Pseudomonas aeruginosa can cause sight-threatening corneal infection. The emergence of multiple antibiotic resistance to this organism suggests that new approaches are needed for control of Pseudomonas aeruginosa infections. In previous studies, the investigator has demonstrated that invasive Pseudomonas aeruginosa strains can invade corneal epithelial cells, break out of the endocytic vacuole, replicate within these cells, and eventually they kill the host cell. The long-term goal of this project is to determine if blocking corneal cell invasion by Pseudomonas aeruginosa could be used for therapeutic or preventative intervention. To determine the mechanisms involved in bacterial invasion and their role in disease, the following hypothesis will be tested: specific bacterial genes modulate Pseudomonas aeruginosa invasion and internalization of this pathogen involves exploitation of host cell focal adhesion complex (FAC) signaling.
Specific aim 1 is to identify specific bacterial genes that modulate Pseudomonas aeruginosa invasion, and to test the virulence of mutants and/or transconjugants that are altered in their ability to invade in vivo.
Specific aim 2 is to determine the role of FAC signaling in invasion in vitro and in vivo. The proposed studies will provide new insight into the mechanisms of corneal cell invasion by Pseudomonas aeruginosa and of the role of invasion in disease, which could lead to new strategies for treating Pseudomonas aeruginosa ocular and non-ocular infections.

Agency
National Institute of Health (NIH)
Institute
National Eye Institute (NEI)
Type
Research Project (R01)
Project #
2R01EY011221-04A1
Application #
2861437
Study Section
Visual Sciences C Study Section (VISC)
Project Start
1995-07-01
Project End
2003-09-29
Budget Start
1999-09-30
Budget End
2000-09-29
Support Year
4
Fiscal Year
1999
Total Cost
Indirect Cost
Name
University of California Berkeley
Department
Type
Schools of Optometry/Ophthalmol
DUNS #
094878337
City
Berkeley
State
CA
Country
United States
Zip Code
94704
Smith, Benjamin; Li, Jianfang; Metruccio, Matteo et al. (2018) Quantification of Bacterial Twitching Motility in Dense Colonies Using Transmitted Light Microscopy and Computational Image Analysis. Bio Protoc 8:
Wu, Yvonne T; Truong, Tan N; Tam, Connie et al. (2018) Impact of topical corticosteroid pretreatment on susceptibility of the injured murine cornea to Pseudomonas aeruginosa colonization and infection. Exp Eye Res 179:1-7
Hritonenko, Victoria; Metruccio, Matteo; Evans, David et al. (2018) Epithelial cell lysates induce ExoS expression and secretion by Pseudomonas aeruginosa. FEMS Microbiol Lett 365:
Wan, Stephanie J; Sullivan, Aaron B; Shieh, Peyton et al. (2018) IL-1R and MyD88 Contribute to the Absence of a Bacterial Microbiome on the Healthy Murine Cornea. Front Microbiol 9:1117
Kroken, Abby R; Chen, Camille K; Evans, David J et al. (2018) The Impact of ExoS on Pseudomonas aeruginosa Internalization by Epithelial Cells Is Independent of fleQ and Correlates with Bistability of Type Three Secretion System Gene Expression. MBio 9:
Jolly, Amber L; Agarwal, Paresh; Metruccio, Matteo M E et al. (2017) Corneal surface glycosylation is modulated by IL-1R and Pseudomonas aeruginosa challenge but is insufficient for inhibiting bacterial binding. FASEB J 31:2393-2404
Wu, Yvonne T; Tam, Connie; Zhu, Lucia S et al. (2017) Human Tear Fluid Reduces Culturability of Contact Lens-Associated Pseudomonas aeruginosa Biofilms but Induces Expression of the Virulence-Associated Type III Secretion System. Ocul Surf 15:88-96
Metruccio, Matteo M E; Evans, David J; Gabriel, Manal M et al. (2016) Pseudomonas aeruginosa Outer Membrane Vesicles Triggered by Human Mucosal Fluid and Lysozyme Can Prime Host Tissue Surfaces for Bacterial Adhesion. Front Microbiol 7:871
Wu, Yvonne T; Zhu, Lucia S; Tam, K P Connie et al. (2015) Pseudomonas aeruginosa Survival at Posterior Contact Lens Surfaces after Daily Wear. Optom Vis Sci 92:659-64
Jolly, Amber L; Takawira, Desire; Oke, Olufolarin O et al. (2015) Pseudomonas aeruginosa-induced bleb-niche formation in epithelial cells is independent of actinomyosin contraction and enhanced by loss of cystic fibrosis transmembrane-conductance regulator osmoregulatory function. MBio 6:e02533

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