Structure of the virulence-associated Neisseria meningitidis filamentous bacteriophage MDA{varphi}
Boehning, J.; Graham, M.; Coureuil, M.; Tarafder, A. K.; Meyer, J.; Nassif, X.; Bille, E.; Bharat, T. A. M.
Show abstract
Neisseria meningitidis is a human commensal bacterium that can opportunistically invade the bloodstream and cross the blood-brain barrier, where it can cause septicaemia and meningitis. These diseases, if left untreated, can be lethal within hours. Hyperinvasive N. meningitidis strains often express a genomically encoded filamentous bacteriophage called MDA{Phi}, which promotes colonisation of mucosal host surfaces to facilitate invasion. How this phage is organised and how it promotes biofilm formation and infection at the molecular level is unclear. Here, we present an electron cryomicroscopy structure of the MDA phage, showing that MDA{Phi} is a class I filamentous inovirus, with the major capsid protein arranged within the phage as a highly curved and densely packed -helix. Comparison with other filamentous bacteriophages offers clues about inoviral genome encapsidation mechanisms, providing a framework for understanding the evolutionary diversity of inoviruses. A disordered, N-terminal segment in the major capsid protein presents hydrophobic patches on the surface of assembled phage particles, which, together with electron cryotomography data of phage bundles, furnishes a structural rationale for phage-phage interactions that were seen previously in an epithelium adhesion infection model of N. meningitidis. Taken together, our results shed light on the structure, organisation, and higher order assembly of a biomedically relevant phage encoded in the genome of a human pathogen. Molecular insights gleaned from this study increase our understanding of phage evolution, phage-mediated bacterial adhesion and pathogenicity.
Matching journals
The top 3 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- A stargate mechanism of Microviridae genome delivery unveiled by cryogenic electron tomography 97%
- In Situ Visualization of the pKM101-Encoded Type IV Secretion System Reveals a Highly Symmetric ATPase Energy Center 95%
- In Situ Visualization of the pKM101-Encoded Type IV Secretion System Reveals a Highly Symmetric ATPase Energy Center at the Channel Entrance 95%
Similar papers in this journal
- Dynamic competition for hexon binding between core protein VII and lytic protein VI promotes adenovirus maturation and entry 97%
- Nodavirus RNA Replication Crown Architecture Reveals Proto-Crown Precursor and Viral Protein A Conformational Switching 97%
- Bacterial flagellar motor PL-ring disassembly sub-complexes are widespread and ancient 96%
Similar papers in this journal
- About bacteriophage tail terminator and tail completion proteins: structure of the proximal extremity of siphophage T5 tail 98%
- Structure of the T=13 capsid of infectious pancreatic necrosis virus (IPNV) - a salmonid birnavirus 97%
- Subnanometer structure of medusavirus capsid during maturation using cryo-electron microscopy 95%
Similar papers in this journal
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.