Pseudomonas aeruginosa Initiates a Rapid and Specific Transcriptional Response during Surface Attachment

Christopher J Jones1, Nikolas Grotewold1, Daniel J Wozniak1,2

  • 1Department of Microbial Infection and Immunity, Ohio State University, Columbus, Ohio, USA.

Insights

Bacteria sense surfaces and rapidly change gene expression to form biofilms, crucial for chronic infections. This study reveals specific metabolic responses to different surfaces, aiding biofilm prevention strategies.

Area of Science:

  • Microbiology
  • Molecular Biology
  • Genomics

Background:

  • Chronic biofilm infections by Pseudomonas aeruginosa are a major cause of patient morbidity and mortality.
  • Biofilm formation, characterized by increased antimicrobial resistance and immune evasion, is initiated by bacterial attachment to surfaces.

Purpose of the Study:

  • To investigate the hypothesis that bacteria sense surfaces and initiate a rapid, specific transcriptional response to increase adhesion and establish biofilms.
  • To identify key genes and transcriptional changes involved in the initial stages of bacterial surface attachment and biofilm formation.

Main Methods:

  • RNA sequencing (RNA-Seq) was employed to analyze transcriptional changes in adherent Pseudomonas aeruginosa cells during the first hour of attachment to an abiotic surface.
  • Subsequent screens identified highly regulated genes, and comparative transcriptional analyses were performed across different medically relevant abiotic surfaces.

Main Results:

  • RNA-Seq identified significant transcriptional changes within 1 hour of bacterial attachment, highlighting the rapid response to surfaces.
  • Four genes (pfpI, phnA, leuD, moaE) with roles in metabolism and biofilm formation were identified as highly regulated.
  • A specific transcriptional response was observed for each tested surface, with only 20 differentially expressed genes common across all surfaces, many involved in metabolism (e.g., molybdopterin cofactor biosynthesis, nitrogen metabolism).

Conclusions:

  • Bacterial transcriptional responses to surfaces are both rapid and highly specific, suggesting that metabolic cues play a critical role in the transition from planktonic to biofilm lifestyles.
  • Understanding these conserved and surface-specific responses can inform strategies to prevent biofilm formation on medical devices, industrial surfaces, and during chronic infections.

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