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Aguilar, L. K., Aguilar-Cordova, E., Cartwright, J. and Belmont, J. W (1994). Thymic nurse cells are sites of thymocyte apoptosis. J. Immunol 152, 2645-2651.[Abstract]

Anderson, G., Moore, N. C., Owen, J. J. T. and Jenkinson, E. J (1996). Cellular interactions in the thymocyte development. Annu. Rev. Immunol 14, 73-99.[Medline]

Anderson, G., Partington, K. M. and Jenkinson, E. J (1998). Differential effects of peptide diversity and stromal cell type in positive and negative selection in the thymus. J. Immunol 15, 6599-6603.

Ashton-Rickardt, P. G. and Tonegawa, S (1994). A differential-avidity model for T cell selection. Immunol. Today 15, 362-366.[Medline]

Auerbach, R (1960). Morphogenetic interactions in the development of the mouse thymus gland. Dev. Biol 2, 271-284.[Medline]

Bevan, M. J (1997). In thymic selection, peptide diversity gives and takes away. Immunity 7, 175-178.[Medline]

Blackburn, C. C., Augustine, C. L., Li, R., Harvey, R. P., Malin, M. A., Boyd, R. L., Miller, J. F. A. P. and Morahan, G (1996). The nude gene acts cell autonomously and is required for differentiation of thymic epithelial progenitors. Proc. Natl. Acad. Sci. USA 93, 5742-5746.[Abstract/Free Full Text]

Bockman, D. E. and Kirby, M. L (1984). Dependance of thymus development on derivatives of the neural crest. Science 223, 498-500.[Abstract/Free Full Text]

Boehm, T., Nehls, M. and Kyewski, B (1995). Two genetically separable steps in the differentiation of thymic epithelium. Immunol. Today 16, 555-556.[Medline]

Boyd, R. L., Tucek, C. L., Godfrey, I. D., Izon, D. J., Wilson, T. J., Davidson, N. J., Bean, A. G. D., Ladyman, H. M., Ritter, M. A. and Hugo, P (1993). The thymic microenvironment. Immunol. Today 14, 445-459.[Medline]

Brelinska, R. and Warchol, J. B (1997). Thymic nurse cells: their functional ultrastructure. Microsc. Res. Tech 38, 250-266.[Medline]

Cadigan, K. M. and Nusse, R (1997). Wnt signalling: a common theme in animal development. Genes Dev 15, 3286-3305.

Coffman, R. C. and Weissman, I. L (1981). A monoclonal antibody that recognizes B cells and B cell precursors in mice. J. Exp. Med 153, 269-279.[Abstract/Free Full Text]

de Koning, J., Molfetto, L. di, Reilly, C., Wei, Q., Havran, W. L. and Lo, D. L (1997). Thymic cortical epithelium is sufficient for the development of mature T cells in RelB-deficient mice. J. Immunol 158, 2558-2566.[Abstract]

Fairchild, P. J. and Austin J. M (1995). Developmental changes predispose the fetal thymus to positive selection of CD4+CD8T cells. Immunology 85, 292-298.[Medline]

Fehling H. J. and von Boehmer, H (1997). EarlyT cell development in the thymus of normal and genetically altered mice. Curr. Opin. Immunol 9, 263-275.[Medline]

Frederickson, G. G. and Basch, R. S (1989). L3T4 antigen expression by hemopoietic precursor cells. J. Exp. Med 169, 1473-1478.[Abstract/Free Full Text]

Gao, X., Nishimura, T., Takeuchi, Y., Sudo, T. and Habu, S (1993). Thymic nurse cell clone supports the differentiation of CD48 thymocytes into CD4+8+ thymocytes in vitro. Immunol. Lett 35, 169-175.[Medline]

Hirokawa, K., Utsuyama, M., Kasai, M., Kurashima, C., Ishijima, S. and Zeng, Y., X (1994). Understanding the mechanism of the age-change of thymic function to promote T cell differentiation. Immunol. Lett 40, 269-277.[Medline]

