov A., Alt F.W. & Abbas A.K.. Functional responses and apoptosis of CD25 (IL-2R
)-deficient T cells expressing a transgenic antigen receptor, J. Immunol., 158, 1997, 3738–3745.[Abstract]
Suzuki H., Hayakawa A., Bouchard D., Nakashima I. & Mak T.W.. Normal thymic selection, superantigen-induced deletion and Fas-mediated apoptosis of T cells in IL-2 receptor β chain-deficient mice, Int. Immunol., 9, 1997, 1367–1374.
Sadlack B., Merz H., Schorle H., Schimpl A., Feller A.C. & Horak I.. Ulcerative colitis-like disease in mice with a disrupted interleukin-2 gene, Cell., 75, 1993, 253–261.[Medline]
Sadlack B., Kühn R., Schorle H., Rajewsky K., Müller W. & Horak I.. Development and proliferation of lymphocytes in mice deficient for both interleukins-2 and -4, Eur. J. Immunol., 24, 1994, 281–284.[Medline]
Sadlack B., Löhler J., Schorle H., Klebb G., Haber H., Sickel E., Noelle R.J. & Horak I.. Generalized autoimmune disease in interleukin-2-deficient mice is triggered by an uncontrolled activation and proliferation of CD4+ T cells, Eur. J. Immunol., 25, 1995, 3053–3059.[Medline]
Zheng L., Trageser C.L., Willerford D.M. & Lenardo M.J.. T cell growth cytokines cause the superinduction of molecules mediating antigen-induced T lymphocyte death, J. Immunol., 160, 1998, 763–769.
Krämer S., Schimpl A. & Hünig T.. Immunopathology of interleukin (IL) 2–deficient micethymus dependence and suppression by thymus-dependent cells with an intact IL-2 gene, J. Exp. Med., 182, 1995, 1769–1776.
Suda T., Okazaki T., Naito Y., Yokota T., Arai N., Ozaki S., Nakao K. & Nagata S.. Expression of the Fas ligand in cells of T cell lineage, J. Immunol., 154, 1995, 3806–3813.[Abstract]
Zheng L., Fisher G., Miller R.E., Peschon J., Lynch D.H. & Lenardo M.J.. Induction of apoptosis in mature T cells by tumour necrosis factor, Nature., 377, 1995, 348–351.[Medline]
Cohen P.L. & Eisenberg R.A.. Lpr and gldsingle gene models of systemic autoimmunity and lymphoproliferative disease, Annu. Rev. Immunol., 9, 1991, 243–269.[Medline]
Pfeffer K., Matsuyama T., Kündig T.M., Wakeham A., Kishihara K., Shahinian A., Wiegmann K., Ohashi P.S., Kronke M. & Mak T.W.. Mice deficient for the 55 kd tumor necrosis factor receptor are resistant to endotoxic shock, yet succumb to L. monocytogenes infection, Cell., 73, 1993, 457–467.[Medline]
Kagi D., Ledermann B., Burki K., Seiler P., Odermatt B., Olsen K.J., Podack E.R., Zinkernagel R.M. & Hengartner H.. Cytotoxicity mediated by T cells and natural killer cells is greatly impaired in perforin-deficient mice, Nature., 369, 1994, 31–37.[Medline]
Heusel J.W., Wesselschmidt R.L., Shresta S., Russell J.H. & Ley T.J.. Cytotoxic lymphocytes require granzyme B for the rapid induction of DNA fragmentation and apoptosis in allogeneic target cells, Cell., 76, 1994, 977–987.[Medline]
Rich R.R., elMasry M.N. & Fox E.J.. Human suppressor T cellsinduction, differentiation, and regulatory functions, Hum. Immunol., 17, 1986, 369–387.[Medline]
Tada T., Hu F.Y., Kishimoto H., Furutani-Seki M. & Asano Y.. Molecular events in the T cell-mediated suppression of the immune response, Ann. NY Acad. Sci., 636, 1991, 20–27.[Medline]
Tada T., Inoue T. & Asano Y.. Suppression of immune responses by cloned T cells and their products, Behring Inst. Mitt., 91, 1992, 78–86.[Medline]
Noble A., Pestano G.A. & Cantor H.. Suppression of immune responses by CD8 cells. I. Superantigen-activated CD8 cells induce unidirectional Fas-mediated apoptosis of antigen-activated CD4 cells, J. Immunol., 160, 1998, 559–565.
