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Published on: December 14, 2020
A putative lipase affects Pseudomonas aeruginosa biofilm matrix production
Somalisa Pan1, Mary Erdmann1, Julia Terrell1
1Department of Microbiology and Molecular Genetics, Oklahoma State University , Stillwater, Oklahoma, USA.
Abstract:
Pseudomonas aeruginosa is an opportunistic pathogen that is widely known for infecting patients with underlying conditions. This species often survives antibiotic therapy by forming biofilms, in which the cells produce a protective extracellular matrix. P. aeruginosa also produces virulence factors that enhance its ability to cause disease. One signaling pathway that influences virulence is the nitrogen-related phosphotransferase system (Nitro-PTS), which consists of an initial phosphotransferase, PtsP, a phosphocarrier, PtsO, and a terminal phosphate receptor, PtsN. The physiological role of the Nitro-PTS in P. aeruginosa is poorly understood. However, PtsN, when deprived of its upstream phosphotransfer proteins, has an antagonistic effect on biofilm formation. We thus conducted a transposon mutagenesis screen in an unphosphorylated-PtsN (i.e., ∆ptsP) background to identify downstream proteins with unacknowledged roles in PtsN-mediated biofilm suppression. We found an unstudied gene, PA14_04030, whose disruption restored biofilm production. This gene encodes a predicted phospholipase with signature alpha/beta hydrolase folds and a lipase signature motif with an active-site Ser residue. Hence, we renamed the gene bipL, for biofilm-impacting phospholipase. Deletion of bipL in a ∆ptsP background increased biofilm formation, supporting the idea that BipL is responsible for reducing biofilm formation in strains with unphosphorylated PtsN. Moreover, substituting the putative catalytic Ser for Ala phenocopied bipL deletion, indicating that this residue is important for the biofilm-suppressive activity of BipL in vivo. As our preliminary data suggest that BipL is a lipase, we performed lipidomics to detect changes in the lipid profile due to bipL deletion and found changes in some lipid species. IMPORTANCE Biofilm formation by bacteria occurs when cells secrete an extracellular matrix that holds them together and shields them from environmental insults. Biofilms of bacterial opportunistic human pathogens such as Pseudomonas aeruginosa pose a substantial challenge to clinical antimicrobial therapy. Hence, a more complete knowledge about the bacterial factors that influence and regulate production of the biofilm matrix is one key to formulate more effective therapeutic strategies. In this study, we screen for factors that are important for reducing biofilm matrix production in certain genetic backgrounds. We unexpectedly found a gene encoding a putative lipase enzyme and showed that its predicted catalytic site is important for its ability to reduce biofilm formation. Our findings suggest that lipase enzymes have previously uncharacterized functions in biofilm matrix regulation.
Insights
Pseudomonas aeruginosa biofilm formation is suppressed by a lipase enzyme, BipL, which impacts the nitrogen-related phosphotransferase system (Nitro-PTS). Disrupting BipL restores biofilm production, revealing a new role for lipases in regulating bacterial biofilms.
Area of Science:
- Microbiology
- Bacterial Pathogenesis
- Molecular Biology
Background:
- Pseudomonas aeruginosa is an opportunistic pathogen known for forming biofilms, which contribute to antibiotic resistance.
- The nitrogen-related phosphotransferase system (Nitro-PTS) influences virulence, but its role in biofilm formation is unclear.
- Unphosphorylated PtsN antagonizes biofilm formation, suggesting downstream regulators.
Purpose of the Study:
- To identify downstream proteins involved in PtsN-mediated biofilm suppression in Pseudomonas aeruginosa.
- To investigate the function of a novel gene, PA14_04030, in biofilm regulation.
Main Methods:
- Transposon mutagenesis screen in a ∆ptsP background to identify genes affecting biofilm formation.
- Gene deletion and site-directed mutagenesis to study the role of PA14_04030 (renamed bipL).
- Lipidomics analysis to assess the impact of bipL deletion on lipid profiles.
Main Results:
- Disruption of the unstudied gene PA14_04030 restored biofilm production in a ∆ptsP mutant.
- PA14_04030, renamed biofilm-impacting phospholipase (bipL), encodes a putative lipase.
- Deletion of bipL increased biofilm formation, and mutation of its catalytic serine residue phenocopied this effect.
- Lipidomics revealed changes in lipid species upon bipL deletion.
Conclusions:
- BipL acts as a suppressor of biofilm formation in Pseudomonas aeruginosa, particularly when PtsN is unphosphorylated.
- The catalytic activity of BipL is crucial for its biofilm-suppressive function.
- This study uncovers a previously unrecognized role for lipase enzymes in the regulation of bacterial biofilm matrix production.
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