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Can Biofilm Be Reversed Through Quorum Sensing in Pseudomonas aeruginosa?
1State Key Laboratory of Non-Food Biomass and Enzyme Technology, National Engineering Research Center for Non-Food Biorefinery, Guangxi Key Laboratory of Biorefinery, Guangxi Biomass Engineering Technology Research Center, Guangxi Academy of Sciences, Nanning, China.
Abstract:
Pseudomonas aeruginosa is a Gram-negative bacterium causing diseases in plants, animals, and humans, and its drug resistance is a major concern in medical care. Biofilms play an important role in P. aeruginosa drug resistance. Three factors are most important to induce biofilm: quorum sensing (QS), bis-(3'-5')-cyclic diguanosine monophosphate (c-di-GMP), and small RNAs (sRNAs). P. aeruginosa has its own specific QS system (PQS) besides two common QS systems, LasI-LasR and RhlI-RhlR, in bacteria. PQS is interesting not only because there is a negative regulation from RhlR to pqsR but also because the null mutation in PQS leads to a reduced biofilm formation. Furthermore, P. aeruginosa dispersed cells have physiological features that are distinct between the planktonic cells and biofilm cells. In response to a low concentration of c-di-GMP, P. aeruginosa cells can disperse from the biofilms to become planktonic cells. These raise an interesting hypothesis of whether biofilm can be reversed through the QS mechanism in P. aeruginosa. Although a single factor is certainly not sufficient to prevent the biofilm formation, it necessarily explores such possibility. In this hypothesis, the literature is analyzed to determine the negative regulation pathways, and then the transcriptomic data are analyzed to determine whether this hypothesis is workable or not. Unexpectedly, the transcriptomic data reveal a negative regulation between lasI and psqR. Also, the individual cases from transcriptomic data demonstrate the negative regulations of PQS with laslI, laslR, rhlI, and rhlR under different experiments. Based on our analyses, possible strategies to reverse biofilm formation are proposed and their clinic implications are addressed.
Insights
This study explores reversing Pseudomonas aeruginosa biofilms by manipulating quorum sensing (QS) systems. Transcriptomic data reveal novel negative regulations, suggesting potential strategies to combat drug-resistant bacterial biofilms.
Area of Science:
- Microbiology
- Bacterial Pathogenesis
- Molecular Biology
Background:
- Pseudomonas aeruginosa biofilms contribute significantly to antibiotic resistance in clinical settings.
- Biofilm formation is regulated by quorum sensing (QS), cyclic diguanosine monophosphate (c-di-GMP), and small RNAs (sRNAs).
- P. aeruginosa possesses multiple QS systems, including LasI-LasR, RhlI-RhlR, and the specific PQS system.
Purpose of the Study:
- To investigate the hypothesis that biofilm formation in P. aeruginosa can be reversed through modulation of QS mechanisms.
- To identify and analyze negative regulatory pathways within P. aeruginosa QS systems.
- To assess the feasibility of reversing biofilm formation using transcriptomic data.
Main Methods:
- Literature analysis to identify negative QS regulatory pathways.
- Transcriptomic data analysis to evaluate the hypothesis of biofilm reversal.
- Examination of regulatory interactions between QS components and biofilm formation.
Main Results:
- Transcriptomic data unexpectedly revealed a negative regulation between lasI and pqsR.
- Negative regulations were observed between the PQS system and lasI, lasR, rhlI, and rhlR under various experimental conditions.
- Dispersed P. aeruginosa cells exhibit distinct physiological characteristics compared to planktonic and biofilm cells.
Conclusions:
- Novel negative regulatory interactions within P. aeruginosa QS systems were identified.
- The findings support the potential for manipulating QS to reverse biofilm formation.
- Proposed strategies for reversing biofilm formation and their clinical implications are discussed.
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