Tuberculosis (TB) is one of the world's greatest health problems, causing approximately 3 million deaths per year. Despite continuing increases in global morbidity and mortality, therapeutic and preventative options for TB remain severely limited. The central feature of TB pathogenesis is infection and intracellular survival of Mycobacterium tuberculosis (Mtb) within human macrophages. Following phagocytosis, Mtb evades the normally potent antimicrobial defenses of innate immunity by inhibiting the maturation of its phagosome to a microbicidal phagolysosome. The molecular mechanisms by which Mtb blocks phagosomal maturation and survives intracellularly are incompletely understood. The long-term goal of this project is to define the molecular mechanisms of tuberculous pathogenesis, to provide a foundation for improved therapies and vaccines. Recently, we demonstrated that live, virulent Mtb, but not killed Mtb, inhibit macrophage Ca2+-signaling, and that this defect in host activation directly contributes to inhibition of phagosomal maturation and promotion of the bacilli's intracellular survival. Important gaps in our knowledge include: (1) the mycobacterial determinants responsible for inhibition of macrophage Ca2+-signaling, and (2) the macrophage targets of Mtb-induced inhibition during this critical phase of the host-pathogen interaction. The hypotheses are: (a) sphingosine kinase (SK) is a critical target of macrophage deactivation by live Mtb, and (b) inhibition of SK is causally related to defective Ca2+-signaling, inhibition of phagosome maturation, and the survival of Mtb within human macrophages. We will investigate these hypotheses by pursuing the following Specific Aims: (1) Characterize the activation of macrophage SK during phagocytosis of killed Mtb and its role in Ca2+-signal transduction and phagosome maturation. (2) Determine whether inhibition of SK-mediatedCa2+-signaling by live Mtb is causally related to defective phagosome maturation and intracellular viability.
In Aims 1 and 2, pharmacological, biochemical, and genetic approaches will be used to modulate specific signaling pathways. (3) Determine the component(s) of Mtb responsible for inhibition of macrophage SK- and Ca2+-mediated activation. A genetic approach of screening a transposon mutant library of Mtb and a biochemical approach of direct assessment of subcellular fractions of Mtb for effects on macrophage SK-andCa2+-mediated signal transduction will be undertaken. ? ?

Agency
National Institute of Health (NIH)
Institute
National Institute of Allergy and Infectious Diseases (NIAID)
Type
Research Project (R01)
Project #
5R01AI055916-05
Application #
7169614
Study Section
Special Emphasis Panel (ZRG1-BM-1 (03))
Program Officer
Jacobs, Gail G
Project Start
2003-08-15
Project End
2008-01-31
Budget Start
2007-02-01
Budget End
2008-01-31
Support Year
5
Fiscal Year
2007
Total Cost
$279,713
Indirect Cost
Name
University of Iowa
Department
Internal Medicine/Medicine
Type
Schools of Medicine
DUNS #
062761671
City
Iowa City
State
IA
Country
United States
Zip Code
52242
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Kusner, David J; Thompson, Christopher R; Melrose, Natalie A et al. (2007) The localization and activity of sphingosine kinase 1 are coordinately regulated with actin cytoskeletal dynamics in macrophages. J Biol Chem 282:23147-62
Herrmann, Tara L; Agrawal, Reitu S; Connolly, Sean F et al. (2007) MHC Class II levels and intracellular localization in human dendritic cells are regulated by calmodulin kinase II. J Leukoc Biol 82:686-99
Iyer, Shankar S; Kusner, David J (2006) Assay of phospholipase D activity in cell-free systems. Methods Mol Biol 332:281-98
Iyer, Shankar S; Agrawal, Reitu S; Thompson, Christopher R et al. (2006) Phospholipase D1 regulates phagocyte adhesion. J Immunol 176:3686-96
Herrmann, Tara L; Morita, Craig T; Lee, Kelvin et al. (2005) Calmodulin kinase II regulates the maturation and antigen presentation of human dendritic cells. J Leukoc Biol 78:1397-407
Thompson, Christopher R; Iyer, Shankar S; Melrose, Natalie et al. (2005) Sphingosine kinase 1 (SK1) is recruited to nascent phagosomes in human macrophages: inhibition of SK1 translocation by Mycobacterium tuberculosis. J Immunol 174:3551-61
Iyer, Shankar S; Barton, James A; Bourgoin, Sylvain et al. (2004) Phospholipases D1 and D2 coordinately regulate macrophage phagocytosis. J Immunol 173:2615-23