PolarizationResponse by Promoting Macrophage M2 during the Afferent Phase of the Immune Cryptococcus neoformans Expansion of Homolog Ssa1 Contributes to Pulmonary Cryptococcal Heat Shock Protein 70
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Davis | Yoon-Dong Park | P. Williamson | M. Olszewski | Daniel M Lyons | A. Eastman | A. Malachowski | F. Wormley | S. Hardison | Ya‐Qi Qiu | J. John | P. Vedula | andOsterholzer | Daniel M. Lyons
[1] S. Holland,et al. Anti-Granulocyte-Macrophage Colony-Stimulating Factor Autoantibodies Are a Risk Factor for Central Nervous System Infection by Cryptococcus gattii in Otherwise Immunocompetent Patients , 2014, mBio.
[2] S. Weintraub,et al. Identification and characterization of Cryptococcus neoformans protein fractions that induce protective immune responses , 2013, Proteomics.
[3] O. Frey,et al. Abrogation of IL-4 receptor-α-dependent alternatively activated macrophages is sufficient to confer resistance against pulmonary cryptococcosis despite an ongoing T(h)2 response. , 2013, International immunology.
[4] Michael J. Davis,et al. Scavenger Receptor A Modulates the Immune Response to Pulmonary Cryptococcus neoformans Infection , 2013, The Journal of Immunology.
[5] Michael J. Davis,et al. Macrophage M1/M2 Polarization Dynamically Adapts to Changes in Cytokine Microenvironments in Cryptococcus neoformans Infection , 2013, mBio.
[6] L. Joosten,et al. Cryptococcus gattii Induces a Cytokine Pattern That Is Distinct from Other Cryptococcal Species , 2013, PloS one.
[7] J. Qiu,et al. Cryptococcus neoformans Growth and Protection from Innate Immunity Are Dependent on Expression of a Virulence-Associated DEAD-Box Protein, Vad1 , 2012, Infection and Immunity.
[8] Michael J. Davis,et al. Immune Modulation Mediated by Cryptococcal Laccase Promotes Pulmonary Growth and Brain Dissemination of Virulent Cryptococcus neoformans in Mice , 2012, PloS one.
[9] F. Wormley,et al. ActivationSTAT1-Mediated Classical Macrophage Cryptococcosis Is Associated with Protective Immunity against Pulmonary , 2012 .
[10] Michael J. Davis,et al. Virulence factors identified by Cryptococcus neoformans mutant screen differentially modulate lung immune responses and brain dissemination. , 2012, The American journal of pathology.
[11] K. Kwon-Chung,et al. Differences in Nitrogen Metabolism between Cryptococcus neoformans and C. gattii, the Two Etiologic Agents of Cryptococcosis , 2012, PloS one.
[12] M. Olszewski,et al. Effect of Cytokine Interplay on Macrophage Polarization during Chronic Pulmonary Infection with Cryptococcus neoformans , 2011, Infection and Immunity.
[13] S. Filler,et al. Host Cell Invasion and Virulence Mediated by Candida albicans Ssa1 , 2010, PLoS pathogens.
[14] S. Gordon,et al. Alternative activation of macrophages: mechanism and functions. , 2010, Immunity.
[15] J. Curtis,et al. Accumulation of CD11b+ Lung Dendritic Cells in Response to Fungal Infection Results from the CCR2-Mediated Recruitment and Differentiation of Ly-6Chigh Monocytes12 , 2009, The Journal of Immunology.
[16] Yanmei Zhang,et al. Robust Th1 and Th17 immunity supports pulmonary clearance but cannot prevent systemic dissemination of highly virulent Cryptococcus neoformans H99. , 2009, The American journal of pathology.
[17] Yanmei Zhang,et al. Th2 but Not Th1 Immune Bias Results in Altered Lung Functions in a Murine Model of Pulmonary Cryptococcus neoformans Infection , 2009, Infection and Immunity.
