CD8+ type-2 T cells enhance the severity of acute herpes virus infection in mice.
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[1] N. Cohen,et al. Similar immune response to nonlethal infection with herpes simplex virus-1 in sensitive (BALB/c) and resistant (C57BL/6) strains of mice. , 1994, Cellular immunology.
[2] P. Linsley,et al. Unique antigen recognition by a herpesvirus-specific TCR-gamma delta cell. , 1994, Journal of immunology.
[3] A Radbruch,et al. Flow cytometric determination of cytokines in activated murine T helper lymphocytes: Expression of interleukin‐10 in interferon‐γ and in interleukin‐4‐expressing cells , 1994, European journal of immunology.
[4] D. Herndon,et al. Effect of a traditional Chinese herbal medicine, kanzo-bushi-to, on the production of interleukin-4 from a clone of burn-associated CD8+ suppressor T cells. , 1994, Immunology letters.
[5] A. Sehon,et al. The suppressor factor of T suppressor cells induced by tolerogenic conjugates of ovalbumin and monomethoxypolyethylene glycol is serologically and physicochemically related to the alpha beta heterodimer of the T cell receptor. , 1994, Journal of immunology.
[6] A. Heiligenhaus,et al. Exacerbation of murine herpes simplex virus-mediated stromal keratitis by Th2 type T cells. , 1993, Journal of immunology.
[7] O. Bakke,et al. Intracellular distribution of the MHC class II molecules and the associated invariant chain (Ii) in different cell lines. , 1993, International immunology.
[8] R. Pollard,et al. Inhibition of burn‐associated suppressor cell generation by glycyrrhizin through the induction of contrasuppressor T cells , 1993, Immunology and cell biology.
[9] R. Pollard,et al. Prolongation of concomitant antitumor immunity in mice treated with Z-100, an arabinomannan extracted from Mycobacterium tuberculosis. , 1993, Natural immunity.
[10] S. Aizawa,et al. Distinction of mouse CD8+ suppressor effector T cell clones from cytotoxic T cell clones by cytokine production and CD45 isoforms. , 1993, Journal of immunology.
[11] K. Matsumoto,et al. Demonstrations of a B-cell population that regulates the immune response in spleens of mice infected with herpes simplex virus type I. , 1993, Clinical immunology and immunopathology.
[12] T. Tumpey,et al. IFN-gamma and IL-2 are protective in the skin but pathologic in the corneas of HSV-1-infected mice. , 1992, Journal of immunology.
[13] R. Pollard,et al. Antiviral effects of recombinant human tumor necrosis factor-alpha in combination with natural interferon-beta in mice infected with herpes simplex virus type 1. , 1992, Antiviral Research.
[14] E. Schmitt,et al. Lymphokine profile and activation pattern of two unrelated antigen‐ or idiotype‐specific T suppressor cell clones , 1992, European journal of immunology.
[15] J. Berzofsky,et al. Role of T‐Cell Derived Cytokines in the Downregulation of Immune Responses in Parasitic and Retroviral Infection , 1992, Immunological reviews.
[16] L. Corey,et al. Diminished Interferon-γ and Lymphocyte Proliferation in Neonatal and Postpartum Primary Herpes Simplex Virus Infection , 1992 .
[17] J. Convit,et al. Differing lymphokine profiles of functional subsets of human CD4 and CD8 T cell clones. , 1991, Science.
[18] S. Kaufmann,et al. The role of T-cell subsets and cytokines in the regulation of infection. , 1991, Immunology today.
[19] R. Chervenak,et al. CD4-positive T lymphocytes are required for the generation of the primary but not the secondary CD8-positive cytolytic T lymphocyte response to herpes simplex virus in C57BL/6 mice. , 1991, Cellular immunology.
[20] V. Kuchroo,et al. Expression of functional alpha beta T cell receptor gene rearrangements in suppressor T cell hybridomas correlates with antigen binding, but not with suppressor cell function. , 1990, Journal of immunology.
[21] T. Mosmann,et al. Isolation of monoclonal antibodies specific for IL-4, IL-5, IL-6, and a new Th2-specific cytokine (IL-10), cytokine synthesis inhibitory factor, by using a solid phase radioimmunoadsorbent assay. , 1990, Journal of immunology.
[22] R. Fairchild,et al. DNP-specific/class I MHC-restricted suppressor molecules bear determinants of the T cell receptor alpha- and beta-chains. The V beta 8+ chain dictates restriction to either K or D. , 1990, Journal of immunology.
[23] T. Mosmann,et al. Alloreactive murine CD8+ T cell clones secrete the Th1 pattern of cytokines. , 1990, Journal of immunology.
