Efficient gene transfer into human primary blood lymphocytes by surface-engineered lentiviral vectors that display a T cell-activating polypeptide.
暂无分享,去创建一个
F. Cosset | D. Trono | S. Russell | E. Verhoeyen | M. Maurice | P. Salmon
[1] N. Taylor,et al. IL-7 differentially regulates cell cycle progression and HIV-1-based vector infection in neonatal and adult CD4+ T cells , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[2] Y. Ikeda,et al. Postentry Restriction to Human Immunodeficiency Virus-Based Vector Transduction in Human Monocytes , 2001, Journal of Virology.
[3] F. Wong-Staal,et al. Approaches to gene therapy for human immunodeficiency virus infection. , 2001, Human gene therapy.
[4] Nancy Dumais,et al. Attachment of Human Immunodeficiency Virus-1 (HIV-1) Particles Bearing Host-encoded B7-2 Proteins Leads to Nuclear Factor-κB- and Nuclear Factor of Activated T Cells-dependent Activation of HIV-1 Long Terminal Repeat Transcription* , 2001, The Journal of Biological Chemistry.
[5] L. Geiselhart,et al. IL-7 Administration Alters the CD4:CD8 Ratio, Increases T Cell Numbers, and Increases T Cell Function in the Absence of Activation1 , 2001, The Journal of Immunology.
[6] N. Taylor,et al. Lentivirus-mediated gene transfer in primary T cells is enhanced by a central DNA flap , 2001, Gene Therapy.
[7] W. Vainchenker,et al. The human immunodeficiency virus type-1 central DNA flap is a crucial determinant for lentiviral vector nuclear import and gene transduction of human hematopoietic stem cells. , 2000, Blood.
[8] D. Trono,et al. High-level transgene expression in human hematopoietic progenitors and differentiated blood lineages after transduction with improved lentiviral vectors. , 2000, Blood.
[9] L. Naldini,et al. Lentiviral vectors: excellent tools for experimental gene transfer and promising candidates for gene therapy , 2000, The journal of gene medicine.
[10] R. Morgan,et al. Lentiviral-mediated gene transfer into human lymphocytes: role of HIV-1 accessory proteins. , 2000, Blood.
[11] N. Taylor,et al. Highly efficient gene transfer in naive human T cells with a murine leukemia virus-based vector. , 2000, Blood.
[12] L. Ailles,et al. Gene transfer by lentiviral vectors is limited by nuclear translocation and rescued by HIV-1 pol sequences , 2000, Nature Genetics.
[13] E. Robinet,et al. Retrovirus-mediated gene transfer in primary T lymphocytes: influence of the transduction/selection process and of ex vivo expansion on the T cell receptor beta chain hypervariable region repertoire. , 2000, Human gene therapy.
[14] Luc Montagnier,et al. HIV-1 Genome Nuclear Import Is Mediated by a Central DNA Flap , 2000, Cell.
[15] Eithne Costello,et al. Gene transfer into stimulated and unstimulated T lymphocytes by HIV-1-derived lentiviral vectors , 2000, Gene Therapy.
[16] D. Klatzmann,et al. Ganciclovir-sensitive acute graft-versus-host disease in mice receiving herpes simplex virus-thymidine kinase-expressing donor T cells in a bone marrow transplantation setting. , 2000, Transplantation.
[17] H. Schuitemaker,et al. Diminished Human Immunodeficiency Virus Type 1 Reverse Transcription and Nuclear Transport in Primary Macrophages Arrested in Early G1 Phase of the Cell Cycle , 2000, Journal of Virology.
[18] F. Cosset,et al. Modifying the host range properties of retroviral vectors , 1999, The journal of gene medicine.
[19] Y. Korin,et al. Nonproductive Human Immunodeficiency Virus Type 1 Infection in Nucleoside-Treated G0 Lymphocytes , 1999, Journal of Virology.
[20] F. Cosset,et al. Efficient gene delivery to quiescent interleukin-2 (IL-2)-dependent cells by murine leukemia virus-derived vectors harboring IL-2 chimeric envelope glycoproteins. , 1999, Blood.
[21] D. Littman,et al. Cytokine Signals Are Sufficient for HIV-1 Infection of Resting Human T Lymphocytes , 1999, The Journal of experimental medicine.
[22] P. Brown,et al. Transduction of Human Progenitor Hematopoietic Stem Cells by Human Immunodeficiency Virus Type 1-Based Vectors Is Cell Cycle Dependent , 1999, Journal of Virology.
[23] A. Lanzavecchia,et al. From TCR Engagement to T Cell Activation A Kinetic View of T Cell Behavior , 1999, Cell.
[24] S. Russell,et al. Efficient gene delivery to quiescent IL2-dependent cells by MLV-derived vectors harboring IL2 chimeric envelope glycoproteins , 1999 .
[25] M. Salmon,et al. IL-7-dependent extrathymic expansion of CD45RA+ T cells enables preservation of a naive repertoire. , 1998, Journal of immunology.
[26] D. Reen,et al. IL‐7 promotes the survival and maturation but not differentiation of human post‐thymic CD4+ T cells , 1998, European journal of immunology.