[18] M. Olszewski,et al. Role of Dendritic Cells and Alveolar Macrophages in Regulating Early Host Defense against Pulmonary Infection with Cryptococcus neoformans , 2009, Infection and Immunity.
[19] F. Wormley,et al. A proteomic‐based approach for the identification of immunodominant Cryptococcus neoformans proteins , 2009, Proteomics.
[20] J. Curtis,et al. Cryptococcal urease promotes the accumulation of immature dendritic cells and a non-protective T2 immune response within the lung. , 2009, The American journal of pathology.
[21] F. Heppner,et al. IL-4/IL-13-dependent alternative activation of macrophages but not microglial cells is associated with uncontrolled cerebral cryptococcosis. , 2009, The American journal of pathology.
[22] A. Casadevall,et al. Vesicular Trans-Cell Wall Transport in Fungi: A Mechanism for the Delivery of Virulence-Associated Macromolecules? , 2008, Lipid insights.
[23] M. Olszewski,et al. Inheritance of Immune Polarization Patterns Is Linked to Resistance versus Susceptibility to Cryptococcus neoformans in a Mouse Model , 2008, Infection and Immunity.
[24] A. Casadevall,et al. Cryptococcus neoformans laccase catalyses melanin synthesis from both D- and L-DOPA. , 2007, Microbiology.
[25] J. Jarvis,et al. HIV-associated cryptococcal meningitis. , 2007, AIDS.
[26] Gesine Hansen,et al. IL-13 Induces Disease-Promoting Type 2 Cytokines, Alternatively Activated Macrophages and Allergic Inflammation during Pulmonary Infection of Mice with Cryptococcus neoformans1 , 2007, The Journal of Immunology.
[27] C. Bonorino,et al. Mycobacterium tuberculosis heat‐shock protein 70 impairs maturation of dendritic cells from bone marrow precursors, induces interleukin‐10 production and inhibits T‐cell proliferation in vitro , 2007, Immunology.
[28] M. Olszewski,et al. Role of granulocyte macrophage colony-stimulating factor in host defense against pulmonary Cryptococcus neoformans infection during murine allergic bronchopulmonary mycosis. , 2007, The American journal of pathology.
[29] P. Williamson,et al. The Hsp70 member, Ssa1, acts as a DNA‐binding transcriptional co‐activator of laccase in Cryptococcus neoformans , 2006, Molecular microbiology.
[30] V. Bronte,et al. Regulation of immune responses by L-arginine metabolism , 2005, Nature Reviews Immunology.
[31] J. Erb-Downward,et al. Distinct Roles for IL-4 and IL-10 in Regulating T2 Immunity during Allergic Bronchopulmonary Mycosis1 , 2005, The Journal of Immunology.
[32] J. Utikal,et al. Interleukin‐4 and Dexamethasone Counterregulate Extracellular Matrix Remodelling and Phagocytosis in Type‐2 Macrophages , 2005, Scandinavian journal of immunology.
[33] J. Perfect,et al. Urease expression by Cryptococcus neoformans promotes microvascular sequestration, thereby enhancing central nervous system invasion. , 2004, The American journal of pathology.
[34] P. Williamson,et al. CNLAC1 Is Required for Extrapulmonary Dissemination of Cryptococcus neoformans but Not Pulmonary Persistence , 2004, Infection and Immunity.
[35] F. Dietrich,et al. Regulation of cytochrome c oxidase subunit 1 (COX1) expression in Cryptococcus neoformans by temperature and host environment. , 2003, Microbiology.
[36] P. Williamson,et al. Multiple virulence factors of Cryptococcus neoformans are dependent on VPH1 , 2001, Molecular microbiology.
[37] M. Olszewski,et al. Regulatory Effects of Macrophage Inflammatory Protein 1α/CCL3 on the Development of Immunity to Cryptococcus neoformans Depend on Expression of Early Inflammatory Cytokines , 2001, Infection and Immunity.
