NMR studies of interactions between periplasmic chaperones from uropathogenic E. coli and pilicides that interfere

Mattias Hedenström1, Hans Emtenäs, Nils Pemberton

  • 1Organic Chemistry, Department of Chemistry, Umeå University, SE-901 87, Umeå, Sweden.

Insights

New pilicides inhibit uropathogenic Escherichia coli (E. coli) by interfering with chaperone-subunit interactions essential for pilus assembly. These compounds bind to key chaperone proteins, disrupting the folding and formation of pili required for bacterial adherence.

Area of Science:

  • Microbiology
  • Structural Biology
  • Biochemistry

Background:

  • Uropathogenic *Escherichia coli* (E. coli) use pili for host tissue adherence.
  • Chaperones FimC and PapD are crucial for pilus assembly by catalyzing subunit folding and transport.
  • Pilicides are compounds that inhibit pilus biogenesis by interfering with chaperone-subunit interactions.

Purpose of the Study:

  • To investigate the structural basis of pilicide interaction with FimC and PapD chaperones.
  • To understand how pilicides affect pilus assembly in *E. coli*.

Main Methods:

  • Nuclear Magnetic Resonance (NMR) spectroscopy was employed to study pilicide-chaperone interactions.
  • Relaxation-edited NMR experiments determined binding affinities.
  • Chemical shift mapping using 15N-labeled FimC identified interaction surfaces.
  • Principal component analysis (PCA) revealed distinct binding sites.

Main Results:

  • Pilicides bound to the PapD chaperone with millimolar (mM) affinity.
  • Three distinct binding sites for different pilicide classes were identified on the FimC chaperone surface.
  • Pilicides were found to bind either in the chaperone's cleft or affect the F1-G1 loop orientation.
  • These interactions interfere with pilus subunit folding and can dissociate chaperone-subunit complexes.

Conclusions:

  • Pilicides inhibit *E. coli* pilus assembly through specific interactions with FimC and PapD chaperones.
  • Binding to the chaperone cleft or influencing the F1-G1 loop disrupts subunit folding.
  • Some pilicides reduce pilus formation by dissociating chaperone-subunit complexes, offering potential therapeutic strategies.