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Biology subjects

Maire, A.

Publications and source records attributed to Maire, A..

3 recordsLinked to original sources

Decoding E. coli's Gut Survival Strategies: A CRISPRi Approach Across Diets, Inflammatory Environment and Strains

Escherichia coli, a ubiquitous member of the mammalian gut microbiota, exhibits remarkable genetic diversity underpinning its commensal or pathogenic lifestyles. Deciphering the precise genetic determinants enabling E. colis adaptation within the complex and dynamic intestinal environment is critical for understanding host-microbe symbiosis and enteric disease pathogenesis. Here, we establish an in vivo CRISPR interference (CRISPRi) platform that leverages bacterial gene fitness profiles as a high-resolution functional reporter to define the molecular niche and selective forces encountered by E. coli within mice harboring a defined minimal microbial community (OligoMM12). Our investigation revealed that dietary regimens profoundly reshape E. colis metabolic landscape and that the profile of essential genes help identify cross-feeding interactions. Comparative screens across a laboratory strain (MG1655), a Uropathogenic, and Adherent-Invasive E. coli (AIEC), identify distinct genetic requirements for intestinal colonization, highlighting divergent motility, stress response, and respiration strategies. In a host inflammatory environment, we find that the AIEC strain LF82 alters its colonization pattern, shifting towards the small intestine, and adapts to the inflammatory environment by remodeling its metabolism and stress responses. Notably, we uncover a critical role for mobile genetic elements, with the observation that inflammation triggers the induction of the Gally prophage which is beneficial for fitness in the healthy gut but becomes detrimental during inflammation. These findings provide a high-resolution genetic atlas of E. colis functional adaptation and demonstrate the utility of functional genomics to probe the gut environment itself.

microbiology↗

Harnessing Diversity Generating Retroelements for in vivo targeted hyper-mutagenesis

The rapid evolution of novel functions requires targeted mutagenesis to avoid harmful mutations. Diversity-generating retroelements (DGRs) are natural systems that accelerate the evolution of diverse bacterial functions through targeted hypermutation. Here, we establish a method utilizing DGRs coupled to recombineering (DGRec), enabling the diversification of any sequence of interest in E. coli. DGRec can programmably diversify specific residues by leveraging the high error rate of the DGR reverse-transcriptase at adenines. We perform a detailed characterization of the reverse-transcriptase biases, highlighting how it maximizes the exploration of the sequence space while avoiding nonsense mutations. Applied to the phage {lambda} GpJ receptor binding domain, and to its lamB receptor, DGRec created diverse variants enabling E. coli to evade infection, and {lambda} to reinfect lamB mutants.

synthetic biology↗

Fine-tuning of a CRISPRi screen in the seventh pandemic Vibrio cholerae

Vibrio cholerae O1 El Tor, the etiological agent responsible for the last cholera pandemic, has become a well-established model organism for which some genetic tools exist. While CRISPRi has been applied in V. cholerae, improvements were necessary to upscale it and enable pooled screening by high-throughput sequencing in this bacterium. In this study, we introduce a pooled genome wide CRISPRi library construction specifically optimized for this V. cholerae strain, characterized by minimal cytotoxicity and streamlined experimental setup. This library allows the depletion of 3, 674 (98.9%) annotated genes from the V. cholerae genome. To confirm its effectiveness, we screened for essential genes during exponential growth in rich medium and identified 368 genes for which guides were significantly depleted from the library (log2FC < - 2). Remarkably, 82% of these genes had previously been described as hypothetical essential genes in V. cholerae or in a closely related bacterium, V. natriegens. We thus validated the robustness and accuracy of our CRISPRi-based approach for assessing gene fitness in a given condition. Our findings highlight the efficacy of the developed CRISPRi platform as a powerful tool for high-throughput functional genomics studies of V. cholerae. GRAPHICAL ABSTRACT O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=72 SRC="FIGDIR/small/601881v1_ufig1.gif" ALT="Figure 1"> View larger version (15K): org.highwire.dtl.DTLVardef@bab54aorg.highwire.dtl.DTLVardef@1d412c6org.highwire.dtl.DTLVardef@1cba6borg.highwire.dtl.DTLVardef@12d11d_HPS_FORMAT_FIGEXP M_FIG C_FIG

genetics↗