The broad objective of this investigation is to increase our understanding of the pathogenic mechanisms of Pseudomonas aeruginosa in chronic respiratory inspections of cystic fibrosis (CF) patients. The ability of P. aeruginosa to maintain chronic respiratory infections in CF patients is associated with the organism's ability to convert to an alginate-secreting (Alg+) form. Alginate is a capsule-like exopolysaccharide, and its production gives P. aeruginosa a mucoid colony morphology. Using genetic and molecular approaches, this project proposes to elucidate various steps in the pathway of alginate biosynthesis; an alginate gene (algB) cloned from the P. aeruginosa chromosome will be characterized to determine the size and function of the polypeptide product, its cellular localization, regulation and genetic organization. Other genes whose products are directly involved in alginate biosynthesis will be cloned and characterized. Also, this study will determine the nature of the mechanism which activates genes for alginate biosynthesis in P. aeruginosa; these regulatory (algR) genes, recently clone will be physically analyzed to determine the mechanism of alginate conversion. The cis activation by algR of structural and/or regulatory genes involved in alginate production will be examined. In addition, this research endeavor will investigate the nature of the regulatory mechanism responsible for reduced extracellular enzymes in Alg+ strains; gene fusion technology will be employed to determine the effect of the Alg+ trait on protease transcription and secretion.

Agency
National Institute of Health (NIH)
Institute
National Institute of Allergy and Infectious Diseases (NIAID)
Type
Research Project (R01)
Project #
5R01AI019146-10
Application #
3128544
Study Section
Bacteriology and Mycology Subcommittee 2 (BM)
Project Start
1982-09-01
Project End
1994-11-30
Budget Start
1992-12-01
Budget End
1993-11-30
Support Year
10
Fiscal Year
1993
Total Cost
Indirect Cost
Name
University of Tennessee Health Science Center
Department
Type
Schools of Medicine
DUNS #
941884009
City
Memphis
State
TN
Country
United States
Zip Code
38163
Wang, Congzhou; Zolotarskaya, Olga Y; Nair, Sithara S et al. (2016) Real-Time Observation of Antimicrobial Polycation Effects on Escherichia coli: Adapting the Carpet Model for Membrane Disruption to Quaternary Copolyoxetanes. Langmuir 32:2975-84
Silo-Suh, Laura A; Suh, Sang-Jin; Ohman, Dennis E et al. (2015) Complete Genome Sequence of Pseudomonas aeruginosa Mucoid Strain FRD1, Isolated from a Cystic Fibrosis Patient. Genome Announc 3:
Whitney, John C; Whitfield, Gregory B; Marmont, Lindsey S et al. (2015) Dimeric c-di-GMP is required for post-translational regulation of alginate production in Pseudomonas aeruginosa. J Biol Chem 290:12451-62
Wood, Lynn F; Ohman, Dennis E (2015) Cell wall stress activates expression of a novel stress response facilitator (SrfA) under ?22 (AlgT/U) control in Pseudomonas aeruginosa. Microbiology 161:30-40
Baker, Perrin; Ricer, Tyler; Moynihan, Patrick J et al. (2014) P. aeruginosa SGNH hydrolase-like proteins AlgJ and AlgX have similar topology but separate and distinct roles in alginate acetylation. PLoS Pathog 10:e1004334
King, Allison; Chakrabarty, Souvik; Zhang, Wei et al. (2014) High antimicrobial effectiveness with low hemolytic and cytotoxic activity for PEG/quaternary copolyoxetanes. Biomacromolecules 15:456-67
Riley, Laura M; Weadge, Joel T; Baker, Perrin et al. (2013) Structural and functional characterization of Pseudomonas aeruginosa AlgX: role of AlgX in alginate acetylation. J Biol Chem 288:22299-314
Wood, Lynn F; Ohman, Dennis E (2012) Identification of genes in the ?²² regulon of Pseudomonas aeruginosa required for cell envelope homeostasis in either the planktonic or the sessile mode of growth. MBio 3:
Sautter, Robert; Ramos, Damaris; Schneper, Lisa et al. (2012) A complex multilevel attack on Pseudomonas aeruginosa algT/U expression and algT/U activity results in the loss of alginate production. Gene 498:242-53
Paletta, Janice L; Ohman, Dennis E (2012) Evidence for two promoters internal to the alginate biosynthesis operon in Pseudomonas aeruginosa. Curr Microbiol 65:770-5

Showing the most recent 10 out of 39 publications