FlhF affects the subcellular clustering of WspR through HsbR in Pseudomonas aeruginosa

Congcong Guan1, Yi Huang1, Yun Zhou1

  • 1Key Laboratory of Resource Biology and Biotechnology in Western China, Ministry of Education, College of Life Sciences, Northwest University, Xi'an, Shaanxi, China.

Insights

FlhF protein influences bacterial lifestyle by regulating cyclic di-GMP (c-di-GMP) levels and WspR localization via HsbR, impacting biofilm formation and motility in Pseudomonas aeruginosa.

Area of Science:

  • Bacterial cell biology
  • Microbial signaling pathways
  • Molecular mechanisms of biofilm formation

Background:

  • Cyclic di-GMP (c-di-GMP) is a crucial second messenger regulating bacterial behaviors like biofilm formation and motility.
  • WspR is a diguanylate cyclase (DGC) that produces c-di-GMP upon phosphorylation, promoting biofilm.
  • FlhF is essential for polar flagellar localization in Pseudomonas aeruginosa.

Purpose of the Study:

  • To investigate the role of FlhF in regulating c-di-GMP levels and biofilm formation in P. aeruginosa.
  • To elucidate the molecular mechanism by which FlhF influences WspR activity and localization.
  • To understand the interplay between flagellar assembly and c-di-GMP signaling.

Main Methods:

  • Construction and phenotypic analysis of P. aeruginosa knockout mutants (ΔflhF, ΔhsbR, ΔwspR).
  • Yeast and bacterial two-hybrid systems to determine protein-protein interactions.
  • Confocal microscopy to visualize WspR-GFP localization in different genetic backgrounds.

Main Results:

  • Deletion of flhF led to increased biofilm formation, elevated c-di-GMP levels, and altered WspR localization.
  • FlhF interacts with HsbR, which in turn interacts with WspR, mediating the observed phenotypes.
  • FlhF influences WspR's subcellular clustering and negatively modulates its DGC activity through HsbR.

Conclusions:

  • FlhF negatively regulates WspR's DGC activity and modulates its localization via HsbR, linking flagellar assembly to c-di-GMP signaling.
  • This study reveals a novel mechanism controlling the transition between bacterial motility and biofilm lifestyles.
  • The findings provide insights into the complex regulatory network of c-di-GMP signaling and its impact on bacterial behavior.