Strain-specific thermotolerance, UV-C tolerance, and biofilm formation on clinically relevant plastic substrates in the emerging opportunistic pathogen Rhodotorula mucilaginosa
Chen, Y.; Jimenez, I. A.; Casadevall, A.; Stempinski, P. R.
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Rhodotorula mucilaginosa is an emerging opportunistic fungal pathogen increasingly associated with catheter-related bloodstream infections. Although biofilm formation is considered a major virulence trait for R. mucilaginosa, factors contributing to biofilm persistence on medical devices remain poorly understood. Here, we characterized the thermotolerance, biofilm formation, UV resistance, and cell surface hydrophobicity profiles of eight R. mucilaginosa strains representing clinical and non-clinical (laboratory, environmental, and marine mammal) isolates. All strains grew optimally at 30C and exhibited restricted growth at 35C and 37C, although one environmental isolate maintained robust growth at 37C. All strains exhibited moderate to high cell surface hydrophobicity. We then assessed biofilm formation for each strain, including adherence to two different plastic substrates, development of biofilm biomass, comparison of biofilm metabolic activity, and the effects of temperature on biofilm formation. Under static conditions, biofilm biomass of most isolates on 96-well polystyrene plates was greatest at 24C. Clinical isolates generally maintained higher biofilm metabolic activity at 37C than nonclinical isolates, while at lower temperatures, clinical and non-clinical isolates did not differ significantly in metabolic activity. All strains readily formed biofilms on polyurethane intravenous catheters under dynamic conditions, as confirmed by scanning electron microscopy and metabolic activity. While planktonic cells already displayed substantial UV-C tolerance, biofilm-associated cells remained viable following exposure to UV-C doses up to eightfold higher than those that impaired planktonic growth. These findings document differences in thermotolerance and biofilm formation by isolate origin and identify biofilm formation as a major factor promoting persistence of R. mucilaginosa on clinically relevant materials and reduced susceptibility to UV-C sterilization.
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