Coarse-grained simulations of conformational changes in the multidrug efflux transporter AcrB

Mol Biosyst. 2017 Sep 26;13(10):2006-2014. doi: 10.1039/c7mb00276a.

Abstract

The multidrug resistance (MDR) system actively pumps antibiotics out of cells causing serious health problems. During the pumping, AcrB (one of the key components of MDR) undergoes a series of large-scale and proton-motive conformational changes. Capturing the conformational changes through all-atom simulations is challenging. Here, we implement a hybrid coarse-grained force field to investigate the conformational changes of AcrB in the porter domain under different protonation states of Asp407/Asp408 in the trans-membrane domain. Our results show that protonation of Asp408 in monomer III (extrusion) stabilizes the asymmetric structure of AcrB; deprotonation of Asp408 induces clear opening of the entrance and closing of the exit leading to the transition from extrusion to access state. The structural changes in the porter domain of AcrB are strongly coupled with the proton translocation stoichiometry in the trans-membrane domain. Moreover, our simulations support the postulation that AcrB should adopt the symmetric resting state in a substrate-free situation.

MeSH terms

  • Bacterial Outer Membrane Proteins / chemistry
  • Bacterial Outer Membrane Proteins / metabolism
  • Escherichia coli Proteins / chemistry
  • Escherichia coli Proteins / metabolism
  • Lipoproteins / chemistry
  • Lipoproteins / metabolism
  • Membrane Transport Proteins / chemistry
  • Membrane Transport Proteins / metabolism
  • Multidrug Resistance-Associated Proteins / chemistry
  • Multidrug Resistance-Associated Proteins / metabolism*
  • Protein Conformation

Substances

  • AcrA protein, E coli
  • AcrB protein, E coli
  • Bacterial Outer Membrane Proteins
  • Escherichia coli Proteins
  • Lipoproteins
  • Membrane Transport Proteins
  • Multidrug Resistance-Associated Proteins
  • tolC protein, E coli