Autoinducer-2 functions as both a quorum-sensing and metabolic signal in Escherichia coli

ABSTRACT Bacteria integrate diverse environmental signals to coordinate behavior, yet the relationship between nutrient sensing and quorum sensing (QS) remains incompletely understood. Autoinducer-2 (AI-2) is unique among QS signals in that its production is tightly linked to central metabolism, raising fundamental questions about the boundary between metabolic and signaling functions. In Escherichia coli , AI-2 coordinates collective behaviors through the lsr operon, whose expression is controlled not only by the AI-2-responsive repressor LsrR but also by the cAMP receptor protein (CRP), placing it at the intersection of carbon sensing and population-level signaling. While inhibition of lsr expression by PTS sugars was previously established, we show that non-PTS sugars similarly suppress lsr expression through CRP, further decoupling QS activation from cell density and coupling it to carbon source availability. Genomic analysis across Enterobacteriaceae reveals that CRP binding sites in the lsr promoter are broadly conserved, indicating that metabolic modulation of AI-2 signaling is an ancestral regulatory feature. Using a FRET-based biosensor, we further show that AI-2 uptake modulates intracellular cAMP levels similarly to non-PTS carbon transport, suggesting AI-2 may have originally functioned as a nutrient substrate. Additionally, we isolated soil- and phyllosphere-associated bacteria capable of utilizing AI-2 as a sole carbon source. Interestingly, this capacity seems to have evolved independently from the ability to produce and metabolize AI-2 through the LuxS/Lsr pathway. Overall, our findings reveal an underappreciated metabolic basis of AI-2 QS and suggest that, in some species, nutrient utilization and intercellular signaling may have diverged from a common ancestral pathway. IMPORTANCE Quorum sensing allows bacteria to coordinate collective behaviors by detecting secreted signaling molecules, yet the evolutionary origins of these systems remain poorly understood. AI-2, one of the most broadly conserved bacterial signals, is derived from central metabolism and processed by machinery in Escherichia coli that strikingly resembles a sugar utilization system. Here, we show that nutrient availability overrides cell density as the primary determinant of AI-2 responsiveness, that this regulatory logic is conserved among Enterobacteriaceae genomes, and that environmental bacteria can grow on AI-2 as a sole carbon source. These findings reframe AI-2 as a signal embedded within, and potentially evolved from, nutrient-sensing pathways, with direct implications for understanding how byproducts of cellular metabolism can acquire signaling functions.

Authors

Institutions

Publication Details

Journal
Applied and Environmental Microbiology
Published
2026-10-05
DOI
https://doi.org/10.1128/aem.01160-26
Primary Topic
Bacterial biofilms and quorum sensing
Type
article
Field-Weighted Citation Impact
0.00

Funders

Controls
|||
ALL TIME
JAN
FEB
MAR
APR
MAY
JUN
JUL
AUG
SEP
OCT
article

Autoinducer-2 functions as both a quorum-sensing and metabolic signal in Escherichia coli

Christian von Mering, Christopher Schubert, Assa Yeroslaviz, Leanid Laganenka et al.
Applied and Environmental Microbiology
Bacterial biofilms and quorum sensing
article

Autoinducer-2 functions as both a quorum-sensing and metabolic signal in Escherichia coli

Christian von Mering, Christopher Schubert, Assa Yeroslaviz, Leanid Laganenka, Lukas Malfertheiner, Xuanlin Chen, Nicolas C Näpflin, Rin Ho Kim, Noémie Godrie
article en

Abstract

ABSTRACT Bacteria integrate diverse environmental signals to coordinate behavior, yet the relationship between nutrient sensing and quorum sensing (QS) remains incompletely understood. Autoinducer-2 (AI-2) is unique among QS signals in that its production is tightly linked to central metabolism, raising fundamental questions about the boundary between metabolic and signaling functions. In Escherichia coli , AI-2 coordinates collective behaviors through the lsr operon, whose expression is controlled not only by the AI-2-responsive repressor LsrR but also by the cAMP receptor protein (CRP), placing it at the intersection of carbon sensing and population-level signaling. While inhibition of lsr expression by PTS sugars was previously established, we show that non-PTS sugars similarly suppress lsr expression through CRP, further decoupling QS activation from cell density and coupling it to carbon source availability. Genomic analysis across Enterobacteriaceae reveals that CRP binding sites in the lsr promoter are broadly conserved, indicating that metabolic modulation of AI-2 signaling is an ancestral regulatory feature. Using a FRET-based biosensor, we further show that AI-2 uptake modulates intracellular cAMP levels similarly to non-PTS carbon transport, suggesting AI-2 may have originally functioned as a nutrient substrate. Additionally, we isolated soil- and phyllosphere-associated bacteria capable of utilizing AI-2 as a sole carbon source. Interestingly, this capacity seems to have evolved independently from the ability to produce and metabolize AI-2 through the LuxS/Lsr pathway. Overall, our findings reveal an underappreciated metabolic basis of AI-2 QS and suggest that, in some species, nutrient utilization and intercellular signaling may have diverged from a common ancestral pathway. IMPORTANCE Quorum sensing allows bacteria to coordinate collective behaviors by detecting secreted signaling molecules, yet the evolutionary origins of these systems remain poorly understood. AI-2, one of the most broadly conserved bacterial signals, is derived from central metabolism and processed by machinery in Escherichia coli that strikingly resembles a sugar utilization system. Here, we show that nutrient availability overrides cell density as the primary determinant of AI-2 responsiveness, that this regulatory logic is conserved among Enterobacteriaceae genomes, and that environmental bacteria can grow on AI-2 as a sole carbon source. These findings reframe AI-2 as a signal embedded within, and potentially evolved from, nutrient-sensing pathways, with direct implications for understanding how byproducts of cellular metabolism can acquire signaling functions.

Applied and Environmental Microbiology
SIB Swiss Institute of Bioinformatics (CH), Max Planck Society (DE), University of Zurich (CH), ETH Zurich (CH), Institute for Biomedical Engineering (CH), Max Planck Institute of Biochemistry (DE), Max Planck Institute for Terrestrial Microbiology (DE)
Deutsche Forschungsgemeinschaft
Openalex Percentile: Top 61%
Bacterial biofilms and quorum sensing
AI Navigator

Ask Laika to Summarize, Analyze, and Connect papers live on the map.

Summarize Papers & Methodologies

Extract key findings, datasets, and comparative methods across publications.

Benchmark Rankings & Visual Analytics

Rank top research institutions, authors, funders, topics, and journals by Field-Weighted Citation Impact (FWCI) and paper volume with instant charts.

Connect Distant Disciplines

Bridge topological clusters on the map to find hidden collaborative intersections.