This Article
Right arrow Full Text
Right arrow Full Text (PDF)
Right arrow Alert me when this article is cited
Right arrow Alert me if a correction is posted
Services
Right arrow Similar articles in this journal
Right arrow Similar articles in PubMed
Right arrow Alert me to new issues of the journal
Right arrow Download to citation manager
Right arrowReprints and Permissions
Right arrow Copyright Information
Right arrow Books from ASM Press
Right arrow MicrobeWorld
Citing Articles
Right arrow Citing Articles via HighWire
Right arrow Citing Articles via Google Scholar
Google Scholar
Right arrow Articles by Cooper, L. J. N.
Right arrow Articles by Greenberg, P. D.
Right arrow Search for Related Content
PubMed
Right arrow PubMed Citation
Right arrow Articles by Cooper, L. J. N.
Right arrow Articles by Greenberg, P. D.

 Previous Article  |  Next Article 

Journal of Virology, September 2000, p. 8207-8212, Vol. 74, No. 17
0022-538X/00/$04.00+0
Copyright © 2000, American Society for Microbiology. All rights reserved.

Transfer of Specificity for Human Immunodeficiency Virus Type 1 into Primary Human T Lymphocytes by Introduction of T-Cell Receptor Genes

Laurence J. N. Cooper,1,2,* Michael Kalos,1,dagger Deborah A. Lewinsohn,1,Dagger Stanley R. Riddell,1,3 and Philip D. Greenberg1,3

Program in Immunology, Fred Hutchinson Cancer Research Center,1 and Department of Pediatric Hematology and Oncology2 and Departments of Immunology and Medicine,3 University of Washington, Seattle, Washington

Received 22 February 2000/Accepted 7 June 2000

The introduction of genes encoding T-cell receptor (TCR) chains specific for human immunodeficiency virus into T cells of infected patients represents a means to quantitatively and qualitatively improve immunity to the virus. Our results demonstrate that the high level of TCR expression required for physiologic functioning can be reproducibly achieved with retroviral vectors encoding full-length unmodified TCR chains under the control of a strong internal constitutive phosphoglycerate kinase promoter.


* Corresponding author. Mailing address: Fred Hutchinson Cancer Research Center, D3-100, 1100 Fairview Ave. North, P.O. Box 19024, Seattle, WA 98109-1024. Phone: (206) 667-3428. Fax: (206) 667-7983. E-mail: lcooper{at}fhcrc.org.

dagger Present address: Corixa Corporation, Seattle, WA 98104.

Dagger Present address: Department of Pediatrics, Oregon Health Sciences University, Portland, OR 97201.


Journal of Virology, September 2000, p. 8207-8212, Vol. 74, No. 17
0022-538X/00/$04.00+0
Copyright © 2000, American Society for Microbiology. All rights reserved.



This article has been cited by other articles:

