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Polymicrobial Interactions Induce Multidrug Tolerance in Staphylococcus aureus Through Energy Depletion
Dan L Nabb1, Seoyoung Song1, Kennedy E Kluthe1
1Department of Biology, University of Nebraska at Kearney, Kearney, NE, United States.
Abstract:
Staphylococcus aureus is responsible for a high number of relapsing infections, which are often mediated by the protective nature of biofilms. Polymicrobial biofilms appear to be more tolerant to antibiotic treatment, however, the underlying mechanisms for this remain unclear. Polymicrobial biofilm and planktonic cultures formed by S. aureus and Candida albicans are 10- to 100-fold more tolerant to oxacillin, vancomycin, ciprofloxacin, delafloxacin, and rifampicin compared to monocultures of S. aureus. The possibility of C. albicans matrix components physically blocking antibiotic molecules from reaching S. aureus was ruled out as oxacillin, ciprofloxacin, delafloxacin, and rifampicin were able to diffuse through polymicrobial biofilms. Based on previous findings that S. aureus forms drug tolerant persister cells through ATP depletion, we examined nutrient deprivation by determining glucose availability, which indirectly correlates to ATP production via the tricarboxylic acid (TCA) cycle. Using an extracellular glucose assay, we confirmed that S. aureus and C. albicans polymicrobial cultures depleted available glucose faster than the respective monocultures. Supporting this finding, S. aureus exhibited decreased TCA cycle activity, specifically fumarase expression, when grown in the presence of C. albicans. In addition, S. aureus grown in polymicrobial cultures displayed 2.2-fold more cells with low membrane potential and a 13% reduction in intracellular ATP concentrations than in monocultures. Collectively, these data demonstrate that decreased metabolic activity through nutrient deprivation is a mechanism for increased antibiotic tolerance within polymicrobial cultures.
Insights
Polymicrobial biofilms of Staphylococcus aureus and Candida albicans show increased antibiotic tolerance. Nutrient deprivation and decreased metabolic activity in S. aureus explain this enhanced drug resistance in biofilms.
Area of Science:
- Microbiology
- Infectious Diseases
- Antimicrobial Resistance
Background:
- Staphylococcus aureus infections often relapse due to antibiotic-tolerant biofilms.
- Polymicrobial biofilms, involving S. aureus and Candida albicans, exhibit heightened tolerance to antibiotics, but mechanisms are unclear.
Purpose of the Study:
- To investigate the mechanisms behind increased antibiotic tolerance in S. aureus and C. albicans polymicrobial biofilms.
- To determine if nutrient deprivation and altered metabolic activity contribute to enhanced antibiotic tolerance.
Main Methods:
- Cultured S. aureus and C. albicans in monocultures and polymicrobial biofilms.
- Assessed antibiotic tolerance to various drugs (oxacillin, vancomycin, ciprofloxacin, delafloxacin, rifampicin).
- Measured glucose availability, extracellular glucose, TCA cycle activity (fumarase expression), membrane potential, and intracellular ATP concentrations.
Main Results:
- Polymicrobial biofilms were 10- to 100-fold more tolerant to antibiotics than monocultures.
- Antibiotics diffused through polymicrobial biofilms, ruling out physical blockage.
- Polymicrobial cultures depleted glucose faster, showing decreased S. aureus TCA cycle activity and fumarase expression.
- S. aureus in polymicrobial cultures had reduced membrane potential and lower intracellular ATP levels.
Conclusions:
- Nutrient deprivation and decreased metabolic activity are key mechanisms for increased antibiotic tolerance in S. aureus and C. albicans polymicrobial biofilms.
- Understanding these mechanisms can inform strategies to combat relapsing biofilm infections.
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