[27] Y. Korin,et al. Progression to the G1b Phase of the Cell Cycle Is Required for Completion of Human Immunodeficiency Virus Type 1 Reverse Transcription in T Cells , 1998, Journal of Virology.
[28] D. A. Sanders,et al. Localization of the labile disulfide bond between SU and TM of the murine leukemia virus envelope protein complex to a highly conserved CWLC motif in SU that resembles the active-site sequence of thiol-disulfide exchange enzymes , 1997, Journal of virology.
[29] Luigi Naldini,et al. Multiply attenuated lentiviral vector achieves efficient gene delivery in vivo , 1997, Nature Biotechnology.
[30] J. Allison,et al. Co-stimulation in T cell responses. , 1997, Current opinion in immunology.
[31] D. Richman,et al. Preferential replication of HIV-1 in the CD45RO memory cell subset of primary CD4 lymphocytes in vitro. , 1997, The Journal of clinical investigation.
[32] E. Clark,et al. Nuclear import of HIV-1 DNA in resting CD4+ T cells requires a cyclosporin A-sensitive pathway. , 1997, Journal of immunology.
[33] F. Cosset,et al. Retroviral display of antibody fragments; interdomain spacing strongly influences vector infectivity. , 1996, Human gene therapy.
[34] O. Danos,et al. Receptor-binding properties of a purified fragment of the 4070A amphotropic murine leukemia virus envelope glycoprotein , 1996, Journal of virology.
[35] F. Gage,et al. In Vivo Gene Delivery and Stable Transduction of Nondividing Cells by a Lentiviral Vector , 1996, Science.
[36] F. Cosset,et al. Improvement of retroviral retargeting by using amino acid spacers between an additional binding domain and the N terminus of Moloney murine leukemia virus SU , 1996, Journal of virology.
[37] M Vapalahti,et al. [Human gene therapy]. , 1996, Duodecim; laaketieteellinen aikakauskirja.
[38] S. Rosenberg,et al. T Lymphocyte-Directed Gene Therapy for ADA− SCID: Initial Trial Results After 4 Years , 1995, Science.
[39] Evelina Mazzolari,et al. Gene Therapy in Peripheral Blood Lymphocytes and Bone Marrow for ADA− Immunodeficient Patients , 1995, Science.
[40] E. Petuch. Molluscan Diversity in the Late Neogene of Florida: Evidence for a Two-Staged Mass Extinction , 1995, Science.
[41] F. Cosset,et al. Retroviral retargeting by envelopes expressing an N-terminal binding domain , 1995, Journal of virology.
[42] J. Levy,et al. Highly purified quiescent human peripheral blood CD4+ T cells are infectible by human immunodeficiency virus but do not release virus after activation , 1995, Journal of virology.
[43] C. Thompson,et al. Growth factors can enhance lymphocyte survival without committing the cell to undergo cell division. , 1995, Proceedings of the National Academy of Sciences of the United States of America.
[44] D. Richman,et al. Establishment of a stable, inducible form of human immunodeficiency virus type 1 DNA in quiescent CD4 lymphocytes in vitro , 1995, Journal of virology.
[45] J. Zack. The role of the cell cycle in HIV-1 infection. , 1995, Advances in experimental medicine and biology.
[46] J. Burns,et al. Generation of high-titer pseudotyped retroviral vectors with very broad host range. , 1994, Methods in cell biology.
[47] M. Emerman,et al. A nuclear localization signal within HIV-1 matrix protein that governs infection of non-dividing cells , 1993, Nature.
[48] P. Brown,et al. Integration of murine leukemia virus DNA depends on mitosis. , 1993, The EMBO journal.
[49] M. Emerman,et al. Human immunodeficiency virus infection of cells arrested in the cell cycle. , 1992, The EMBO journal.
[50] M. Bukrinsky,et al. Active nuclear import of human immunodeficiency virus type 1 preintegration complexes. , 1992, Proceedings of the National Academy of Sciences of the United States of America.
[51] J. Zack,et al. Incompletely reverse-transcribed human immunodeficiency virus type 1 genomes in quiescent cells can function as intermediates in the retroviral life cycle , 1992, Journal of virology.
[52] D. Kabat,et al. Disulfide bonding controls the processing of retroviral envelope glycoproteins. , 1991, The Journal of biological chemistry.
[53] M. Malim,et al. Productive human immunodeficiency virus type 1 (HIV-1) infection of nonproliferating human monocytes , 1991, The Journal of experimental medicine.
[54] W. Britt,et al. A neutralizable epitope common to the envelope glycoproteins of ecotropic, polytropic, xenotropic, and amphotropic murine leukemia viruses , 1990, Journal of virology.
[55] A. Miller,et al. Gene transfer by retrovirus vectors occurs only in cells that are actively replicating at the time of infection , 1990, Molecular and cellular biology.
[56] M. Stevenson,et al. HIV‐1 replication is controlled at the level of T cell activation and proviral integration. , 1990, The EMBO journal.
[57] A. Rein,et al. Sequence analysis of amphotropic and 10A1 murine leukemia viruses: close relationship to mink cell focus-inducing viruses , 1990, Journal of virology.
[58] R A Laskey,et al. S phase of the cell cycle. , 1989, Science.
[59] E. Reinherz,et al. Monoclonal antibodies defining distinctive human T cell surface antigens. , 1979, Science.