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Journal Abstract Search


118 related items for PubMed ID: 9138291

  • 21. Astrocytic TGF-β signaling limits inflammation and reduces neuronal damage during central nervous system Toxoplasma infection.
    Cekanaviciute E, Dietrich HK, Axtell RC, Williams AM, Egusquiza R, Wai KM, Koshy AA, Buckwalter MS.
    J Immunol; 2014 Jul 01; 193(1):139-49. PubMed ID: 24860191
    [Abstract] [Full Text] [Related]

  • 22. Recurrent headache as the main symptom of acquired cerebral toxoplasmosis in nonhuman immunodeficiency virus-infected subjects with no lymphadenopathy: the parasite may be responsible for the neurogenic inflammation postulated as a cause of different types of headaches.
    Prandota J.
    Am J Ther; 2007 Jul 01; 14(1):63-105. PubMed ID: 17303977
    [Abstract] [Full Text] [Related]

  • 23. Galectin-3 and Galectin-9 May Differently Regulate the Expressions of Microglial M1/M2 Markers and T Helper 1/Th2 Cytokines in the Brains of Genetically Susceptible C57BL/6 and Resistant BALB/c Mice Following Peroral Infection With Toxoplasma gondii.
    Liu J, Huang S, Lu F.
    Front Immunol; 2018 Jul 01; 9():1648. PubMed ID: 30108583
    [Abstract] [Full Text] [Related]

  • 24. Cytokine responses induced by Toxoplasma gondii in astrocytes and microglial cells.
    Fischer HG, Nitzgen B, Reichmann G, Hadding U.
    Eur J Immunol; 1997 Jun 01; 27(6):1539-48. PubMed ID: 9209508
    [Abstract] [Full Text] [Related]

  • 25. Both lymphotoxin-alpha and TNF are crucial for control of Toxoplasma gondii in the central nervous system.
    Schlüter D, Kwok LY, Lütjen S, Soltek S, Hoffmann S, Körner H, Deckert M.
    J Immunol; 2003 Jun 15; 170(12):6172-82. PubMed ID: 12794148
    [Abstract] [Full Text] [Related]

  • 26. CNS-derived CCL21 is both sufficient to drive homeostatic CD4+ T cell proliferation and necessary for efficient CD4+ T cell migration into the CNS parenchyma following Toxoplasma gondii infection.
    Ploix CC, Noor S, Crane J, Masek K, Carter W, Lo DD, Wilson EH, Carson MJ.
    Brain Behav Immun; 2011 Jul 15; 25(5):883-96. PubMed ID: 20868739
    [Abstract] [Full Text] [Related]

  • 27. Nitric oxide and cytokine production by glial cells exposed in vitro to neuropathogenic schistosome Trichobilharzia regenti.
    Macháček T, Panská L, Dvořáková H, Horák P.
    Parasit Vectors; 2016 Nov 14; 9(1):579. PubMed ID: 27842570
    [Abstract] [Full Text] [Related]

  • 28. Gasdermin-D-dependent IL-1α release from microglia promotes protective immunity during chronic Toxoplasma gondii infection.
    Batista SJ, Still KM, Johanson D, Thompson JA, OʼBrien CA, Lukens JR, Harris TH.
    Nat Commun; 2020 Jul 23; 11(1):3687. PubMed ID: 32703941
    [Abstract] [Full Text] [Related]

  • 29. Determination of a Key Antigen for Immunological Intervention To Target the Latent Stage of Toxoplasma gondii.
    Sa Q, Ochiai E, Tiwari A, Mullins J, Shastri N, Mercier C, Cesbron-Delauw MF, Suzuki Y.
    J Immunol; 2017 Jun 01; 198(11):4425-4434. PubMed ID: 28446567
    [Abstract] [Full Text] [Related]

  • 30. Nitric oxide production increases during Toxoplasma gondii encephalitis in mice.
    Dincel GC, Atmaca HT.
    Exp Parasitol; 2015 Sep 01; 156():104-12. PubMed ID: 26115941
    [Abstract] [Full Text] [Related]

  • 31. Toxoplasma-Induced Hypermigration of Primary Cortical Microglia Implicates GABAergic Signaling.
    Bhandage AK, Kanatani S, Barragan A.
    Front Cell Infect Microbiol; 2019 Sep 01; 9():73. PubMed ID: 30949457
    [Abstract] [Full Text] [Related]

  • 32. The mechanism of interferon-gamma induced anti Toxoplasma gondii by indoleamine 2,3-dioxygenase and/or inducible nitric oxide synthase vary among tissues.
    Fujigaki S, Takemura M, Hamakawa H, Seishima M, Saito K.
    Adv Exp Med Biol; 2003 Sep 01; 527():97-103. PubMed ID: 15206721
    [Abstract] [Full Text] [Related]

  • 33. Cytokines involved in Toxoplasmic encephalitis.
    Sarciron ME, Gherardi A.
    Scand J Immunol; 2000 Dec 01; 52(6):534-43. PubMed ID: 11119257
    [Abstract] [Full Text] [Related]

  • 34. Analysis of behavior and trafficking of dendritic cells within the brain during toxoplasmic encephalitis.
    John B, Ricart B, Tait Wojno ED, Harris TH, Randall LM, Christian DA, Gregg B, De Almeida DM, Weninger W, Hammer DA, Hunter CA.
    PLoS Pathog; 2011 Sep 01; 7(9):e1002246. PubMed ID: 21949652
    [Abstract] [Full Text] [Related]

  • 35. Role of IDO activation in anti-microbial defense in human native astrocytes.
    Oberdörfer C, Adams O, MacKenzie CR, De Groot CJ, Däubener W.
    Adv Exp Med Biol; 2003 Sep 01; 527():15-26. PubMed ID: 15206712
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  • 36. Dynamic imaging of T cell-parasite interactions in the brains of mice chronically infected with Toxoplasma gondii.
    Schaeffer M, Han SJ, Chtanova T, van Dooren GG, Herzmark P, Chen Y, Roysam B, Striepen B, Robey EA.
    J Immunol; 2009 May 15; 182(10):6379-93. PubMed ID: 19414791
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  • 37. Advances and Challenges in Understanding Cerebral Toxoplasmosis.
    Schlüter D, Barragan A.
    Front Immunol; 2019 May 15; 10():242. PubMed ID: 30873157
    [Abstract] [Full Text] [Related]

  • 38. Immunopathogenesis of cerebral toxoplasmosis.
    Suzuki Y.
    J Infect Dis; 2002 Dec 01; 186 Suppl 2():S234-40. PubMed ID: 12424703
    [Abstract] [Full Text] [Related]

  • 39. Coinfection with Heligmosomoides polygyrus fails to establish CD8+ T-cell immunity against Toxoplasma gondii.
    Khan IA, Hakak R, Eberle K, Sayles P, Weiss LM, Urban JF.
    Infect Immun; 2008 Mar 01; 76(3):1305-13. PubMed ID: 18195022
    [Abstract] [Full Text] [Related]

  • 40. Effects of cytokines and prolactin on the replication of Toxoplasma gondii in murine microglia.
    Benedetto N, Folgore A, Romano Carratelli C, Galdiero F.
    Eur Cytokine Netw; 2001 Mar 01; 12(2):348-58. PubMed ID: 11399525
    [Abstract] [Full Text] [Related]


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