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PUBMED FOR HANDHELDS

Journal Abstract Search


135 related items for PubMed ID: 16966496

  • 1. CD27 contributes to the early systemic immune response to Mycobacterium tuberculosis infection but does not affect outcome.
    Wieland CW, Kerver ME, Florquin S, Nolte MA, Borst J, van Lier R, van Oers MH, van der Poll T.
    Int Immunol; 2006 Nov; 18(11):1531-9. PubMed ID: 16966496
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  • 2. Lipopolysaccharide binding protein-deficient mice have a normal defense against pulmonary mycobacterial infection.
    Branger J, Leemans JC, Florquin S, Speelman P, Golenbock DT, van der Poll T.
    Clin Immunol; 2005 Aug; 116(2):174-81. PubMed ID: 15993364
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  • 3. Pulmonary Mycobacterium tuberculosis infection in leptin-deficient ob/ob mice.
    Wieland CW, Florquin S, Chan ED, Leemans JC, Weijer S, Verbon A, Fantuzzi G, van der Poll T.
    Int Immunol; 2005 Nov; 17(11):1399-408. PubMed ID: 16141243
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  • 4. Polymeric IgR knockout mice are more susceptible to mycobacterial infections in the respiratory tract than wild-type mice.
    Tjärnlund A, Rodríguez A, Cardona PJ, Guirado E, Ivanyi J, Singh M, Troye-Blomberg M, Fernández C.
    Int Immunol; 2006 May; 18(5):807-16. PubMed ID: 16569672
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  • 5. B7 costimulation is critical for host control of chronic Mycobacterium tuberculosis infection.
    Bhatt K, Uzelac A, Mathur S, McBride A, Potian J, Salgame P.
    J Immunol; 2009 Mar 15; 182(6):3793-800. PubMed ID: 19265158
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  • 6. Mast cells modulate pulmonary acute inflammation and host defense in a murine model of tuberculosis.
    Carlos D, de Souza Júnior DA, de Paula L, Jamur MC, Oliver C, Ramos SG, Silva CL, Faccioli LH.
    J Infect Dis; 2007 Nov 01; 196(9):1361-8. PubMed ID: 17922401
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  • 7. Mice overexpressing p40 in lungs have reduced leucocyte influx and slightly impaired resistance during tuberculosis.
    Leemans JC, Wieland CW, Florquin S, van der Poll T, Vervoordeldonk MJ.
    Immunology; 2006 Mar 01; 117(3):409-18. PubMed ID: 16476061
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  • 10. Specificity and efficacy of dendritic cell-based vaccination against tuberculosis with complex mycobacterial antigens in a mouse model.
    Rubakova E, Petrovskaya S, Pichugin A, Khlebnikov V, McMurray D, Kondratieva E, Baturina I, Kondratieva T, Apt A.
    Tuberculosis (Edinb); 2007 Mar 01; 87(2):134-44. PubMed ID: 17011827
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  • 11. Differences in the ability to generate type 1 T helper cells need not determine differences in the ability to resist Mycobacterium tuberculosis infection among mouse strains.
    Jung YJ, Ryan L, LaCourse R, North RJ.
    J Infect Dis; 2009 Jun 15; 199(12):1790-6. PubMed ID: 19426112
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  • 12. Combination of host susceptibility and virulence of Mycobacterium tuberculosis determines dual role of nitric oxide in the protection and control of inflammation.
    Beisiegel M, Kursar M, Koch M, Loddenkemper C, Kuhlmann S, Zedler U, Stäber M, Hurwitz R, Kaufmann SH.
    J Infect Dis; 2009 Apr 15; 199(8):1222-32. PubMed ID: 19302011
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  • 15. Efficacy of membrane TNF mediated host resistance is dependent on mycobacterial virulence.
    Dambuza I, Allie N, Fick L, Johnston N, Fremond C, Mitchell J, Quesniaux VF, Ryffel B, Jacobs M.
    Tuberculosis (Edinb); 2008 May 15; 88(3):221-34. PubMed ID: 17950671
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  • 17. The Ag85B protein of Mycobacterium tuberculosis may turn a protective immune response induced by Ag85B-DNA vaccine into a potent but non-protective Th1 immune response in mice.
    Palma C, Iona E, Giannoni F, Pardini M, Brunori L, Orefici G, Fattorini L, Cassone A.
    Cell Microbiol; 2007 Jun 15; 9(6):1455-65. PubMed ID: 17250590
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  • 18. XCL1 (lymphotactin) chemokine produced by activated CD8 T cells during the chronic stage of infection with Mycobacterium tuberculosis negatively affects production of IFN-gamma by CD4 T cells and participates in granuloma stability.
    Ordway D, Higgins DM, Sanchez-Campillo J, Spencer JS, Henao-Tamayo M, Harton M, Orme IM, Gonzalez Juarrero M.
    J Leukoc Biol; 2007 Nov 15; 82(5):1221-9. PubMed ID: 17699612
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