Characterisation of a mobile protein-binding epitope in the translocation domain of colicin E9

Colin J Macdonald1, Kaeko Tozawa, Emily S Collins

  • 1School of Chemical Sciences and Pharmacy, University of East Anglia, Norwich NR4 7TJ, UK.

Journal of Biomolecular NMR
|September 29, 2004
PubMed

Insights

Colicin E9 toxin uses its N-terminal domain to interact with helper proteins for cell entry. NMR studies reveal TolB binding involves ordered regions beyond the known TolB box, indicating a larger binding epitope.

Area of Science:

  • Molecular biology
  • Biochemistry
  • Structural biology

Background:

  • Colicin E9 is a protein toxin that enters bacterial cytoplasm to degrade DNA.
  • Its N-terminal domain mediates interaction with outer membrane and periplasmic helper proteins, including TolB via a specific sequence (TolB box).
  • Previous studies indicated this N-terminal region (residues 1-83) is largely unstructured and flexible.

Purpose of the Study:

  • To further define the structural and dynamic properties of the N-terminal region of colicin E9 involved in helper protein interaction.
  • To investigate the extent of the binding epitope for the helper protein TolB.

Main Methods:

  • Utilized 3D (1)H-(13)C-(15)N NMR experiments to assign backbone resonances for residues 1-61 of colicin E9 and an eight-residue linking sequence in a fusion protein (T(1-61)-DNase).
  • Measured (1)H-(15)N relaxation properties to investigate backbone dynamics.
  • Applied spectral density mapping, Lipari-Szabo modeling, and polymer dynamics fitting to analyze relaxation data.

Main Results:

  • Assigned 53 of 58 backbone NH resonances for colicin E9 residues 1-61 and all 7 for the linking sequence.
  • Identified three clusters of interacting residues, each containing a tryptophan, within the studied N-terminal region.
  • Observed perturbation of these clusters upon TolB binding, indicating the TolB binding site extends beyond the previously defined TolB box.

Conclusions:

  • The N-terminal domain of colicin E9, despite its overall flexibility, exhibits specific ordered regions involved in TolB binding.
  • The binding epitope for TolB is larger than the pentapeptide TolB box and involves a significant degree of order within this flexible domain.
  • These findings provide a more detailed understanding of the molecular interactions governing colicin E9 translocation into bacterial cells.

Related Concept Videos

Insertion of Single-pass Transmembrane Proteins in the RER01:26

Insertion of Single-pass Transmembrane Proteins in the RER

Integral membrane proteins are proteins adhered to the lipid bilayer of a cell organelle or membrane. They can be of two types: transmembrane integral proteins that span the lipid bilayer and monotopic proteins that are attached to either side of the membrane but do not pass through it.
Integral transmembrane proteins possess transmembrane and extra membrane domains. The transmembrane domains are primarily made of 20-25 hydrophobic amino acids arranged in a helical secondary confirmation. These...
Bacterial Translocation and Protein Secretion01:26

Bacterial Translocation and Protein Secretion

Bacterial protein secretion involves translocation systems to ensure proteins reach their designated locations, including the plasma membrane, periplasm, outer membrane, or the external environment. These translocation systems are vital for bacterial physiology, supporting processes like membrane assembly, enzymatic activity in the periplasm, and interactions with the external environment. The division of labor between Sec and Tat pathways ensures efficiency in handling proteins with diverse...
Protein Translocation Machinery on the ER Membrane01:28

Protein Translocation Machinery on the ER Membrane

The translocon complex situated on the ER membrane is the main gateway for the protein secretory pathway. It facilitates the transport of nascent peptides into the ER lumen and their insertion into the ER membrane.
Sec61 protein conducting channel
In eukaryotes, the translocon complex comprises a core heterotrimeric translocator channel called the Sec61 complex. This channel includes three transmembrane proteins, Sec61α, Sec61β, and Sec61γ, and is the largest subunit of the translocon complex.
Insertion of Multi-pass Transmembrane Proteins in the RER01:29

Insertion of Multi-pass Transmembrane Proteins in the RER

The rough ER membrane synthesizes, assembles, and embeds transmembrane proteins in diverse topologies. These proteins function as transporters or channels and can remain in the ER membrane or are sent to the Golgi complex, lysosome, and cell membrane.
The multipass transmembrane proteins are the type IV integral membrane proteins with multiple topogenic sequences determining their spatial arrangement in the ER membrane. Nearly all multipass proteins lack a cleavable signal sequence and use...
Cotranslational Protein Translocation01:20

Cotranslational Protein Translocation

Translocation of proteins across membranes is an ancient process that occurs even in bacteria and archaebacteria. In fact, the components of the translocation machinery are still conserved between prokaryotes and eukaryotes.
Sec61 channel partners for cotranslational translocation
During cotranslational translocation, the Sec61 channel partners with the signal recognition particle (SRP), the signal recognition particle receptor (SR), and the ribosomes to transport the nascent polypeptide chain...
Post-translational Translocation of Proteins to the RER01:27

Post-translational Translocation of Proteins to the RER

A sizable fraction of proteins destined for ER are first synthesized in the cell cytosol and then transported across the ER membrane–a process called post-translational translocation. Similar to cotranslationally translocated proteins, these proteins also use the Sec translocon complex to enter the ER lumen.
Targeting proteins to the ER
Hsp40 and Hsp70 chaperone molecules bind the translated proteins in the cytosol to prevent their folding. The chaperone binding helps to keep the signal...