The unremitting isolation of bacterial pathogens exhibiting resistance to multiple antibiotics demands the development of novel therapeutic strategies. This entails not only identifying resistance determinants but also understanding the environmental cues that regulate expression of such determinants. The Salmonella PmrA/PmrB two-component system is required for resistance to the peptide antibiotic polymyxin B and to several antimicrobial proteins from human polymorphonuclear leukocytes. The regulatory protein PmrA governs expression of proteins mediating modifications of the lipopolysaccharide (LPS) with 4-aminoarabinose, which confers polymyxin resistance, and with phosphoethanolamine, the significance of which has remained unknown. We have established that: (1) the PmrB protein is a sensor that responds to extracellular levels of Fe 3+ by activating the PmrA protein, (2) low Mg2+ can also activate the PmrA protein in a process mediated by the PmrD protein, and (3) mutants defective in the pmrA or pmrB genes are hypersensitive to killing by Fe3+. This proposal describes experiments aimed at understanding the cascade of events by which multiple environmental cues activate the PmrA/PmrB two-component system to promote resistance to different compounds. We will examine the molecular mechanism by which low pH activates the PmrA protein; investigate how the PmrD protein can activate the PmrA protein at a posttranscriptional level; identify the PmrA-regulated determinants mediating resistance to polymyxin and to Fe3+; and define the physiological role of PmrA-controlled phosphoethanolamine modification of the LPS. An accomplishment of these goals will uncover the molecular bases for bacterial signal transduction and antimicrobial peptide resistance. Moreover, as a variety of peptides and proteins are currently being developed as novel antimicrobial agents, the proposed experiments may help in our understanding of how these compounds exert their microbicidal properties. ? ?

Agency
National Institute of Health (NIH)
Institute
National Institute of Allergy and Infectious Diseases (NIAID)
Type
Research Project (R01)
Project #
5R01AI042236-10
Application #
7342095
Study Section
Bacteriology and Mycology Subcommittee 2 (BM)
Program Officer
Alexander, William A
Project Start
1998-02-01
Project End
2008-12-31
Budget Start
2008-01-01
Budget End
2008-12-31
Support Year
10
Fiscal Year
2008
Total Cost
$205,102
Indirect Cost
Name
Washington University
Department
Microbiology/Immun/Virology
Type
Schools of Medicine
DUNS #
068552207
City
Saint Louis
State
MO
Country
United States
Zip Code
63130
May, John F; Groisman, Eduardo A (2013) Conflicting roles for a cell surface modification in Salmonella. Mol Microbiol 88:970-83
Townsend 2nd, Guy E; Raghavan, Varsha; Zwir, Igor et al. (2013) Intramolecular arrangement of sensor and regulator overcomes relaxed specificity in hybrid two-component systems. Proc Natl Acad Sci U S A 110:E161-9
Choi, Jeongjoon; Groisman, Eduardo A (2013) The lipopolysaccharide modification regulator PmrA limits Salmonella virulence by repressing the type three-secretion system Spi/Ssa. Proc Natl Acad Sci U S A 110:9499-504
Groisman, Eduardo A; Hollands, Kerry; Kriner, Michelle A et al. (2013) Bacterial Mg2+ homeostasis, transport, and virulence. Annu Rev Genet 47:625-46
Kato, Akinori; Chen, H Deborah; Latifi, Tammy et al. (2012) Reciprocal control between a bacterium's regulatory system and the modification status of its lipopolysaccharide. Mol Cell 47:897-908
Yeo, Won-Sik; Zwir, Igor; Huang, Henry V et al. (2012) Intrinsic negative feedback governs activation surge in two-component regulatory systems. Mol Cell 45:409-21
Chen, H Deborah; Jewett, Mollie W; Groisman, Eduardo A (2012) An allele of an ancestral transcription factor dependent on a horizontally acquired gene product. PLoS Genet 8:e1003060
Jarvik, Tyler; Smillie, Chris; Groisman, Eduardo A et al. (2010) Short-term signatures of evolutionary change in the Salmonella enterica serovar typhimurium 14028 genome. J Bacteriol 192:560-7
Mitrophanov, Alexander Y; Groisman, Eduardo A (2010) Response acceleration in post-translationally regulated genetic circuits. J Mol Biol 396:1398-409
Raghavan, Varsha; Groisman, Eduardo A (2010) Orphan and hybrid two-component system proteins in health and disease. Curr Opin Microbiol 13:226-31

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