The bacterial lipid II flippase MurJ functions by an alternating-access mechanism

Sujeet Kumar1, Frederick A Rubino2, Alicia G Mendoza1

  • 1From the Department of Microbiology, The Ohio State University, Columbus, Ohio 43210 and.

Insights

MurJ protein flips essential bacterial cell wall precursors across membranes. This study shows MurJ uses an alternating-access mechanism in vivo, providing a potential target for new antibiotics.

Area of Science:

  • Microbiology
  • Structural Biology
  • Biochemistry

Background:

  • The bacterial peptidoglycan (PG) cell wall is crucial for bacterial survival, morphology, and integrity.
  • PG synthesis involves transporting lipid II precursors across the cytoplasmic membrane, a process targeted by antibiotics like β-lactams.
  • MurJ, an essential protein in *Escherichia coli*, functions as a lipid II flippase, making it a potential antibiotic target.

Purpose of the Study:

  • To investigate the in vivo conformational changes of the essential lipid II flippase MurJ.
  • To elucidate the mechanism by which MurJ facilitates lipid II transport across the cytoplasmic membrane.

Main Methods:

  • Structure-guided cysteine cross-linking to probe protein conformations in *E. coli* cells.
  • Proteolysis-coupled gel analysis to assess MurJ structural states.
  • Utilizing ionophores to dissipate membrane potential and observe effects on MurJ conformation.

Main Results:

  • MurJ was shown to adopt both inward- and outward-facing conformations in vivo, confirmed by cross-linking experiments.
  • Dissipating membrane potential reduced the inward-facing conformation but not the outward-facing state.
  • Evidence supports MurJ utilizing an alternating-access mechanism for lipid II transport.

Conclusions:

  • MurJ functions via an alternating-access mechanism, transitioning between inward- and outward-open states to transport lipid II.
  • Understanding MurJ's mechanism provides insights into bacterial cell wall biogenesis.
  • MurJ represents a promising target for the development of novel antibacterial agents.

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