The opportunistic pathogen Pseudomonas aeruginosa ensures its survival by forming mechanically and chemically resistant biofilms, with cationic exopolysaccharide Pel as an abundant constituent of the structural matrix. Despite its biomedical relevance, the mechanisms of Pel synthesis and secretion via the trans-envelope protein machinery are not understood. Here, we examine the structure of the outer membrane export complex PelBC embedded in synthetic nanodiscs and polymer-extracted particles. Both environments preserve the unique architecture of the complex, where the β-barrel PelB is capped with the dodecameric ring of PelC lipoproteins. Cryogenic electron microscopy shows that the polymer-extracted PelB β-barrel is tightly associated with phospholipids and lipid A molecules, and the membrane-facing PelC ring may stabilize lipids of the periplasmic leaflet in defined positions. All-atom molecular dynamics simulation of PelBC in the asymmetric outer membrane of P. aeruginosa corroborate the structural findings and visualize how the essential C-terminal helix of PelC forms multiple electrostatic contacts with the periplasmic leaflet of the outer membrane. Those interactions reduce the lateral mobility of the lipids, stabilize the position of the ring at the interface and may guide folding and assembly of the polysaccharide export machinery. Highlights The PelBC complex is visualized in nanodiscs and polymer-extracted particles The architecture of PelBC is not affected by the chosen membrane mimetics Structure-based molecular dynamics simulations validate PelBC:lipid interactions Lipid mobility in the outer membrane is hindered by the embedded PelBC complex
Cristian Rosales-Hernandez, Marius Benedens, Julien Reißmann et al.· bioRxiv· 0 citations
Cellular membranes are essentially complex and heterogeneous assemblies. The lipid bilayer forms the basis of the membrane architecture, and the associated proteins and surface-exposed glycans, known as glycocalyx, build up a dynamic, highly crowded environment. This intrinsic crowding modulates diffusion within the lipid bilayer, affects the spatial organization of the membrane components, and drives complex membrane morphology. This review addressed several emerging themes, i.e. crowding-induced condensation of intrinsically disordered proteins at the membrane interface and the multifaceted effects of the glycocalyx as a natural crowder at the plasma membrane. We further describe the potential of tailored glycomimetics to enable crowding studies in defined (semi)synthetic systems and molecular sensors as a tool to quantify the dynamics of the membrane-associated crowding.
M. Schmitter, Laura Hartmann, A. Kedrov· Current Opinion in Structura...· 0 citations