Assay for peptidoglycan O-acetyltransferase: a potential new antibacterial target

Patrick J Moynihan1, Anthony J Clarke

  • 1Department of Molecular and Cellular Biology, University of Guelph, Guelph, Ontario, Canada N1G 2W1.

Insights

Researchers developed a novel in vitro assay to study peptidoglycan O-acetylation, a key process in bacterial cell wall maturation. This assay, using PatB from Neisseria gonorrhoeae, enables high-throughput screening for new antibiotic leads targeting bacterial O-acetyltransferases.

Area of Science:

  • Microbiology
  • Biochemistry
  • Drug Discovery

Background:

  • O-acetylation of peptidoglycan is a crucial maturation step in many human pathogens.
  • This process is catalyzed by O-acetylpeptidoglycan transferases (Oat) in Gram-positive bacteria and PatA/PatB systems in Gram-negative bacteria.
  • Peptidoglycan O-acetylation is essential for bacterial survival and virulence.

Purpose of the Study:

  • To develop the first in vitro assay for any peptidoglycan O-acetyltransferase.
  • To utilize PatB from Neisseria gonorrhoeae as a model enzyme for assay development.
  • To establish conditions for high-throughput screening of potential inhibitors.

Main Methods:

  • Development of an in vitro assay using chromogenic p-nitrophenyl acetate as a substrate.
  • Utilized chitooligosaccharides as model acceptor substrates.
  • Confirmed O-acetylated products using mass spectrometry and determined reaction rates spectrophotometrically.

Main Results:

  • Successfully developed and validated the first in vitro assay for peptidoglycan O-acetyltransferases.
  • Determined the first Michaelis-Menten kinetic parameters for PatB.
  • Established assay conditions suitable for microtiter plate format.

Conclusions:

  • The developed assay is a valuable tool for studying peptidoglycan O-acetylation.
  • This assay facilitates high-throughput screening for inhibitors of bacterial O-acetyltransferases.
  • The findings may lead to the discovery of novel classes of antibiotics targeting bacterial cell wall synthesis.