Membrane insertion mechanism and molecular assembly of the bacteriophage lysis toxin ΦX174-E
Julija Mezhyrova1, Janosch Martin2, Oliver Peetz2
1Institute of Biophysical Chemistry and Center for Biomolecular Magnetic Resonance, Goethe University, Frankfurt am Main, Germany.
Abstract:
The bacteriophage ΦX174 causes large pore formation in Escherichia coli and related bacteria. Lysis is mediated by the small membrane-bound toxin ΦX174-E, which is composed of a transmembrane domain and a soluble domain. The toxin requires activation by the bacterial chaperone SlyD and inhibits the cell wall precursor forming enzyme MraY. Bacterial cell wall biosynthesis is an important target for antibiotics; therefore, knowledge of molecular details in the ΦX174-E lysis pathway could help to identify new mechanisms and sites of action. In this study, cell-free expression and nanoparticle technology were combined to avoid toxic effects upon ΦX174-E synthesis, resulting in the efficient production of a functional full-length toxin and engineered derivatives. Pre-assembled nanodiscs were used to study ΦX174-E function in defined lipid environments and to analyze its membrane insertion mechanisms. The conformation of the soluble domain of ΦX174-E was identified as a central trigger for membrane insertion, as well as for the oligomeric assembly of the toxin. Stable complex formation of the soluble domain with SlyD is essential to keep nascent ΦX174-E in a conformation competent for membrane insertion. Once inserted into the membrane, ΦX174-E assembles into high-order complexes via its transmembrane domain and oligomerization depends on the presence of an essential proline residue at position 21. The data presented here support a model where an initial contact of the nascent ΦX174-E transmembrane domain with the peptidyl-prolyl isomerase domain of SlyD is essential to allow a subsequent stable interaction of SlyD with the ΦX174-E soluble domain for the generation of a membrane insertion competent toxin.
Insights
The bacteriophage ΦX174-E toxin requires bacterial chaperone SlyD for membrane insertion and cell lysis. This study reveals SlyD
Area of Science:
- Bacteriology
- Molecular Biology
- Structural Biology
Background:
- Bacteriophage ΦX174 lysis involves the ΦX174-E toxin, a membrane-bound protein targeting bacterial cell wall synthesis.
- Understanding ΦX174-E's mechanism is crucial for developing new antibiotics targeting bacterial cell wall biosynthesis.
- The bacterial chaperone SlyD is known to be essential for ΦX174-E activity.
Purpose of the Study:
- To elucidate the molecular mechanisms of ΦX174-E toxin-mediated bacterial lysis.
- To characterize the role of SlyD in the activation and membrane insertion of ΦX174-E.
- To investigate the structural requirements for ΦX174-E oligomerization and pore formation.
Main Methods:
- Cell-free expression system for producing functional ΦX174-E toxin and derivatives.
- Nanoparticle technology utilizing pre-assembled nanodiscs to study membrane interactions.
- Biochemical and structural analyses to determine toxin conformation and complex formation.
Main Results:
- Efficient production of full-length and engineered ΦX174-E using cell-free expression and nanodiscs.
- The soluble domain conformation of ΦX174-E is critical for membrane insertion and oligomerization.
- Stable complex formation with SlyD maintains a membrane-insertion-competent conformation of ΦX174-E.
- Oligomerization of inserted ΦX174-E depends on a proline residue at position 21.
Conclusions:
- SlyD acts as a crucial activator, facilitating ΦX174-E membrane insertion through specific domain interactions.
- A model is proposed where SlyD's peptidyl-prolyl isomerase domain initially interacts with the toxin's transmembrane domain.
- This interaction allows subsequent stable binding to the soluble domain, generating a membrane-insertion-competent toxin complex.
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