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Guillier, L.

Publications and source records attributed to Guillier, L..

3 recordsLinked to original sources

Spatial growth in food-like matrices differentially modulates food-related stress responses but enhances digestive tolerance in major foodborne pathogens

Foods are spatially structured and heterogeneous matrices in which microbial pathogens predominantly grow as immobilised microcolonies rather than planktonic free cells. However, most predictive microbiology and risk assessment models rely on homogeneous liquid cultures, potentially overlooking spatial effects on stress adaptation. Here, we investigated how growth within food-like semi-solid matrices influences stress adaptation and digestive tolerance of major foodborne pathogens. We compared planktonic and spatialised lifestyles across multiple species exposed to salt and organic acid stresses. Spatial growth profoundly altered growth dynamics in a stress- and species-dependent manner. Notably, spatial growth markedly enhanced tolerance to simulated gastrointestinal stresses in vitro, particularly under acidic conditions. This protective effect was further confirmed in vivo within the acidic midgut of Hermetia illucens larvae. Our findings demonstrate that spatial organisation generates distinct physiological states that increase pathogen resilience, highlighting the need to integrate spatialisation into predictive models and quantitative microbial risk assessment.

microbiology↗

Large-scale phenotyping and comparative genomics reveal genetic features of Listeria persistence in epithelial cells

During infection in epithelial cells, after invading the cytosol, multiplying, and spreading, Listeria monocytogenes (Lm) ceases to produce ActA and becomes trapped in Listeria-containing vacuoles (LisCVs). These persistence acidic vacuoles harbor bacterial subpopulations that resist to stress in a metabolically dormant state. Although LisCVs have been proposed as a hallmark of Lm persistence in epithelial cells, their prevalence across strains and the bacterial factors underlying their formation remain uncharacterized. Given the significant genetic diversity within the species, it is important to consider this variability when studying persistence phenotype. Therefore, we screened over one hundred Lm isolates spanning two major evolutionary lineages and belonging to 23 clonal complexes from diverse ecological origins. Strikingly, the vast majority of strains, including both clinical and environmental isolates, were capable of forming LisCVs, suggesting that vacuolar persistence is a widespread and conserved feature of Lm pathogenesis. Nevertheless, among the group of hypo-virulent strains mostly associated with food and carrying a truncated InlA, we identified four isolates with an altered persistence phenotype. Two of them showed defects in the early stages of infection and carried mutations in key virulence genes (hly and gshF). The other two, instead, were specifically affected in the persistence by showing a reduced ability to form LisCVs. Comparative genomic analysis revealed that a mutation in the folP gene, required for folate biosynthesis, was responsible for impaired persistence. Live-imaging and microscopy analysis highlighted a reduced bacterial motility and intercellular spreading of the folP mutant, although the level of ActA at the bacterial surface was increased. Together, our work identifies folate biosynthesis as a critical metabolic pathway governing Lm persistence by regulating ActA levels and activity. Downregulation of ActA at the bacterial surface is therefore a crucial event for the establishment of the intracellular persistent niche during long-term infection of epithelial cells. Author SummaryLong regarded as a strictly cytosolic pathogen, Listeria monocytogenes is now revealing a dual lifestyle that includes intracellular vacuoles. Recent evidence shows that in epithelial cells this bacterium can enter a dormant state within acidic vacuoles, termed LisCVs, potentially contributing to silent carriage and antibiotic treatment failure. Here, we reveal that vacuolar persistence is a widespread and conserved feature among diverse Listeria strains. Strikingly, we identify folate metabolism as a key regulator of this phenotypic switch, linking metabolic cues to the shutdown of bacterial motility. Our findings uncover a novel connection between central metabolism and intracellular niche adaptation, shedding new light on how Listeria survives and hides within the host.

microbiology↗

Guided assembly of multispecies positive biofilms targeting undesirable bacteria

The use of synthetic microbial communities (SynComs) engineered to form positive biofilms that prevent the settlement of harmful bacteria is emerging as a promising strategy in biotechnology, particularly in reducing reliance on chemical antimicrobials. Despite this potential, the rationale for selecting specific strains in SynComs and the mechanisms underlying their antagonistic effects remains insufficiently understood. In this study, we present a bottom-up approach integrating live-cell imaging with high-throughput analysis of multi-strain biofilms across diverse scenarios. Through this method, we identified beneficial strains based on their superior ability to exclude undesirable bacteria and form mixed biofilms. Notably, our findings revealed that competitive strains against undesirable bacteria could also exclude other beneficial strains, emphasising the need for compatibility control in SynComs design. SynComs composed of B. velezensis and Pediococcus spp. demonstrated enhanced pathogen exclusion compared to single strains. Temporal analysis of biofilm interactions, supported by mathematical models, showed that pathogen exclusion was primarily driven by nutritional competition (Jameson effect) with additional specific interference mechanisms (prey-predator Lotka-Volterra model). Furthermore, pre-establishing SynComs to surfaces significantly increased pathogen inhibition, indicating a distinct biofilm-associated exclusion effect. These insights offer a framework for rational SynCom design and deepen our understanding of the mechanisms underpinning positive biofilm applications. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=153 SRC="FIGDIR/small/618781v1_ufig1.gif" ALT="Figure 1"> View larger version (47K): org.highwire.dtl.DTLVardef@a8ca36org.highwire.dtl.DTLVardef@173dc16org.highwire.dtl.DTLVardef@1764af2org.highwire.dtl.DTLVardef@1328cfc_HPS_FORMAT_FIGEXP M_FIG C_FIG

microbiology↗