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Updated: Feb 20, 2026

Detection of Toxin Translocation into the Host Cytosol by Surface Plasmon Resonance
Published on: January 3, 2012
The Two-State Prehensile Tail of the Antibacterial Toxin Colicin N
Christopher L Johnson1, Alexandra S Solovyova1, Olli Hecht2
1Centre for Bacterial Cell Biology, Institute for Cell and Molecular Biosciences, The Medical School, Newcastle University, Newcastle upon Tyne, United Kingdom.
Abstract:
Intrinsically disordered regions within proteins are critical elements in many biomolecular interactions and signaling pathways. Antibacterial toxins of the colicin family, which could provide new antibiotic functions against resistant bacteria, contain disordered N-terminal translocation domains (T-domains) that are essential for receptor binding and the penetration of the Escherichia coli outer membrane. Here we investigate the conformational behavior of the T-domain of colicin N (ColN-T) to understand why such domains are widespread in toxins that target Gram-negative bacteria. Like some other intrinsically disordered proteins in the solution state of the protein, ColN-T shows dual recognition, initially interacting with other domains of the same colicin N molecule and later, during cell killing, binding to two different receptors, OmpF and TolA, in the target bacterium. ColN-T is invisible in the high-resolution x-ray model and yet accounts for 90 of the toxin's 387 amino acid residues. To reveal its solution structure that underlies such a dynamic and complex system, we carried out mutagenic, biochemical, hydrodynamic and structural studies using analytical ultracentrifugation, NMR, and small-angle x-ray scattering on full-length ColN and its fragments. The structure was accurately modeled from small-angle x-ray scattering data by treating ColN as a flexible system, namely by the ensemble optimization method, which enables a distribution of conformations to be included in the final model. The results reveal, to our knowledge, for the first time the dynamic structure of a colicin T-domain. ColN-T is in dynamic equilibrium between a compact form, showing specific self-recognition and resistance to proteolysis, and an extended form, which most likely allows for effective receptor binding.
Insights
Intrinsically disordered translocation domains (T-domains) in colicin N are essential for targeting resistant bacteria. This study reveals the dynamic structure of ColN-T, crucial for its dual recognition and interaction with bacterial receptors.
Area of Science:
- Protein structure and dynamics
- Bacterial toxin mechanisms
- Intrinsically disordered proteins
Background:
- Intrinsically disordered regions are vital for protein interactions and signaling.
- Colicin N's translocation domain (ColN-T) is key for targeting Gram-negative bacteria and overcoming antibiotic resistance.
- ColN-T is essential for receptor binding and outer membrane penetration.
Purpose of the Study:
- To investigate the conformational behavior of colicin N's translocation domain (ColN-T).
- To understand the dynamic structure underlying ColN-T's dual recognition and receptor binding.
- To elucidate the role of intrinsically disordered domains in toxins targeting Gram-negative bacteria.
Main Methods:
- Mutagenic, biochemical, hydrodynamic, and structural studies.
- Analytical ultracentrifugation, Nuclear Magnetic Resonance (NMR), and small-angle X-ray scattering (SAXS).
- Ensemble optimization method (EOM) for modeling flexible protein systems using SAXS data.
Main Results:
- The dynamic structure of ColN-T was revealed for the first time.
- ColN-T exists in a dynamic equilibrium between compact and extended conformations.
- The compact form exhibits self-recognition and protease resistance, while the extended form facilitates receptor binding.
Conclusions:
- The dynamic structure of ColN-T is critical for its function in colicin N's mechanism of action.
- Understanding ColN-T's conformational flexibility provides insights into targeting resistant bacteria.
- Intrinsically disordered domains play a significant role in the evolution and function of toxins targeting Gram-negative bacteria.
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