Medical-Grade Silicone Coated with Rhamnolipid R89 Is Effective against Staphylococcus spp. Biofilms

Chiara Ceresa1, Francesco Tessarolo2,3, Devid Maniglio2

  • 1Department of Pharmaceutical Sciences, Università del Piemonte Orientale "A. Avogadro", 28100 Novara, Italy.

Insights

R89 biosurfactant effectively prevents Staphylococcus biofilms on medical devices. This rhamnolipid coating inhibits bacterial growth and biofilm formation, offering a promising strategy for preventing device-associated infections.

Area of Science:

  • Biomaterials Science
  • Microbiology
  • Infectious Diseases

Background:

  • Staphylococcus aureus and Staphylococcus epidermidis are major causes of device-associated infections due to biofilm formation.
  • Microbial biosurfactants are emerging as novel anti-biofilm agents for medical device coatings.
  • Preserving biocompatibility is crucial for implantable devices.

Purpose of the Study:

  • To evaluate R89 biosurfactant (R89BS) as an anti-biofilm coating for medical-grade silicone.
  • To assess the antimicrobial and anti-biofilm efficacy of R89BS against Staphylococcus spp.
  • To determine the biocompatibility of R89BS-coated silicone elastomeric discs (SEDs).

Main Methods:

  • R89BS composition was analyzed using mass spectrometry.
  • Antimicrobial activity was tested via microdilution and metabolic assays.
  • Biofilm inhibition and dispersion were quantified on R89BS-coated SEDs using biomass, metabolic activity, and SEM.

Main Results:

  • R89BS demonstrated significant antimicrobial activity against S. aureus and S. epidermidis (MIC99 0.06 and 0.12 mg/mL).
  • R89BS dispersed pre-formed biofilms up to 93% and inhibited biofilm formation on coated SEDs by up to 60%.
  • R89BS coatings showed no cytotoxicity and met biocompatibility requirements for leaching products.

Conclusions:

  • R89BS is a potent anti-biofilm agent effective against Staphylococcus spp.
  • R89BS-coated silicone surfaces significantly reduce biofilm formation and biomass.
  • Rhamnolipid coatings represent a promising strategy for preventing implantable device infections.