Mycobacterium tuberculosis produces chronic, asymptomatic infections in most people. This project seeks to define the mechanisms of this sustained infection-virulence determinants that enable the organism to survive inside human macrophages. The PI has been studying the interaction of epithelial cells with enteropathogenic E. coli (EPEC) for the last 8 years; methods established in the EPEC study will be used to identify and characterize M. tuberculosis gene sequences and their encoded products that mediate the organism's 1) entry into non-phagocytic and phagocytic mammalian cells, and 2) survival inside human macrophages. Preliminary studies have identified a 1,535-base-pair M. tuberculosis DNA fragment that confers HeLa cell invasion and macrophage intracellular survival to a non-pathogenic strain of Escherichia coli. Experiments will be conducted to isolate, purify, and characterize the product(s) of the cloned fragment. Because intracellular survival mechanisms are likely to be mediated by a variety of factors, we will clone additional sequences and their products by screening the M. tuberculosis genomic library in E. coli hosts using other selection systems, including cultured monocyte-macrophages, susceptible and relatively resistant strains of mice, and guinea pigs. This project will be conducted in collaboration with an investigator specializing animal models of mycobacterial infection. Identification of M. tuberculosis products associated with cell invasion and macrophage intracellular survival will contribute to the basic understanding of mycobacterial pathogenesis, and to the development of products that have potential therapeutic and preventative applications.

Agency
National Institute of Health (NIH)
Institute
National Institute of Allergy and Infectious Diseases (NIAID)
Type
Research Project (R01)
Project #
1R01AI035266-01
Application #
3149901
Study Section
Special Emphasis Panel (SRC (36))
Project Start
1993-09-30
Project End
1998-06-30
Budget Start
1993-09-30
Budget End
1994-06-30
Support Year
1
Fiscal Year
1993
Total Cost
Indirect Cost
Name
Weill Medical College of Cornell University
Department
Type
Schools of Medicine
DUNS #
201373169
City
New York
State
NY
Country
United States
Zip Code
10065
Sequeira, Patricia C; Senaratne, Ryan H; Riley, Lee W (2014) Inhibition of toll-like receptor 2 (TLR-2)-mediated response in human alveolar epithelial cells by mycolic acids and Mycobacterium tuberculosis mce1 operon mutant. Pathog Dis 70:132-40
Dunphy, Kathleen Y; Senaratne, Ryan H; Masuzawa, Mamiko et al. (2010) Attenuation of Mycobacterium tuberculosis functionally disrupted in a fatty acyl-coenzyme A synthetase gene fadD5. J Infect Dis 201:1232-9
Marjanovic, Olivera; Miyata, Toshiko; Goodridge, Amador et al. (2010) Mce2 operon mutant strain of Mycobacterium tuberculosis is attenuated in C57BL/6 mice. Tuberculosis (Edinb) 90:50-6
Lima, Patricia; Sidders, Ben; Morici, Lisa et al. (2007) Enhanced mortality despite control of lung infection in mice aerogenically infected with a Mycobacterium tuberculosis mce1 operon mutant. Microbes Infect 9:1285-90
Shimono, Nobuyuki; Morici, Lisa; Casali, Nicola et al. (2003) Hypervirulent mutant of Mycobacterium tuberculosis resulting from disruption of the mce1 operon. Proc Natl Acad Sci U S A 100:15918-23
Chitale, S; Ehrt, S; Kawamura, I et al. (2001) Recombinant Mycobacterium tuberculosis protein associated with mammalian cell entry. Cell Microbiol 3:247-54
Riley, L W (1995) Determinants of cell entry and intracellular survival of Mycobacterium tuberculosis. Trends Microbiol 3:27-31