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Updated: Nov 25, 2025

Stress-induced Antibiotic Susceptibility Testing on a Chip
Published on: January 8, 2014
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.
Abstract:
Multi-drug resistant pathogens such as methicillin-resistant Staphylococcus aureus (MRSA) cause nosocomial infections that can have deleterious effects on human health. Thus, it is imperative to find solutions to treat these detrimental infections as well as to control their spread. We tested the effect of two different antimicrobial materials, functionalised graphene oxide (GOX), and AGXX® coated on cellulose fibres, on the growth and transcriptome of the clinical MRSA strain S. aureus 04-02981. In addition, we investigated the effect of a third material as a combination of GOX and AGXX® fibres on S. aureus 04-02981. Standard plate count assay revealed that the combination of fibres, GOX-AGXX® inhibited the growth of S. aureus 04-02981 by 99.98%. To assess the effect of these antimicrobials on the transcriptome of our strain, cultures of S. aureus 04-02981 were incubated with GOX, AGXX®, or GOX-AGXX® fibres for different time periods and then subjected to RNA-sequencing. Uncoated cellulose fibres were used as a negative control. The antimicrobial fibres had a huge impact on the transcriptome of S. aureus 04-02981 affecting the expression of 2650 genes. Primarily genes related to biofilm formation and virulence (such as agr, sarA, and those of the two-component system SaeRS), and genes crucial for survival in biofilms (like arginine metabolism arc genes) were repressed. In contrast, the expression of siderophore biosynthesis genes (sbn) was induced, a probable response to stress imposed by the antimicrobials and the conditions of iron-deficiency. Genes associated with potassium transport, intracellular survival and pathogenesis (kdp) were also differentially expressed. Our data suggest that the combination of GOX and AGXX® acts as an efficient antimicrobial against S. aureus 04-02981. Thus, these materials are potential candidates for applications in antimicrobial surface coatings.
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.

