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Updated: May 30, 2026

Synthesis and Assay of Vibrio Quorum Sensing Inhibitors
Published on: May 31, 2024
The LuxS-dependent quorum-sensing system regulates early biofilm formation by Streptococcus pneumoniae strain D39
Jorge E Vidal1, Herbert P Ludewick, Rebekah M Kunkel
1Hubert Department of Global Health, Rollins School of Public Health, Emory University, Atlanta, GA 30322, USA. jvidalg@emory.edu
Insights
The Streptococcus pneumoniae luxS quorum-sensing system is crucial for biofilm formation. Disrupting luxS significantly reduces biofilm biomass, highlighting its role in bacterial persistence and infection.
Area of Science:
- Microbiology
- Bacterial Pathogenesis
- Molecular Biology
Background:
- Streptococcus pneumoniae causes significant global child mortality.
- Pneumococcal biofilms contribute to persistent infections in the nasopharynx, lungs, and middle ear.
- The luxS quorum-sensing system's role in pneumococcal biofilms was previously unstudied.
Purpose of the Study:
- To investigate the role of the luxS-controlled quorum-sensing system in Streptococcus pneumoniae biofilm formation.
- To determine if luxS regulates genes associated with biofilm development and virulence.
Main Methods:
- Genetic manipulation of S. pneumoniae D39 strain to create luxS mutants (D39ΔluxS).
- Quantification of biofilm biomass produced by wild-type and mutant strains.
- Complementation studies using plasmids and genomic integration to restore luxS function.
- Analysis of luxS gene transcription and regulation of target genes (lytA, ply).
Main Results:
- D39ΔluxS mutants exhibited an approximately 80% reduction in biofilm biomass compared to wild-type.
- Complementation with luxS restored wild-type biofilm levels.
- A secreted factor (AI-2) from wild-type restored the biofilm phenotype in luxS mutants.
- LuxS regulates the transcription of lytA (autolysin) and ply (pneumolysin) during early growth.
Conclusions:
- The luxS-controlled quorum-sensing system is a critical regulator of early biofilm formation in Streptococcus pneumoniae.
- LuxS influences biofilm development through regulation of autolysin and pneumolysin expression.
- Targeting the luxS system presents a potential strategy to combat pneumococcal infections.
Abstract:
Streptococcus pneumoniae is the leading cause of death in children worldwide and forms highly organized biofilms in the nasopharynx, lungs, and middle ear mucosa. The luxS-controlled quorum-sensing (QS) system has recently been implicated in virulence and persistence in the nasopharynx, but its role in biofilms has not been studied. Here we show that this QS system plays a major role in the control of S. pneumoniae biofilm formation. Our results demonstrate that the luxS gene is contained by invasive isolates and normal-flora strains in a region that contains genes involved in division and cell wall biosynthesis. The luxS gene was maximally transcribed, as a monocistronic message, in the early mid-log phase of growth, and this coincides with the appearance of early biofilms. Demonstrating the role of the LuxS system in regulating S. pneumoniae biofilms, at 24 h postinoculation, two different D39ΔluxS mutants produced ∼80% less biofilm biomass than wild-type (WT) strain D39 did. Complementation of these strains with luxS, either in a plasmid or integrated as a single copy in the genome, restored their biofilm level to that of the WT. Moreover, a soluble factor secreted by WT strain D39 or purified AI-2 restored the biofilm phenotype of D39ΔluxS. Our results also demonstrate that during the early mid-log phase of growth, LuxS regulates the transcript levels of lytA, which encodes an autolysin previously implicated in biofilms, and also the transcript levels of ply, which encodes the pneumococcal pneumolysin. In conclusion, the luxS-controlled QS system is a key regulator of early biofilm formation by S. pneumoniae strain D39.
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