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Characterization of Monoclonal Antibodies against Human Leukocyte Common Antigen (CD45)

  • Shin, Hyang-Mi (Department of Pathology, Chungbuk National University College of Medicine) ;
  • Cho, Woon-Dong (Department of Pathology, Chungbuk National University College of Medicine) ;
  • Lee, Geon-Kook (Department of Pathology, Chungbuk National University College of Medicine) ;
  • Lee, Seon-Hwa (Department of Pathology, Chungbuk National University College of Medicine) ;
  • Lee, Kyung-Mee (Department of Pathology, Chungbuk National University College of Medicine) ;
  • Ji, Gil-Yong (Department of Pathology, Chungbuk National University College of Medicine) ;
  • Yoon, Sang-Soon (Research Institute of Dinona Inc.) ;
  • Koo, Ji-Hae (Department of Pathology, Chungbuk National University College of Medicine) ;
  • Lee, Ho-Chang (Department of Pathology, Chungbuk National University College of Medicine) ;
  • Lee, Ki-Hyeong (Department of Internal Medicine, Chungbuk National University College of Medicine) ;
  • Song, Hyung-Geun (Department of Pathology, Chungbuk National University College of Medicine)
  • 투고 : 2011.03.23
  • 심사 : 2011.04.05
  • 발행 : 2011.04.30

초록

Background: The leukocyte common antigen (CD45) is a transmembrane-type protein tyrosine phosphatase that has five isoforms. Methods: We generated seven murine mAbs against human CD45 by injecting cells from different origins, such as human thymocytes, PBMCs, and leukemic cell lines. By using various immunological methods including flow cytometry, immunohistochemistry, and immunoprecipitation, we evaluated the reactivity of those mAbs to CD45 of thymus as well as tonsil lysates. Furthermore, we transiently transfected COS-7 cells with each of gene constructs that express five human CD45 isoforms respectively, and examined the specificities of the mAbs against the transfected isoforms. Results: In case of thymocytes, lymphocytes, and monocytes, all the seven mAbs demonstrated positive reactivities whereas none was reactive to erythrocytes and platelets. The majority of immune cells in formalin-fixed paraffin-embedded thymus and tonsil tissues displayed strong membranous immunoreactivity, and the main antigen was detected near 220 kDa in all cases. Among the mAbs, four mAbs (AP4, DN11, SHL-1, and P6) recognized a region commonly present in all the five isoforms. One mAb, YG27, recognized four isoforms (ABC, AB, BC, and O). Two mAbs, P1 and P14, recognized the isoforms that contain exon A encoded regions (ABC and AB). Conclusion: In this study, we confirmed that AP4, DN11, SHL-1, YG27 and P6, are mAbs reactive with the CD45 antigen whereas P1 and P14 are reactive with the CD45RA antigen.