[24] S. Kohl. Protection against murine neonatal herpes simplex virus infection by lymphokine-treated human leukocytes. , 1990, Journal of immunology.
[25] S. Howie,et al. Variation in lymphoproliferative responses during recrudescent orofacial herpes simplex virus infections. , 1989, Clinical and experimental immunology.
[26] S. Jennings,et al. Modulation of acute and latent herpes simplex virus infection in C57BL/6 mice by adoptive transfer of immune lymphocytes with cytolytic activity , 1989, Journal of virology.
[27] R. Miller,et al. Frequencies of IL-2- and IL-4-secreting T cells in naive and antigen-stimulated lymphocyte populations. , 1988, Journal of immunology.
[28] B. Rouse,et al. The mechanisms of antiviral immunity induced by a vaccinia virus recombinant expressing herpes simplex virus type 1 glycoprotein D: clearance of local infection. , 1987, Journal of immunology.
[29] H. Waldmann,et al. Different roles for L3T4+ and Lyt 2+ T cell subsets in the control of an acute herpes simplex virus infection of the skin and nervous system. , 1987, The Journal of general virology.
[30] B. Rouse,et al. Regulation of herpes simplex virus-specific cell-mediated immunity by a specific suppressor factor , 1986, Journal of virology.
[31] B. Rouse,et al. Regulation of herpes simplex virus-specific lymphoproliferation by suppressor cells , 1985, Journal of virology.
[32] W. Paul,et al. Production of a monoclonal antibody to and molecular characterization of B-cell stimulatory factor-1 , 1985, Nature.
[33] L. Pizer,et al. Delayed hypersensitivity and immune protection against herpes simplex virus: suppressor T cells that regulate the induction of delayed hypersensitivity effector T cells also regulate the induction of protective T cells. , 1985, Journal of immunology.
[34] J. Sheridan,et al. Immunity to herpes simplex virus type 2: recurrent lesions are associated with the induction of suppressor cells and soluble suppressor factors , 1983, Infection and immunity.
[35] B. Rouse,et al. Recovery from lethal herpes simplex virus type 1 infection is mediated by cytotoxic T lymphocytes , 1983, Infection and immunity.
[36] A. Nash,et al. Membrane phenotype of murine effector and suppressor T cells involved in delayed hypersensitivity and protective immunity to herpes simplex virus. , 1983, Cellular immunology.
[37] R. Pollard,et al. Mechanism for the suppression of gamma-interferon responsiveness in mice after thermal injury. , 1982, Journal of immunology.
[38] P. Kincade,et al. Antigens displayed on murine B lymphocyte precursors. , 1981, Journal of immunology.
[39] N. Flournoy,et al. Infection with herpes simplex virus and cell-mediated immunity after marrow transplant. , 1980, The Journal of infectious diseases.
[40] A. Starzinski-Powitz,et al. The role of T cells in anti-herpes simplex virus immunity. I. Induction of antigen-specific cytotoxic T lymphocytes. , 1977, Journal of immunology.
[41] A. Starzinski-Powitz,et al. Cyclophosphamide-sensitive T lymphocytes suppress the in vivo generation of antigen-specific cytotoxic T lymphocytes , 1977, The Journal of experimental medicine.
[42] J. Hamilton,et al. Synergistic effect on mortality in mice with murine cytomegalovirus and Pseudomonas aeruginosa, Staphylococcus aureus, or Candida albicans infections , 1976, Infection and immunity.
[43] L. Aurelian,et al. The association of genital herpesvirus with cervical atypia and carcinoma in situ. , 1970, American journal of epidemiology.
[44] S. Romagnani,et al. The role of TH1 and TH2 subsets in human infectious diseases. , 1994, Trends in microbiology.
[45] M. Clerici,et al. A TH1-->TH2 switch is a critical step in the etiology of HIV infection. , 1993, Immunology today.
[46] P. Linsley,et al. The role of the CD28 receptor during T cell responses to antigen. , 1993, Annual review of immunology.
[47] B. Rouse,et al. The role of T cell immunity in control of herpes simplex virus. , 1992, Current topics in microbiology and immunology.
[48] R. Coffman,et al. TH1 and TH2 cells: different patterns of lymphokine secretion lead to different functional properties. , 1989, Annual review of immunology.
[49] M. Bendinelli,et al. Virus-Induced Immunosuppression , 1989, Infectious agents and pathogenesis.
[50] J. Hansen,et al. Monoclonal antibody 9.3 and anti‐CD11 antibodies define reciprocal subsets of lymphocytes , 1985, European journal of immunology.