Solution structure and phospho-PmrA recognition mode of PmrD from Klebsiella pneumoniae

Shih-Chi Luo1, Yuan-Chao Lou, Hsin-Yao Cheng

  • 1Chemical Biology and Molecular Biophysics, Taiwan International Graduate Program, Academia Sinica, Taipei 115, Taiwan.

Insights

Klebsiella pneumoniae PmrD protein stabilizes phospho-PmrA, a key component in bacterial two-component systems (TCS). This interaction is crucial for regulating gene expression, unlike in E. coli, offering insights into TCS regulation.

Area of Science:

  • Microbiology
  • Molecular Biology
  • Biochemistry

Background:

  • Two-component systems (TCS) are vital for bacterial signal transduction.
  • PmrD protein in Salmonella protects phospho-PmrA, but not in E. coli.

Purpose of the Study:

  • Investigate the mechanism of Klebsiella pneumoniae PmrD (KP-PmrD) in protecting phospho-PmrA.
  • Elucidate the molecular interactions between KP-PmrD and PmrA.

Main Methods:

  • Nuclear Magnetic Resonance (NMR) spectroscopy to determine KP-PmrD structure and binding interactions.
  • Amide chemical shift perturbations and saturation transfer experiments.
  • In vivo polymyxin B susceptibility assays for mutant analysis.

Main Results:

  • KP-PmrD strongly inhibits phospho-PmrA dephosphorylation, with enhanced binding to activated PmrA in the presence of BeF(3)(-).
  • Solution structure of KP-PmrD reveals a β-barrel with a flexible C-terminal α-helix.
  • Identified a specific binding surface on KP-PmrD for activated PmrA(N).

Conclusions:

  • KP-PmrD plays a protective role for phospho-PmrA in K. pneumoniae, differing from E. coli.
  • The study provides detailed molecular insights into the PmrD-PmrA interaction within the PmrAB TCS.

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