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Lotoux, A.

Publications and source records attributed to Lotoux, A..

2 recordsLinked to original sources

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↗

The multiplicity of Thioredoxin systems meets the specific needs of Clostridia

Oxidative stress is a highly common stress for cells, which targets proteins with oxidation of cysteine residues. The thioredoxin (Trx) system, which is a ubiquitous system for thiol- and protein-repair, is composed of a thioredoxin (TrxA) and a thioredoxin-reductase (TrxB). TrxAs reduce disulfide bonds of oxidized proteins and are then usually recycled by a single pleiotropic NAD(P)H-dependent TrxB (NTR). However, some Clostridia have also ferredoxin-dependent TrxBs. In this work, we first analyzed the composition of Trx systems across Bacteria. Most of bacteria have only one NTR, but organisms in some Phyla including Firmicutes have several TrxBs. In Firmicutes, this multiplicity of TrxBs is observed only in Clostridia. We thus used Clostridioides difficile as a model to investigate the biological relevance of TrxB multiplicity by studying the physiological roles of the Trx systems in this gut pathogen. Three TrxAs and three TrxBs are present in the 630{Delta}erm strain. We showed that two systems were involved in response to infection-related stresses, allowing survival of vegetative cells to exposure to oxygen, inflammation-related molecules and bile salts. A supplementary TrxB copy present in some C. difficile strains also contributes to this stress-response arsenal. One of the conserved stress-response Trx system was also found to be present in the spore via a dual transcriptional control by different sigma factors. This system contributes to spore survival to hypochlorite and ensure proper germination in the presence of oxygen. Finally, we found that the third Trx system was contributing to sporulation. This involvement was likely linked to the recycling of the glycine-reductase, a Stickland pathway enzyme that allows consumption of glycine, a spore co-germinant. Altogether, our results showed that the multiplicity of Trx systems produced under the control of different regulatory signals and networks and the diversity of TrxBs meet specific needs of Clostridia, i.e., adaptation to strong stress exposure, sporulation and Stickland pathways. More broadly, this multiplicity responds to cell compartmentation and differentiation, which can be transposed to other multiple-TrxBs organisms such as Cyanobacteria or eukaryotes.

microbiology↗