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Published on: April 8, 2016
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.
Abstract:
Adherence of uropathogenic Escherichia coli to host tissue is mediated by pili, which are hair-like protein structures extending from the outer cell membrane of the bacterium. The chaperones FimC and PapD are key components in pilus assembly since they catalyse folding of subunits that are incorporated in type 1 and P pili, respectively, and also transport the subunits across the periplasmic space. Recently, compounds that inhibit pilus biogenesis and interfere with chaperone-subunit interactions have been discovered and termed pilicides. In this paper NMR spectroscopy was used to study the interaction of different pilicides with PapD and FimC in order to gain structural knowledge that would explain the effect that some pilicides have on pilus assembly. First relaxation-edited NMR experiments revealed that the pilicides bound to the PapD chaperone with mM affinity. Then the pilicide-chaperone interaction surface was investigated through chemical shift mapping using 15N-labelled FimC. Principal component analysis performed on the chemical shift perturbation data revealed the presence of three binding sites on the surface of FimC, which interacted with three different classes of pilicides. Analysis of structure-activity relationships suggested that pilicides reduce pilus assembly in E. coli either by binding in the cleft of the chaperone, or by influencing the orientation of the flexible F1-G1 loop, both of which are part of the surface by which the chaperone forms complexes with pilus subunits. It is suggested that binding to either of these sites interferes with folding of the pilus subunits, which occurs during formation of the chaperone-subunit complexes. In addition, pilicides that influence the F1-G1 loop also appear to reduce pilus formation by their ability to dissociate chaperone-subunit complexes.
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.
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