Holl\212nder, G. A., Wang, B., Nichogiannopoulou, A., Platenburg, P. P., van Ewijk, W., Burakoff, S. J., Gutierrez-Ramos, J.-C. and Terhorst, C (1995). Developmental control point in induction of thymic cortex regulated by a subpopulation of prothymocytes. Nature 373, 350-353.[Medline]

J., Bhan, A., Burakoff, S. J., Wang, B. and Terhorst, C (1995). Severe colitis resulting from aberrant thymic selection. Immunity 3, 27-39.[Medline]

Itoi, M. and Amagai, T (1998). Role of fibroblastic cell lines in development of the mouse thymus anlage in organ culture. Cell. Immunol 183, 32-41.[Medline]

Jameson, S. C. and Bevan, M. J (1998). T cell selection. Curr. Opin. Immunol 10, 214-219.[Medline]

Klug, D. B., Carter, C., Crouch, E., Roop, D., Conti, C. J. and Richie, E. R (1998). Interdependence of cortical thymic epithelial cell differentiation and T lineage commitment. Proc. Natl. Acad. Sci. USA 95, 11822-11827.[Abstract/Free Full Text]

Kubo, R. T., Born, W., Kappler, J. W., Marrack, P. and Pigeon, M (1989). ). Characterization of a monoclonal antibody which detects all murine alpha-beta T cell receptors. J. Immunol 142, 2736-2742.[Abstract]

Kyewski, B. A., Momberg, F. and Schirrmacher, V (1987). Phenotype of stromal cell-associated thymocytes in situ is compatible with selection of the T cell repertoire at an \324immature' stage of thymic T cell differentiation. Eur. J. Immunol 17, 961-967.[Medline]

Laufer, T., Glimcher, L. H. and Lo, D. L (1999). Using thymus anatomy to dissect T cell repertoire selection. Sem. Immunol 11, 65-70.[Medline]

Ledbetter, J. A. and Herzenberg, L. A (1979). Xenogeneic monoclonal antibodies to mouse lymphoid differentiation antigens. Immunol. Rev 47, 63-90.[Medline]

Leo, O., Foo, M., Sachs, D. H., Samilson, L. E. and Bluestone, J. A (1987). Identification of a monoclonal antibody specific for murine T3 polypeptide. Proc. Natl. Acad. Sci. USA 84, 1374-1378.[Abstract/Free Full Text]

Lesley, J. and Trowbridge, I. S (1982). Characterization of a polymorphic murine cell-surface glycoprotein. Immunogenetics 15, 313-320.[Medline]

Lo, D. L., Reilly, C. R., Burkly, L. C., de Koning, J., Laufer, T. M. and Glimcher, L. H (1997). Thymic stromal cell specialization and the T cell receptor. Immunol. Res 16, 3-14.[Medline]

Malek, T. R., Robb, R. J. and Shevach, E. M (1983). Identification and initial characterization of a rat monoclonal antibody reactive with the murine interleukin 2 receptor-ligand complex. Proc. Natl. Acad. Sci. USA 80, 5694-5698.[Abstract/Free Full Text]

Manley, N. R. and Capecchi, M. R (1995). The role of Hoxa-3 in mouse thymus and thyroid development. Development 121, 1989-2003.[Abstract]

Nehls, M., Kyewski, B., Messerle, M., Waldschutz, R., Schuddekopf, K., Smith, A. J. H. and Boehm, T (1996). Two genetically separable steps in the differentiation of thymic epithelium. Science 272, 886-889.[Abstract]

Owen, J. J. T. and Jenkinson, E. J (1984). Early events in T lymphocyte genesis in the fetal thymus. Am. J. Anat 170, 301-310.[Medline]

Penit, C., Lucas, B., Vasseur, F., Rieker, T. and Boyd, R. L (1996). Thymic medulla epithelial cells acquire specific markers by post mitotic maturation. Dev. Immunol 5, 25-36.[Medline]

Pezzano, M., Philp, D., Stephenson, S., Li, Y., Reid, V., Maitta, R. and Guyden, J. C (1996). Positive selection by thymic nurse cells requires IL1-beta and is associated with an increased Bcl-2 expression. Cell. Immunol 169, 174-184.[Medline]

R\232pke, C., Soest, P., van Platenburg, P. P. and van Ewijk, W (1995). A common stem cell for murine cortical and medullary thymic epithelial cells. Dev. Immunol 4, 149-156.[Medline]

Sieckmann, D (1984). A monoclonal mouse antibody that recognizes a mouse IgM allotypic determinant (Igh-6. 1). Federation Proceedings 43, 488-.