  • van Loenen, M. M., Hagedoorn, R. S., Kester, M. G.D., Hoogeboom, M., Willemze, R., Falkenburg, J.H. F., Heemskerk, M. H.M. (2009). Kinetic Preservation of Dual Specificity of Coprogrammed Minor Histocompatibility Antigen-Reactive Virus-Specific T Cells. Cancer Res. 69: 2034-2041 [Abstract] [Full Text]  
  • van der Veken, L. T., Coccoris, M., Swart, E., Falkenburg, J. H. F., Schumacher, T. N., Heemskerk, M. H. M. (2009). {alpha}{beta} T Cell Receptor Transfer to {gamma}{delta} T Cells Generates Functional Effector Cells without Mixed TCR Dimers In Vivo. J. Immunol. 182: 164-170 [Abstract] [Full Text]  
  • Sebestyen, Z., Schooten, E., Sals, T., Zaldivar, I., San Jose, E., Alarcon, B., Bobisse, S., Rosato, A., Szollosi, J., Gratama, J. W., Willemsen, R. A., Debets, R. (2008). Human TCR That Incorporate CD3{zeta} Induce Highly Preferred Pairing between TCR{alpha} and {beta} Chains following Gene Transfer. J. Immunol. 180: 7736-7746 [Abstract] [Full Text]  
  • Joseph, A., Zheng, J. H., Follenzi, A., DiLorenzo, T., Sango, K., Hyman, J., Chen, K., Piechocka-Trocha, A., Brander, C., Hooijberg, E., Vignali, D. A., Walker, B. D., Goldstein, H. (2008). Lentiviral Vectors Encoding Human Immunodeficiency Virus Type 1 (HIV-1)-Specific T-Cell Receptor Genes Efficiently Convert Peripheral Blood CD8 T Lymphocytes into Cytotoxic T Lymphocytes with Potent In Vitro and In Vivo HIV-1-Specific Inhibitory Activity. J. Virol. 82: 3078-3089 [Abstract] [Full Text]  
  • Jorritsma, A., Gomez-Eerland, R., Dokter, M., van de Kasteele, W., Zoet, Y. M., Doxiadis, I. I. N., Rufer, N., Romero, P., Morgan, R. A., Schumacher, T. N. M., Haanen, J. B. A. G. (2007). Selecting highly affine and well-expressed TCRs for gene therapy of melanoma. Blood 110: 3564-3572 [Abstract] [Full Text]  
  • Thomas, S., Xue, S.-A., Cesco-Gaspere, M., San Jose, E., Hart, D. P., Wong, V., Debets, R., Alarcon, B., Morris, E., Stauss, H. J. (2007). Targeting the Wilms Tumor Antigen 1 by TCR Gene Transfer: TCR Variants Improve Tetramer Binding but Not the Function of Gene Modified Human T Cells. J. Immunol. 179: 5803-5810 [Abstract] [Full Text]  
  • Yang, W, Beaudoin, E., Lu, L, Du Pasquier, R., Kuroda, M., Willemsen, R., Koralnik, I., Junghans, R. (2007). Chimeric immune receptors (CIRs) specific to JC virus for immunotherapy in progressive multifocal leukoencephalopathy (PML). Int Immunol 19: 1083-1093 [Abstract] [Full Text]  
  • Kuball, J., Dossett, M. L., Wolfl, M., Ho, W. Y., Voss, R.-H., Fowler, C., Greenberg, P. D. (2007). Facilitating matched pairing and expression of TCR chains introduced into human T cells. Blood 109: 2331-2338 [Abstract] [Full Text]  
  • de Witte, M. A., Coccoris, M., Wolkers, M. C., van den Boom, M. D., Mesman, E. M., Song, J.-Y., van der Valk, M., Haanen, J. B. A. G., Schumacher, T. N. M. (2006). Targeting self-antigens through allogeneic TCR gene transfer. Blood 108: 870-877 [Abstract] [Full Text]  
  • Lichterfeld, M., Williams, K. L., Mui, S. K., Shah, S. S., Mothe, B. R., Sette, A., Kim, A., Johnston, M. N., Burgett, N., Frahm, N., Cohen, D., Brander, C., Rosenberg, E. S., Walker, B. D., Altfeld, M., Yu, X. G. (2006). T cell receptor cross-recognition of an HIV-1 CD8+ T cell epitope presented by closely related alleles from the HLA-A3 superfamily. Int Immunol 18: 1179-1188 [Abstract] [Full Text]  
  • Schaft, N., Lankiewicz, B., Drexhage, J., Berrevoets, C., Moss, D. J., Levitsky, V., Bonneville, M., Lee, S. P., McMichael, A. J., Gratama, J.-W., Bolhuis, R. L. H., Willemsen, R., Debets, R. (2006). T cell re-targeting to EBV antigens following TCR gene transfer: CD28-containing receptors mediate enhanced antigen-specific IFN{gamma} production. Int Immunol 18: 591-601 [Abstract] [Full Text]  
