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.

The FEBS Journal
|November 27, 2020
PubMed

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.

Related Concept Videos

DNA Bacteriophages01:26

DNA Bacteriophages

Bacteriophages, or phages, are viruses that specifically infect bacteria, utilizing their genetic material to hijack host cellular machinery for replication. DNA bacteriophages employ single-stranded DNA (ssDNA) or double-stranded DNA (dsDNA) genomes. These phages exhibit diverse replication strategies and host interactions, influencing their ecological roles and applications in biotechnology and medicine.ssDNA BacteriophagesssDNA phages, with their small genomes, utilize unique strategies to...
478
Viral Replication: Lytic Cycle01:20

Viral Replication: Lytic Cycle

Bacteriophages, or phages, are viruses that specifically infect bacteria. Among them, T-even bacteriophages, such as T4, exhibit a well-characterized lytic replication cycle in Escherichia coli (E. coli). This process ensures the rapid proliferation of the virus while ultimately leading to the destruction of the bacterial host.Attachment and DNA InjectionThe infection process begins with the recognition and binding of the T4 phage to the E. coli cell surface. Tail fibers of the phage...
832
Lytic Cycle of Bacteriophages01:30

Lytic Cycle of Bacteriophages

Bacteriophages, also known as phages, are specialized viruses that infect bacteria. A key characteristic of phages is their distinctive “head-tail” morphology. A phage begins the infection process (i.e., lytic cycle) by attaching to the outside of a bacterial cell. Attachment is accomplished via proteins in the phage tail that bind to specific receptor proteins on the outer surface of the bacterium. The tail injects the phage’s DNA genome into the bacterial cytoplasm. In the...
75.3K
Formation of Lipopolysaccharides01:19

Formation of Lipopolysaccharides

Lipopolysaccharides (LPS) are crucial components of the outer membrane of Gram-negative bacteria, serving both structural and functional roles. It contributes to membrane stability and protects bacteria from host immune responses. LPS is composed of three major regions—lipid A, a core oligosaccharide, and an O antigen. The biosynthesis and assembly of LPS involve a highly coordinated set of enzymatic reactions and transport mechanisms. Additionally, LPS is recognized as an endotoxin,...
288
Intracellular Movement of Viruses and Bacteria01:10

Intracellular Movement of Viruses and Bacteria

Intracellular bacteria and viruses often comprise a group of highly infectious pathogens that can cause several diseases. Bacterial pathogens include those belonging to the genus Rickettsia responsible for conditions such as rocky mountain spotted fever and the Mediterranean spotted fever; Chlamydia, a genus responsible for a sexually transmitted disease; Coxiella burnetii, an agent responsible for Q fever. Viral pathogens include vaccinia—a poxvirus, and herpes simplex virus—a...
3.2K
Fusion of Secretory Vesicles with the Plasma Membrane01:26

Fusion of Secretory Vesicles with the Plasma Membrane

Proteins and neurotransmitters in secretory vesicles can be released from a cell upon vesicle docking, priming, and fusion with the plasma membrane. Vesicles are docked and primed in preparation for the quick exocytosis of their contents in response to a stimulus. The fusion process is mainly carried out by a SNAP Receptor or SNARE complex, consisting of synaptobrevin, syntaxin-1, and SNAP-25.
In 1993, Jim Rothman proposed that the antiparallel pairing of vesicular and transmembrane SNAREs, or...
16.2K