Transcriptomic analysis of stress response to novel antimicrobial coatings in a clinical MRSA strain

Ankita Vaishampayan1, Rameez Ahmed2, Olaf Wagner2

  • 1Life Sciences and Technology, Beuth University of Applied Sciences, Seestrasse 64, 13347 Berlin, Germany.

Insights

A combination of functionalised graphene oxide (GOX) and AGXX® antimicrobial fibres effectively inhibited methicillin-resistant Staphylococcus aureus (MRSA) growth by 99.98%. These materials significantly altered bacterial gene expression, showing potential for antimicrobial surface coatings.

Area of Science:

  • Materials Science
  • Microbiology
  • Genomics

Background:

  • Nosocomial infections caused by multidrug-resistant pathogens like methicillin-resistant Staphylococcus aureus (MRSA) pose significant health risks.
  • Effective strategies are needed to combat MRSA infections and prevent their transmission.

Purpose of the Study:

  • To evaluate the antimicrobial efficacy of functionalised graphene oxide (GOX) and AGXX® coated on cellulose fibres against MRSA.
  • To investigate the impact of these antimicrobial materials on the MRSA transcriptome.

Main Methods:

  • Standard plate count assays were used to determine bacterial growth inhibition.
  • RNA sequencing was performed on MRSA cultures treated with GOX, AGXX®, or a combination of GOX-AGXX® fibres.
  • Uncoated cellulose fibres served as a negative control.

Main Results:

  • The GOX-AGXX® fibre combination demonstrated potent antimicrobial activity, inhibiting MRSA growth by 99.98%.
  • Antimicrobial fibre treatment significantly impacted the MRSA transcriptome, affecting 2650 genes.
  • Key repressed genes were involved in biofilm formation, virulence (agr, sarA, SaeRS), and arginine metabolism (arc).
  • Induced genes included siderophore biosynthesis (sbn) and differentially expressed genes related to potassium transport (kdp).

Conclusions:

  • The combination of GOX and AGXX® exhibits strong antimicrobial efficacy against MRSA.
  • These materials modulate bacterial gene expression, impacting critical survival and virulence pathways.
  • GOX-AGXX® fibres show promise for developing advanced antimicrobial surface coatings.