Sprent, J., Lo, D. L., Gao, E. K. and Ron, Y (1988). T cell selection in the thymus. Immunol. Rev 101, 173-190.[Medline]

Takeoka, Y., Chen S. Y., Yago, H., Boyd, R. L., Suehiro, S., Schultz, L. D, Ansari A. A. and Gershwin, M. E (1996). The murine thymic microenvironment: changes with age. Int. Arch. All. Immunol 111, 5-12.[Medline]

Takoro, Y., Sugawara, T., Yaginuma, H., Nakauchi, H., Terhorst, C., Wang, B. and Takahama, Y (1998). A mouse carrying a genetic defectinthe choice between T and B lymphocytes. J. Immunol 161, 4591-4598.[Abstract/Free Full Text]

Unkeless, J. C (1979). Characterization of a monoclonal antibody directed against mouse macrophage and lymphocyte receptors. J. Exp. Med 150, 580-596.[Abstract/Free Full Text]

van Ewijk, W (1988). Cell surface topography of thymic microenvironments. Lab. Invest 59, 579-590.[Medline]

van Ewijk, W (1991). T-cell differentiation is influenced by thymic microenvironments. Annu. Rev. Immunol 9, 591-615.[Medline]

van Ewijk, W., Shores, E. W. and Singer, A (1994). Crosstalk in the mouse thymus. Immunol. Today 15, 214-217.[Medline]

van Ewijk, W., Wang, B. P., Holl\212nder, G., Kawamoto, H., Spanopoulou, E., Itoi, M., Amagai, T., Jiang, Y., Germeraad, W. T. V., Chen, W. F. and Katsura, Y (1999). Thymic microenvironments, 2-D versus 3-D?. Sem. Immunol 11, 57-64.[Medline]

van Vliet, E., Jenkinson, E. J., Kingston, R., Owen, J. J. T. and van Ewijk, W (1985). Stromal cell types in the developing thymus of the normal and nude mouse embryo. Eur. J. Immunol 15, 675-681.[Medline]

van Vliet, E., Melis M. and van Ewijk, W (1984). Monoclonal antibodiesto stromal cell types of the mouse thymus. Eur. J. Immunol 14, 524-529.[Medline]

Wallin, J., Eibel, H., Neubuser, A., Willing, J., Koseki, H. and Balling, R (1996). Pax-1 is expressed during development of the thymus epithelium and is required for normal T cell maturation. Development 122, 22-30.

Wang, B., Biron, C., She, J., Higgins, K., Sunshine, MJ., Lacy, E., Lonberg, N. and Terhorst, C (1994). A block in both early T lymphocyte and natural killer cell development in transgenic mice with high copy numbers of the human CD3gene. Proc. Natl. Acad. Sci. USA 91, 9402-9406.[Abstract/Free Full Text]

Wang, B., Levelt, C., Salio, M., Zheng, D., Sancho, J., Liu, C. P., She, J., Huang, M., Higgins, K., Sunshine, M. J., Eichmann, K., Lacy, E., Lonberg, N. and Terhorst, C (1995). Over-expression of CD3transgenes blocks T lymphocyte development. Int. Immunol 7, 435-448.[Abstract/Free Full Text]

Wekerle, H., Ketelsen, U.-P. and Ernst, M (1980). Thymic nurse cells: Lymphoepithelial cell complexes in murine thymuses. Morphological and serological characterization. J. Exp. Med 151, 925-944.[Abstract/Free Full Text]


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