Dimerization of bacterial diaminopimelate epimerase is essential for catalysis

Lilian Hor1, Renwick C J Dobson, Matthew T Downton

  • 1Department of Biochemistry, La Trobe Institute for Molecular Science, La Trobe University, Melbourne, Victoria 3086, Australia.

Insights

Diaminopimelate (DAP) epimerase functions as a dimer, not a monomer, in bacteria. This dimerization is crucial for its catalytic activity, offering a new target for antimicrobial drug development.

Area of Science:

  • Biochemistry
  • Structural Biology
  • Microbiology

Background:

  • Diaminopimelate (DAP) epimerase is essential for bacterial cell wall synthesis.
  • It produces precursors for peptidoglycan, proteins, and virulence factors.
  • DAP epimerase is a potential target for novel antimicrobial agents.

Purpose of the Study:

  • To investigate the oligomeric state and structure of DAP epimerase.
  • To determine the role of dimerization in DAP epimerase activity.
  • To provide insights for developing new antibiotics.

Main Methods:

  • Analytical ultracentrifugation
  • X-ray crystallography (2.0-Å resolution)
  • Enzyme kinetic analyses
  • Site-directed mutagenesis
  • Molecular dynamics simulations

Main Results:

  • Escherichia coli DAP epimerase exists as a functional dimer in solution and crystals.
  • The crystal structure reveals an open, active conformation of the dimer.
  • A monomeric mutant (Y268A) was catalytically inactive.
  • Dimerization is essential for DAP epimerase catalysis and optimizes protein dynamics.

Conclusions:

  • DAP epimerase functions as a dimer, contrary to previous assumptions.
  • Dimerization is critical for the enzyme's catalytic activity.
  • The dimeric structure provides a novel target for antimicrobial drug discovery.

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