Immunological defense mechanisms in tuberculosis and MAC-infection.
暂无分享,去创建一个
[1] G. Plum,et al. Enhanced induction of interleukin-12(p40) secretion by human macrophages infected with Mycobacterium avium complex isolates from disseminated infection in AIDS patients. , 1998, The Journal of infectious diseases.
[2] G. Plum,et al. The Macrophage-Induced Gene mig as a Marker for Clinical Pathogenicity and In Vitro Virulence ofMycobacterium avium Complex Strains , 1998, Infection and Immunity.
[3] H. Remold,et al. Cytokines enhance neutrophils from human immunodeficiency virus-negative donors and AIDS patients to inhibit the growth of Mycobacterium avium in vitro. , 1997, The Journal of infectious diseases.
[4] I. Orme,et al. An anti-inflammatory role for gamma delta T lymphocytes in acquired immunity to Mycobacterium tuberculosis. , 1997, Journal of immunology.
[5] P. Andersen. Host Responses and Antigens Involved in Protective Immunity to Mycobacterium tuberculosis , 1997, Scandinavian journal of immunology.
[6] A. Sher,et al. Molecular analysis of decreased interleukin-12 production in persons infected with human immunodeficiency virus. , 1996, The Journal of infectious diseases.
[7] W. Boom,et al. Interleukin-12 production by human monocytes infected with Mycobacterium tuberculosis: role of phagocytosis , 1996, Infection and immunity.
[8] J. Falkinham,et al. Epidemiology of infection by nontuberculous mycobacteria , 1996, Clinical microbiology reviews.
[9] S. Kaufmann,et al. Protective role of γ/δ T cells and α/β T cells in tuberculosis , 1995 .
[10] S. Kaufmann,et al. Early interleukin 12 production by macrophages in response to mycobacterial infection depends on interferon gamma and tumor necrosis factor alpha , 1995, The Journal of experimental medicine.
[11] S. Porcelli,et al. Recognition of a lipid antigen by GDI-restricted αβ+ T cells , 1994, Nature.
[12] E. Vittinghoff,et al. The impact of Mycobacterium avium complex bacteremia and its treatment on survival of AIDS patients--a prospective study. , 1994, The Journal of infectious diseases.
[13] S. Kaufmann,et al. The Mycobacterium bovis 32-kilodalton protein antigen induces human cytotoxic T-cell responses , 1994, Infection and immunity.
[14] L. Young,et al. Mycobacterial diseases and the compromised host. , 1993, Clinical infectious diseases : an official publication of the Infectious Diseases Society of America.
[15] T. Ottenhoff,et al. Mycobacteria induce CD4+ T cells that are cytotoxic and display Th1‐like cytokine secretion profile: Heterogeneity in cytotoxic activity and cytokine secretion levels , 1993, European journal of immunology.
[16] P. Scott,et al. Natural killer cells are a source of interferon gamma that drives differentiation of CD4+ T cell subsets and induces early resistance to Leishmania major in mice , 1993, The Journal of experimental medicine.
[17] C. Hsieh,et al. Development of TH1 CD4+ T cells through IL-12 produced by Listeria-induced macrophages. , 1993, Science.
[18] H. Shiratsuchi,et al. Colonial morphotype as a determinant of cytokine expression by human monocytes infected with Mycobacterium avium. , 1993, Journal of immunology.
[19] H. Geuze,et al. Class II MHC molecules are present in macrophage lysosomes and phagolysosomes that function in the phagocytic processing of Listeria monocytogenes for presentation to T cells , 1992, The Journal of cell biology.
[20] Christopher J. L. Murray,et al. Tuberculosis: Commentary on a Reemergent Killer , 1992, Science.
[21] P M Southern,et al. Incidence of Mycobacterium avium-intracellulare complex bacteremia in human immunodeficiency virus-positive patients. , 1992, The Journal of infectious diseases.
[22] H. Shiratsuchi,et al. Preservation of monocyte effector functions against Mycobacterium avium-M. intracellulare in patients with AIDS , 1991, Infection and immunity.
[23] D. Blanchard,et al. Production of granulocyte-macrophage colony-stimulating factor (GM-CSF) by monocytes and large granular lymphocytes stimulated with Mycobacterium avium-M. intracellulare: activation of bactericidal activity by GM-CSF , 1991, Infection and immunity.