[38] R. M. Warren,et al. Cryptococcosis in human immunodeficiency virus-negative patients in the era of effective azole therapy. , 2001, Clinical infectious diseases : an official publication of the Infectious Diseases Society of America.
[39] A. Casadevall,et al. Laccase of Cryptococcus neoformans Is a Cell Wall-Associated Virulence Factor , 2001, Infection and Immunity.
[40] A. Casadevall,et al. Extracellular phospholipase activity is a virulence factor for Cryptococcus neoformans , 2001, Molecular microbiology.
[41] M. Olszewski,et al. The Role of Macrophage Inflammatory Protein-1α/CCL3 in Regulation of T Cell-Mediated Immunity to Cryptococcus neoformans Infection1 , 2000, The Journal of Immunology.
[42] W. Kuziel,et al. CCR2 Expression Determines T1 Versus T2 Polarization During Pulmonary Cryptococcus neoformans Infection1 , 2000, The Journal of Immunology.
[43] A. Casadevall,et al. Urease as a Virulence Factor in Experimental Cryptococcosis , 2000, Infection and Immunity.
[44] Sasaki,et al. Heat shock protein 70 (hsp70) as a major target of the antibody response in patients with pulmonary cryptococcosis , 1999, Clinical and experimental immunology.
[45] L. Weiss,et al. Bradyzoite Development in Toxoplasma gondii and the hsp70 Stress Response , 1998, Infection and Immunity.
[46] G. Huffnagle,et al. Cells and cytokines in pulmonary cryptococcosis. , 1998, Research in immunology.
[47] H. Udono,et al. A 77-kilodalton protein of Cryptococcus neoformans, a member of the heat shock protein 70 family, is a major antigen detected in the sera of mice with pulmonary cryptococcosis , 1997, Infection and immunity.
[48] M. Burdick,et al. Afferent phase production of TNF-alpha is required for the development of protective T cell immunity to Cryptococcus neoformans. , 1996, Journal of immunology.
[49] J. Perfect,et al. Dominant selection system for use in Cryptococcus neoformans. , 1996, Journal of medical and veterinary mycology : bi-monthly publication of the International Society for Human and Animal Mycology.
[50] W. Chaffin,et al. Evidence for presence in the cell wall of Candida albicans of a protein related to the hsp70 family , 1996, Infection and immunity.
[51] J. Perfect,et al. Effect of the laccase gene CNLAC1, on virulence of Cryptococcus neoformans , 1996, The Journal of experimental medicine.
[52] T. Klein,et al. Bacterial heat shock proteins directly induce cytokine mRNA and interleukin-1 secretion in macrophage cultures , 1994, Infection and immunity.
[53] P. Williamson. Biochemical and molecular characterization of the diphenol oxidase of Cryptococcus neoformans: identification as a laccase , 1994, Journal of bacteriology.
[54] G. Huffnagle,et al. The role of CD4+ and CD8+ T cells in the protective inflammatory response to a pulmonary cryptococcal infection , 1994, Journal of leukocyte biology.
[55] C. Mody,et al. Interferon-γ Activates Rat Alveolar Macrophages for Anticryptococcal Activity , 1991 .
[56] S. Chuck,et al. Infections with Cryptococcus neoformans in the acquired immunodeficiency syndrome. , 1989, The New England journal of medicine.
[57] J. Curtis,et al. Chemokine receptor 2-mediated accumulation of fungicidal exudate macrophages in mice that clear cryptococcal lung infection. , 2011, The American journal of pathology.
[58] M. Olszewski,et al. Immunopathology and Infectious Diseases Pulmonary Infection with an Interferon-- Producing Cryptococcus neoformans Strain Results in Classical Macrophage Activation and Protection , 2010 .
[59] A. Celada,et al. Macrophage activation: classical versus alternative. , 2009, Methods in molecular biology.
[60] K. Norose,et al. Toxoplasma gondii Hsp70 as a danger signal in Toxoplasma gondii-infected mice , 2000, Cell stress & chaperones.