키워드

참고문헌

  1. Thomas ML: The leukocyte common antigen family. Annu Rev Immunol 7:339-369, 1989 https://doi.org/10.1146/annurev.iy.07.040189.002011
  2. Trowbridge IS, Thomas ML: CD45: an emerging role as a protein tyrosine phosphatase required for lymphocyte activation and development. Annu Rev Immunol 12;85-116, 1994 https://doi.org/10.1146/annurev.iy.12.040194.000505
  3. Omary MB, Trowbridge IS, Battifora HA: Human homologue of murine T200 glycoprotein. J Exp Med 152;842-852, 1980 https://doi.org/10.1084/jem.152.4.842
  4. Andersson LC, Karhi KK, Gahmberg CG, Rodt H: Molecular identification of T cell-specific antigens on human T lymphocytes and thymocytes. Eur J Immunol 10;359-362, 1980 https://doi.org/10.1002/eji.1830100508
  5. Dalchau R, Kirkley J, Fabre JW: Monoclonal antibody to a human leukocyte-specific membrane glycoprotein probably homologous to the leukocyte-common (L-C) antigen of the rat. Eur J Immunol 10;737-744, 1980 https://doi.org/10.1002/eji.1830101003
  6. Coffman RL, Weissman IL: B220: a B cell-specific member of th T200 glycoprotein family. Nature 289;681-683, 1981 https://doi.org/10.1038/289681a0
  7. Dalchau R, Fabre JW: Identification with a monoclonal antibody of a predominantly B lymphocyte-specific determinant of the human leukocyte common antigen. Evidence for structural and possible functional diversity of the human leukocyte common molecule. J Exp Med 153;753-765, 1981 https://doi.org/10.1084/jem.153.4.753
  8. Charbonneau H, Tonks NK, Walsh KA, Fischer EH: The leukocyte common antigen (CD45): a putative receptor- linked protein tyrosine phosphatase. Proc Natl Acad Sci U S A 85;7182-7186, 1988 https://doi.org/10.1073/pnas.85.19.7182
  9. Ralph SJ, Thomas ML, Morton CC, Trowbridge IS: Structural variants of human T200 glycoprotein (leukocyte-common antigen). EMBO J 6;1251-1257, 1987
  10. Streuli M, Hall LR, Saga Y, Schlossman SF, Saito H: Differential usage of three exons generates at least five different mRNAs encoding human leukocyte common antigens. J Exp Med 166;1548-1566, 1987 https://doi.org/10.1084/jem.166.5.1548
  11. Streuli M, Morimoto C, Schrieber M, Schlossman SF, Saito H: Characterization of CD45 and CD45R monoclonal antibodies using transfected mouse cell lines that express individual human leukocyte common antigens. J Immunol 141;3910-3914, 1988
  12. Hall LR, Streuli M, Schlossman SF, Saito H: Complete exon-intron organization of the human leukocyte common antigen (CD45) gene. J Immunol 141;2781-2787, 1988
  13. Munakata S, Hendricks JB: Effect of fixation time and microwave oven heating time on retrieval of the Ki-67 antigen from paraffin-embedded tissue. J Histochem Cytochem 41;1241-1246, 1993 https://doi.org/10.1177/41.8.8331288
  14. Shi SR, Key ME, Kalra KL: Antigen retrieval in formalin-fixed, paraffin-embedded tissues: an enhancement method for immunohistochemical staining based on microwave oven heating of tissue sections. J Histochem Cytochem 39;741-748, 1991 https://doi.org/10.1177/39.6.1709656
  15. Takebe Y, Seiki M, Fujisawa J, Hoy P, Yokota K, Arai K, Yoshida M, Arai N: SR alpha promoter: an efficient and versatile mammalian cDNA expression system composed of the simian virus 40 early promoter and the R-U5 segment of human T-cell leukemia virus type 1 long terminal repeat. Mol Cell Biol 8;466-472, 1988 https://doi.org/10.1128/MCB.8.1.466
  16. Schurmann A, Monden I, Joost HG, Keller K: Subcellular distribution and activity of glucose transporter isoforms GLUT1 and GLUT4 transiently expressed in COS-7 cells. Biochim Biophys Acta 1131;245-252, 1992 https://doi.org/10.1016/0167-4781(92)90022-R
  17. Stephen S, Gale G, Luce, Walter R: Leukocyte differentiation antigen database. Leukocyte Typing V 1;99-102, 1995
  18. Trowbridge IS: CD45. A prototype for transmembrane protein tyrosine phosphatases. J Biol Chem 266;23517-23520, 1991
  19. Justement LB, Brown VK, Lin J: Regulation of B-cell activation by CD45: a question of mechanism. Immunol Today 15;399-406, 1994 https://doi.org/10.1016/0167-5699(94)90268-2
  20. Kishihara K, Penninger J, Wallace VA, Kundig TM, Kawai K, Wakeham A, Timms E, Pfeffer K, Ohashi PS, Thomas ML, Furlonger C, Paige CJ, Mak TW: Normal B lymphocyte development but impaired T cell maturation in CD45-exon6 protein tyrosine phosphatase-deficient mice. Cell 74;143-156, 1993 https://doi.org/10.1016/0092-8674(93)90302-7
  21. Byth KF, Conroy LA, Howlett S, Smith AJ, May J, Alexander DR, Holmes N: CD45-null transgenic mice reveal a positive regulatory role for CD45 in early thymocyte development, in the selection of CD4+CD8+ thymocytes, and B cell maturation. J Exp Med 183;1707-1718, 1996 https://doi.org/10.1084/jem.183.4.1707
  22. Hermiston ML, Xu Z, Weiss A: CD45: a critical regulator of signaling thresholds in immune cells. Annu Rev Immunol 21;107-137, 2003 https://doi.org/10.1146/annurev.immunol.21.120601.140946
  23. Gregori S, Mangia P, Bacchetta R, Tresoldi E, Kolbinger F, Traversari C, Carballido JM, de Vries JE, Korthauer U, Roncarolo MG: An anti-CD45RO/RB monoclonal antibody modulates T cell responses via induction of apoptosis and generation of regulatory T cells. J Exp Med 201;1293-1305, 2005 https://doi.org/10.1084/jem.20040912
  24. Chen G, Luke PP, Yang H, Visser L, Sun H, Garcia B, Qian H, Xiang Y, Huang X, Liu W, Senaldi G, Schneider A, Poppema S, Wang H, Jevnikar AM, Zhong R: Anti-CD45RB monoclonal antibody prolongs renal allograft survival in cynomolgus monkeys. Am J Transplant 7;27-37, 2007 https://doi.org/10.1111/j.1600-6143.2006.01598.x
  25. Jung DH, Margulies DH: The development of NKT cells in thymus is defective in CD45 knockout mice. Korean J Immunol 22;117-121, 2000

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