[24] J. Ellner,et al. Mycobacterium avium infection and AIDS: a therapeutic dilemma in rapid evolution. , 1991, The Journal of infectious diseases.
[25] Horsburgh Cr. Mycobacterium avium complex infection in the acquired immunodeficiency syndrome. , 1991, The New England journal of medicine.
[26] L. Bermudez,et al. Interaction of Mycobacterium avium complex with human macrophages: roles of membrane receptors and serum proteins , 1991, Infection and immunity.
[27] Lloyd N. Friedman,et al. Diagnostic standards and classification of tuberculosis. , 1991, The American review of respiratory disease.
[28] E. Halapi,et al. Mycobacterial‐induced cytotoxic T cells as well as nonspecific killer cells derived from healthy individuals and leprosy patients , 1990, European journal of immunology.
[29] D. Young,et al. Recognition of a peptide antigen by heat shock--reactive gamma delta T lymphocytes. , 1990, Science.
[30] D. Smith,et al. Immunity to tuberculosis from the perspective of pathogenesis , 1989, Infection and immunity.
[31] S. Kaufmann,et al. Activation of gamma delta T cells in the primary immune response to Mycobacterium tuberculosis. , 1989, Science.
[32] V. Kindler,et al. The inducing role of tumor necrosis factor in the development of bactericidal granulomas during BCG infection , 1989, Cell.
[33] P. Fine. The BCG story: lessons from the past and implications for the future. , 1989, Reviews of infectious diseases.
[34] J. T. Crawford,et al. Pathogenicity of Mycobacterium avium for human monocytes: absence of macrophage-activating factor activity of gamma interferon , 1989, Infection and immunity.
[35] L. Young. Mycobacterium avium complex infection. , 1988, The Journal of infectious diseases.
[36] L. Bermudez,et al. Tumor necrosis factor, alone or in combination with IL-2, but not IFN-gamma, is associated with macrophage killing of Mycobacterium avium complex. , 1988, Journal of immunology.
[37] E. Klatt,et al. Pathology of Mycobacterium aviumintracellulare infection in acquired immunodeficiency syndrome , 1987 .
[38] S. Tonegawa,et al. Tγ protein is expressed on murine fetal thymocytes as a disulphide-linked heterodimer , 1987, Nature.
[39] J. Seidman,et al. A T-cell receptor γ/CD3 complex found on cloned functional lymphocytes , 1987, Nature.
[40] J. Freed,et al. Interaction between a "processed" ovalbumin peptide and Ia molecules. , 1986, Proceedings of the National Academy of Sciences of the United States of America.
[41] R. Coffman,et al. Two types of murine helper T cell clone. I. Definition according to profiles of lymphokine activities and secreted proteins. , 1986, Journal of immunology.
[42] J. Songer,et al. In vitro interaction of Mycobacterium avium with intestinal epithelial cells , 1984, Infection and immunity.
[43] C. Nathan,et al. Identification of interferon-gamma as the lymphokine that activates human macrophage oxidative metabolism and antimicrobial activity , 1983, The Journal of experimental medicine.
[44] R. Koch. The Etiology of Tuberculosis , 1982 .
[45] M. J. Lefford. Transfer of Adoptive Immunity to Tuberculosis in Mice , 1975, Infection and immunity.
[46] R. North. Importance of thymus-derived lymphocytes in cell-mediated immunity to infection. , 1973, Cellular immunology.
[47] M. Chase. The Cellular Transfer of Cutaneous Hypersensitivity to Tuberculin , 1945 .
[48] M. B. Lurie. STUDIES ON THE MECHANISM OF IMMUNITY IN TUBERCULOSIS , 1942, The Journal of experimental medicine.
[49] L. Bermudez,et al. The role of cytokines in mycobacterial infection , 1994, Biotherapy.
[50] R. Coffman,et al. Heterogeneity of cytokine secretion patterns and functions of helper T cells. , 1989, Advances in immunology.
[51] S. Kaufmann,et al. CD8+ T lymphocytes in intracellular microbial infections. , 1988, Immunology today.
[52] H. G. Dam. Research on BCG vaccination. , 1984 .