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Gomez, A.-C.

Publications and source records attributed to Gomez, A.-C..

3 recordsLinked to original sources

DSF signalling integrates c-di-GMP and σ54 pathways with metabolic reprogramming to control Stenotrophomonas maltophilia pathogenicity and antibiotic resistance

Stenotrophomonas maltophilia is an opportunistic, multidrug-resistant pathogen whose pathogenicity is mainly driven by biofilm formation, extracellular enzyme production, surface adhesins and motility. In addition, a diffusible signal factor (DSF)-mediated quorum sensing (QS) system encoded by the rpf gene cluster coordinates collective behaviours and contributes to pathogenicity. While DSF signalling has been extensively studied in plant-pathogenic xanthomonads, its integration with transcriptional and metabolic regulation in human pathogens remains poorly defined. Here, we investigate how the DSF/Rpf system shapes virulence and adaptation in S. maltophilia by modulating downstream regulatory and metabolic pathways. Cell density-dependent activation of the RpfC-RpfG two-component system reduces intracellular c-di-GMP levels, promoting a growth phase-dependent switch between biofilm formation and motile lifestyle. This transition requires the global transcriptional regulator Clp, which functions as a transcriptional activator when unbound to c-di-GMP. Clp controls genes involved in motility, adhesion, and the alternative sigma factor {sigma} RpoN2, which inversely regulates flagellar motility and type IV pilus-mediated adhesion. Transcriptomic profiling uncovered additional DSF-dependent regulatory circuits linking quorum sensing to metabolism and antibiotic resistance. Notably, at the onset of stationary phase, the {sigma} paralog RpoN1 acts together with RpfF and RpfB to fine-tune DSF production through fatty acid and central carbon metabolism, coupling QS output to cellular metabolic state. This metabolic control constrains DSF output and impacts colistin susceptibility, highlighting clinically relevant consequences of DSF homeostasis. Together, these findings define a species-specific DSF regulatory architecture in S. maltophilia that integrates quorum sensing, second-messenger signalling, transcriptional regulation, and metabolic reprogramming to promote survival and pathogenicity. Author SummaryStenotrophomonas maltophilia is a bacterial pathogen that causes infections, particularly in hospitalized and immunocompromised patients. Its clinical impact is driven by intrinsic multidrug resistance and the ability to switch between a free-swimming state and a surface-attached biofilm state. Biofilms protect bacteria from antibiotics and the immune system, making infections persistent, while motility promotes spread and colonization. Understanding how S. maltophilia controls this balance is critical for combating infection. Like many bacteria, S. maltophilia uses chemical communication, known as quorum sensing, to sense population density and coordinate behaviours linked to virulence and survival. This system is based on the autoinducer DSF, allowing bacteria to decide when to move, attach, or alter metabolism. In this work, we show that DSF-based quorum sensing activates a regulatory cascade that modulates levels of the signalling molecule c-di-GMP, triggering a switch between biofilm formation and motility. This switch relies on global regulators that control genes involved in movement, adhesion, metabolism, and antibiotic resistance. We also uncover a metabolic feedback mechanism that fine-tunes DSF concentration, impacting bacteria state and antibiotic susceptibility. These findings reveal how bacterial communication, metabolism, and pathogenic behaviour are linked in S. maltophilia, highlighting opportunities for antimicrobial intervention.

microbiology↗

Comparative mortality of dominant Staphylococcus aureus lineages in human bacteremia and animal infection models

Staphylococcus aureus is a major cause of severe infections including infective endocarditis, but lineage-specific virulence determinants remain unclear. We analyzed 77 S. aureus bacteremic isolates from major lineages using phenotypic assays, infection models, and transcriptomics. Our results revealed significant heterogeneity in S. aureus pathogenicity. ST398 isolates exhibited heightened virulence, characterized by increased hemolysin production, whereas CC30 strains showed reduced growth, biofilm formation, and infectivity. Notably, the ST398 agrC mutant Sau7 exhibited unique phenotypic behavior, with high biofilm production and decreased virulence in Galleria mellonella larvae model. Infection studies in the rabbit experimental endocarditis model showed increased vegetation size and bacterial load in Sau7-infected animals, highlighting the role of agr system in S. aureus colonization and biofilm formation. Transcriptomic analysis identified key pathways, including quorum sensing systems and hemolysins, driving virulence in ST398 strains. These findings provide insights into the lineage-specific virulence mechanisms and the multifaceted nature of S. aureus pathogenicity.

microbiology↗

A TetR-like transcriptional regulator in Stenotrophomonas maltophilia involved in fatty acid metabolism is controlled by quorum sensing signals

Stenotrophomonas maltophilia is an environmental bacterium and it is also an emerging opportunistic multidrug-resistant pathogen. It uses the endogenous DSF quorum sensing (QS) system to coordinate population behaviors and to regulate virulence processes but can also respond to exogenous AHL signals produced by neighboring bacteria. Whole-transcriptome sequencing analyses were performed for S. maltophilia K279a in the exponential and stationary phases as well as in exponential cultures after treatment with exogenous DSF or AHLs. The results revealed that at the beginning of the stationary phase 1673 genes are differentially expressed. COG analysis showed that most of these genes were enriched for energetic metabolism processes and regulation of gene expression. After adding DSF or AHLs, 28 or 82 genes were found deregulated, respectively, 22 of which upregulated by both autoinducers. Interestingly, among these later genes, 14 were also upregulated in the stationary phase. Gene functions regulated by all conditions include lipid and amino acid metabolism, stress response and signal transduction, nitrogen and iron metabolism, and adaptation to microoxic conditions. Among the common top upregulated QS core genes, a putative TetR-like regulator (Smlt2053) was selected for functional characterization. This regulator has been shown to control a narrow regulon, including its own operon. It was found to sense long-chain fatty acids, including the QS signal DSF, and regulate a {beta}-oxidation catabolic pathway. Overall, our findings provide clues on the role that the QS could have in S. maltophilia in the transition from the exponential to the stationary phase and bacterial fitness under high-density growth. IMPORTANCEThe quorum sensing system in Stenotrophomonas maltophilia, in addition to coordinating the bacterial population, controls virulence-associated phenotypes, such as biofilm formation, motility, protease production, and antibiotic resistance mechanisms. Biofilm formation is frequently associated with the persistence and chronic nature of nosocomial infections. In addition, biofilms exhibit high resistance to antibiotics, making treatment of these infections extremely difficult. The importance of studying the metabolic and regulatory systems controlled by quorum sensing autoinducers will make it possible to discover new targets to control pathogenicity mechanisms in S. maltophilia.

microbiology↗