Regulation of carbon and nitrogen utilization by CbrAB and NtrBC two-component systems in Pseudomonas aeruginosa

Wei Li1, Chung-Dar Lu

  • 1Department of Biology, Georgia State University, 24 Peachtree Center Ave., Atlanta, GA 30303, USA.

Insights

The CbrAB and NtrBC systems in Pseudomonas aeruginosa control carbon and nitrogen use. Mutations in ntrB restored growth on certain compounds, revealing a complex regulatory network for nutrient balance.

Area of Science:

  • Microbiology
  • Molecular Biology
  • Biochemistry

Background:

  • Pseudomonas aeruginosa utilizes diverse carbon and nitrogen sources.
  • Two-component systems like CbrAB and NtrBC regulate nutrient metabolism.
  • Understanding these systems is crucial for bacterial physiology.

Purpose of the Study:

  • To investigate the roles of CbrAB and NtrBC in carbon and nitrogen utilization in P. aeruginosa.
  • To identify genetic suppressors of cbrAB mutations affecting nutrient utilization.
  • To elucidate the molecular mechanisms underlying nutrient balance regulation.

Main Methods:

  • Phenotype microarray analyses of single and double mutants.
  • Selection and genetic characterization of suppressor mutants.
  • Complementation studies and identification of suppressor genes (ntrB alleles).
  • Enzyme activity assays (glutamate dehydrogenase, glutamate synthase, glutamine synthetase).

Main Results:

  • CbrAB is essential for growth on arginine, histidine, and polyamines as carbon sources.
  • NtrBC primarily regulates nitrogen utilization.
  • Mutations in ntrB (constitutively active) suppressed cbrAB defects, restoring growth on specific N-containing compounds.
  • The DeltacbrAB ntrB(Con) mutant showed impaired growth on TCA cycle intermediates and glucose with ammonium, indicating carbon-nitrogen imbalance.

Conclusions:

  • CbrAB and NtrBC function as a network to maintain carbon and nitrogen balance in P. aeruginosa.
  • Specific ntrB mutations lead to constitutive activation of the Ntr system, impacting metabolic pathways.
  • This study provides insights into the intricate regulatory mechanisms governing nutrient assimilation in bacteria.

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