Transitions between closed and open conformations of TolC: the effects of ions in simulations
Robert Schulz1, Ulrich Kleinekathöfer
1Jacobs University Bremen, Bremen, Germany.
Abstract:
Bacteria, such as Escherichia coli, use multidrug efflux pumps to export toxic substrates through their cell membranes. Upon formation of an efflux pump, the aperture of its outer membrane protein TolC opens and thereby enables the extrusion of substrate molecules. The specialty of TolC is its ability to dock to different transporters, making it a highly versatile export protein. Within this study, the transition between two conformations of TolC that are both available as crystal structures was investigated using all-atom molecular dynamics simulations. To create a partially open conformation from a closed one, the stability of the periplasmic aperture was weakened by a double point mutation at the constricting ring, which removes some salt bridges and hydrogen bonds. These mutants, which showed partial opening in previous experiments, did not spontaneously open during a 20-ns equilibration at physiological values of the KCl solution. Detailed analysis of the constricting ring revealed that the cations of the solvent were able to constitute ionic bonds in place of the removed salt bridges, which inhibited the opening of the aperture in simulations. To remove the ions from these binding positions within the available simulation time, an extra force was applied onto the ions. To keep the effect of this additional force rather flexible, it was applied in form of an artificial external electric field perpendicular to the membrane. Depending on the field direction and the ion concentration, these simulations led to a partial opening. In experiments, this energy barrier for the ions can be overcome by thermal fluctuations on a longer timescale.
Insights
Bacteria use efflux pumps like TolC to remove toxins. Molecular dynamics simulations revealed that ions can block TolC opening, but an electric field can help overcome this barrier.
Area of Science:
- Biochemistry
- Molecular Biology
- Structural Biology
Background:
- Bacteria utilize multidrug efflux pumps, such as TolC from Escherichia coli, to expel toxic compounds.
- TolC is a versatile outer membrane protein that docks with various transporters, facilitating substrate extrusion.
- Understanding TolC's conformational changes is crucial for comprehending multidrug resistance mechanisms.
Purpose of the Study:
- To investigate the transition between closed and open conformations of the TolC protein.
- To elucidate the role of the periplasmic aperture and the constricting ring in TolC's function.
- To explore the influence of solvent ions and external forces on TolC aperture dynamics.
Main Methods:
- All-atom molecular dynamics simulations were employed to study TolC.
- A double point mutation was introduced to destabilize the periplasmic aperture.
- An artificial external electric field was applied to ions to facilitate aperture opening.
Main Results:
- Mutant TolC did not spontaneously open during simulations due to ion-mediated stabilization of the closed state.
- Cations from the solvent formed ionic bonds, replacing removed salt bridges and inhibiting aperture opening.
- Application of an electric field induced partial opening of the TolC aperture, dependent on field direction and ion concentration.
Conclusions:
- Solvent cations present a significant energy barrier to the opening of the TolC aperture.
- Simulations suggest that overcoming this barrier requires either longer timescales for thermal fluctuations or external forces like electric fields.
- These findings provide insights into the regulation of efflux pump activity and potential strategies to modulate it.
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