  • Serrano, L. M., Pfeiffer, T., Olivares, S., Numbenjapon, T., Bennitt, J., Kim, D., Smith, D., McNamara, G., Al-Kadhimi, Z., Rosenthal, J., Forman, S. J., Jensen, M. C., Cooper, L. J. N. (2006). Differentiation of naive cord-blood T cells into CD19-specific cytolytic effectors for posttransplantation adoptive immunotherapy. Blood 107: 2643-2652 [Abstract] [Full Text]  
  • van der Veken, L. T., Hagedoorn, R. S., van Loenen, M. M., Willemze, R., Falkenburg, J.H. F., Heemskerk, M. H.M. (2006). {alpha}{beta} T-Cell Receptor Engineered {gamma}{delta} T Cells Mediate Effective Antileukemic Reactivity.. Cancer Res. 66: 3331-3337 [Abstract] [Full Text]  
  • Xue, S.-A., Gao, L., Hart, D., Gillmore, R., Qasim, W., Thrasher, A., Apperley, J., Engels, B., Uckert, W., Morris, E., Stauss, H. (2005). Elimination of human leukemia cells in NOD/SCID mice by WT1-TCR gene-transduced human T cells. Blood 106: 3062-3067 [Abstract] [Full Text]  
  • Willemsen, R. A., Ronteltap, C., Chames, P., Debets, R., Bolhuis, R. L. H. (2005). T Cell Retargeting with MHC Class I-Restricted Antibodies: The CD28 Costimulatory Domain Enhances Antigen-Specific Cytotoxicity and Cytokine Production. J. Immunol. 174: 7853-7858 [Abstract] [Full Text]  
  • Morris, E. C., Tsallios, A., Bendle, G. M., Xue, S.-a., Stauss, H. J. (2005). A critical role of T cell antigen receptor-transduced MHC class I-restricted helper T cells in tumor protection. Proc. Natl. Acad. Sci. USA 102: 7934-7939 [Abstract] [Full Text]  
  • Heemskerk, M. H. M., Hoogeboom, M., de Paus, R. A., Kester, M. G. D., van der Hoorn, M. A. W. G., Goulmy, E., Willemze, R., Falkenburg, J. H. F. (2003). Redirection of antileukemic reactivity of peripheral T lymphocytes using gene transfer of minor histocompatibility antigen HA-2-specific T-cell receptor complexes expressing a conserved alpha joining region. Blood 102: 3530-3540 [Abstract] [Full Text]  
  • Tahara, H., Fujio, K., Araki, Y., Setoguchi, K., Misaki, Y., Kitamura, T., Yamamoto, K. (2003). Reconstitution of CD8+ T Cells by Retroviral Transfer of the TCR {alpha}{beta}-Chain Genes Isolated from a Clonally Expanded P815-Infiltrating Lymphocyte. J. Immunol. 171: 2154-2160 [Abstract] [Full Text]  
  • Roszkowski, J. J., Yu, D. C., Rubinstein, M. P., McKee, M. D., Cole, D. J., Nishimura, M. I. (2003). CD8-Independent Tumor Cell Recognition Is a Property of the T Cell Receptor and Not the T Cell. J. Immunol. 170: 2582-2589 [Abstract] [Full Text]  
  • Schaft, N., Willemsen, R. A., de Vries, J., Lankiewicz, B., Essers, B. W. L., Gratama, J.-W., Figdor, C. G., Bolhuis, R. L. H., Debets, R., Adema, G. J. (2003). Peptide Fine Specificity of Anti-Glycoprotein 100 CTL Is Preserved Following Transfer of Engineered TCR{alpha}{beta} Genes Into Primary Human T Lymphocytes. J. Immunol. 170: 2186-2194 [Abstract] [Full Text]  
  • Rubinstein, M. P., Kadima, A. N., Salem, M. L., Nguyen, C. L., Gillanders, W. E., Nishimura, M. I., Cole, D. J. (2003). Transfer of TCR Genes into Mature T Cells Is Accompanied by the Maintenance of Parental T Cell Avidity. J. Immunol. 170: 1209-1217 [Abstract] [Full Text]  
  • Ueno, T., Tomiyama, H., Takiguchi, M. (2002). Single T Cell Receptor-Mediated Recognition of an Identical HIV-Derived Peptide Presented by Multiple HLA Class I Molecules. J. Immunol. 169: 4961-4969 [Abstract] [Full Text]  
  • Yang, L., Qin, X.-F., Baltimore, D., Van Parijs, L. (2002). Generation of functional antigen-specific T cells in defined genetic backgrounds by retrovirus-mediated expression of TCR cDNAs in hematopoietic precursor cells. Proc. Natl. Acad. Sci. USA 99: 6204-6209 [Abstract] [Full Text]  
  • Brawley, J. V., Concannon, P. (2002). Complementarity-Determining Region 1 Sequence Requirements Drive Limited V{alpha} Usage in Response to Influenza Hemagglutinin 307-319 Peptide. J. Immunol. 168: 3894-3901 [Abstract] [Full Text]