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Structural dynamics of the membrane translocation domain of colicin E9 and its interaction with TolB

Emily S Collins1, Sara B-M Whittaker, Kaeko Tozawa

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

Insights

Colicin E9

Area of Science:

  • Molecular Biology
  • Biochemistry
  • Structural Biology

Background:

  • Colicin E9 is a protein toxin that kills susceptible cells by entering their cytoplasm and hydrolyzing DNA.
  • Colicin E9 requires interaction with the outer membrane BtuB receptor and Tol translocation pathway for cell entry.
  • The N-terminal domain of colicin E9 contains the translocation function.

Purpose of the Study:

  • To investigate the structural and dynamic properties of the colicin E9 translocation domain, particularly its interaction with TolB.
  • To understand how the flexibility of the translocation domain contributes to colicin E9's function.

Main Methods:

  • Nuclear Magnetic Resonance (NMR) spectroscopy, including (1)H, (1)H-(1)H-(15)N, and (1)H-(13)C-(15)N NMR.
  • Analysis of chemical shifts, NOEs (Nuclear Overhauser Effect), and relaxation parameters (T1/T2).

Main Results:

  • The region of the translocation domain governing TolB interaction is largely unstructured and highly flexible.
  • NMR data indicated the absence of secondary structure and significant flexibility in the N-terminal region.
  • Specific regions showed variable flexibility, with some motionally constrained areas and evidence of side-chain interactions leading to structural ordering.
  • Conformational heterogeneity was observed in parts of the translocation domain.

Conclusions:

  • The inherent flexibility of the colicin E9 translocation domain is crucial for recognizing protein partners involved in outer membrane crossing and translocation.
  • This flexibility likely facilitates the complex interactions required for colicin entry into target cells.

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