Groux H., O'Garra A., Bigler M., Rouleau M., Antonenko S., de Vries J.E. & Roncarolo M.G.. A CD4+ T-cell subset inhibits antigen-specific T-cell responses and prevents colitis, Nature., 389, 1997, 737–742.[Medline]
Kumar V. & Sercarz E.. Induction or protection from experimental autoimmune encephalomyelitis depends on the cytokine secretion profile of TCR peptide-specific regulatory CD4 T cells, J. Immunol., 161, 1998, 6585–6591.
Van de Keere F. & Tonegawa S.. CD4(+) T cells prevent spontaneous experimental autoimmune encephalomyelitis in anti–myelin basic protein T cell receptor transgenic mice, J. Exp. Med., 188, 1998, 1875–1882.
Seddon B. & Mason D.. Regulatory T cells in the control of autoimmunitythe essential role of transforming growth factor β and interleukin-4 in the prevention of autoimmune thyroiditis in rats by peripheral CD4(+)CD45RC– cells and CD4(+)CD8(–) thymocytes, J. Exp. Med., 189, 1999, 279–288.
Pauels H.G., Specht C., Becker C. & Kölsch E.. Suppression of tumour-specific cytotoxic T-cell responses against the syngeneic BALB/c plasmacytoma ADJ-PC-5 by tumour-induced CD8+ regulatory T cells via IFN-
, Scand. J. Immunol., 43, 1996, 421–430.[Medline]
Ciubotariu R., Colovai A.I., Pennesi G., Liu Z., Smith D., Berlocco P., Cortesini R. & Suciu-Foca N.. Specific suppression of human CD4+ Th cell responses to pig MHC antigens by CD8+CD28– regulatory T cells, J. Immunol., 161, 1998, 5193–5202.
Jiang H., Kashleva H., Xu L.X., Forman J., Flaherty L., Pernis B., Braunstein N.S. & Chess L.. T cell vaccination induces T cell receptor Vβ-specific Qa-1-restricted regulatory CD8(+) T cells, Proc. Natl. Acad. Sci. USA., 95, 1998, 4533–4537.
Asano M., Toda M., Sakaguchi N. & Sakaguchi S.. Autoimmune disease as a consequence of developmental abnormality of a T cell subpopulation, J. Exp. Med., 184, 1996, 387–396.
Suri-Payer E., Amar A.Z., Thornton A.M. & Shevach E.M.. CD4+CD25+ T cells inhibit both the induction and effector function of autoreactive T cells and represent a unique lineage of immunoregulatory cells, J. Immunol., 160, 1998, 1212–1218.
Thornton A. & Shevach E.. CD4+CD25+ immunoregulatory T cells suppress polyclonal T cell activation in vitro by inhibiting interleukin-2 production, J. Exp. Med., 188, 1998, 287–296.
Takahashi T., Kuniyasu Y., Toda M., Sakaguchi N., Itoh M., Iwata M., Shimizu J. & Sakaguchi S.. Immunologic self-tolerance maintained by CD25+CD4+ naturally anergic and suppressive T cellsinduction of autoimmune disease by breaking their anergic/suppressive state, Int. Immunol., 10, 1998, 1969–1980.
Itoh M., Takahashi T., Sakaguchi N., Kuniyasu Y., Shimizu J., Otsuka F. & Sakaguchi S.. Thymus and autoimmunityproduction of CD25+CD4+ naturally anergic and suppressive T cells as a key function of the thymus in maintaining immunologic self-tolerance, J. Immunol., 162, 1999, 5317–5326.
Read S., Mauze S., Asseman C., Bean A., Coffman R. & Powrie F.. CD38+ CD45RBlow CD4+ T cellsa population of T cells with immune regulatory activities in vitro, Eur. J. Immunol., 28, 1998, 3435–3447.[Medline]
Jiang H., Ware R., Stall A., Flaherty L., Chess L. & Pernis B.. Murine CD8+ T cells that specifically delete autologous CD4+ T cells expressing Vβ8 TCRa role of the Qa-1 molecule, Immunity., 2, 1995, 185–194.[Medline]
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