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Biology subjects

Goulet, A.

Publications and source records attributed to Goulet, A..

3 recordsLinked to original sources

Cryo-electron microscopy structure of Jabs, a bacteriophage infecting the multidrug-resistant pathogen Mycobacterium abscessus

Exploring bacteriophage structural diversity is essential for understanding phage biology and for advancing phage-based therapies. Here, we determine the cryo-electron microscopy structure of Jabs, providing, to our knowledge, the first high-resolution view of a phage infecting the multidrug-resistant human pathogen Mycobacterium abscessus. Although Jabs displays the canonical organization of a siphophage, its virion combines several unusual architectural features. The T=9 icosahedral capsid is assembled from two distinct major capsid proteins, with one forming the hexons and the other the pentons, revealing an unprecedented capsid assembly strategy among icosahedral phages. An extensive network of ~1,700 disulfide bonds stabilize individual structural components and covalently links the capsid, connector, tail, and adhesion device into a continuous assembly. At the distal end of the tail, an elaborate and conformationally dynamic adhesion device comprises multiple candidate receptor-binding proteins organized into complex multidomain architectures, including carbohydrate-binding modules and {beta}-sandwich hetero- and homotrimers resembling the receptor-binding proteins of phages infecting lactic acid bacteria. Together, these findings expand our understanding of phage structural diversity and provide a framework for investigating phage-host interactions and guiding the engineering of therapeutic phages.

microbiology↗

Molecular basis of Gram-positive host recognition by the Oenococcus oeni phage OE33PA

Bacteriophages (phages) infecting Gram-positive bacteria must bind to host receptors across thick cell walls to initiate infection, yet the underlying structural mechanisms remain unclear. Here, we report cryo-electron microscopy structures of the Oenococcus oeni siphophage OE33PA, providing the first atomic resolution view of a phage infecting this bacterium important for the wine industry. While the overall virion architecture is conserved, the adhesion device displays distinctive features. Its receptor-binding proteins adopt multiple orientations, revealing an intrinsically dynamic assembly. In situ cryo-electron tomography captures distinct conformations upon host attachment, providing rare structural insight into interactions with Gram-positive hosts. Additionally, functional assays show that a highly mobile carbohydrate-binding module in the distal tail protein mediates host-specific binding. Furthermore, the tape measure protein, central to phage assembly and infectivity, adopts a hexameric organization, updating the prevailing trimeric model in siphophages. Together, these findings reveal a dynamic adhesion device in a phage infecting Gram-positive bacteria and highlight the structural and functional diversity of phages.

microbiology↗

Molecular Insights into the bactericidal Toxin Tle1 of Pseudomonas aeruginosa: Interaction with VgrG, its adaptor, and immunity protein

The Type VI secretion system (T6SS) delivers a wide range of antibacterial effectors, including phospholipases of the Tle family. Here, we characterize Tle1 from Pseudomonas aeruginosa and demonstrate that it functions as a bactericidal toxin with moderate activity when associated to the membranes in the periplasm. Bacterial two-hybrid assays revealed specific protein-protein interactions within the tle1 locus, involving the immunity protein Tli1a, the chaperone/adaptor Tla1, and the spike protein VgrG4a. These interactions were independently validated by co-purification assays. Structural modeling with AlphaFold 3 produced a high-confidence ternary complex in which a VgrG4a trimer accommodates one Tle1 monomer and one Tla1 monomer. The three predicted interfaces (Tle1-Tla1, Tla1-VgrG4a, and Tle1-VgrG4a) were confirmed experimentally in vivo and important charged residues mediating these interfaces were identified. Furthermore, modeling of the Tle1-Tli1a complex suggests an inhibition mechanism that does not occlude the catalytic pocket. Consistently, Tli1a was localized to the outer membrane of P. aeruginosa, supporting in silico predictions of an outer membrane lipoprotein and positioning it ideally to neutralize periplasmic Tle1 activity. We did not observe the second candidate immunity protein, Tli1b, either in P. aeruginosa or in E. coli. Together, these findings elucidate the molecular interactions underlying Tle1 delivery and inhibition and highlight the role of Tli1a as a dedicated immunity protein that protects P. aeruginosa from self-intoxication.

microbiology↗