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SAAP-148 Eradicates MRSA Persisters Within Mature Biofilm Models Simulating Prosthetic Joint Infection
Henk Scheper1, Julia M Wubbolts1, Joanne A M Verhagen1
1Department of Infectious Diseases, Leiden University Medical Center, Leiden, Netherlands.
Abstract:
Prosthetic joint infection (PJI) is a severe complication of arthroplasty. Due to biofilm and persister formation current treatment strategies often fail. Therefore, innovative anti-biofilm and anti-persister agents are urgently needed. Antimicrobial peptides with their broad antibacterial activities may be such candidates. An in vitro model simulating PJI comprising of rifampicin/ciprofloxacin-exposed, mature methicillin-resistant Staphylococcus aureus (MRSA) biofilms on polystyrene plates, titanium/aluminium/niobium disks, and prosthetic joint liners were developed. Bacteria obtained from and residing within these biofilms were exposed to SAAP-148, acyldepsipeptide-4, LL-37, and pexiganan. Microcalorimetry was used to monitor the heat flow by the bacteria in these models. Daily exposure of mature biofilms to rifampicin/ciprofloxacin for 3 days resulted in a 4-log reduction of MRSA. Prolonged antibiotic exposure did not further reduce bacterial counts. Microcalorimetry confirmed the low metabolic activity of these persisters. SAAP-148 and pexiganan, but not LL-37, eliminated the persisters while ADEP4 reduced the number of persisters. SAAP-148 further eradicated persisters within antibiotics-exposed, mature biofilms on the various surfaces. To conclude, antibiotic-exposed, mature MRSA biofilms on various surfaces have been developed as in vitro models for PJI. SAAP-148 is highly effective against persisters obtained from the biofilms as well as within these models. Antibiotics-exposed, mature biofilms on relevant surfaces can be instrumental in the search for novel treatment strategies to combat biofilm-associated infections.
Insights
New antimicrobial peptides, like SAAP-148, show promise in eradicating stubborn bacteria in prosthetic joint infections (PJI) by targeting biofilms and persister cells, offering hope for improved treatment strategies.
Area of Science:
- Microbiology
- Biomedical Engineering
- Infectious Diseases
Background:
- Prosthetic joint infection (PJI) is a serious complication of arthroplasty.
- Biofilm and persister formation in bacteria contribute to treatment failure in PJI.
- Novel antimicrobial agents are needed to combat these resistant bacterial forms.
Purpose of the Study:
- To develop an in vitro model simulating PJI with mature, antibiotic-exposed biofilms.
- To evaluate the efficacy of antimicrobial peptides against bacteria within these biofilms and persister states.
- To identify potential new therapeutic agents for PJI treatment.
Main Methods:
- Development of an in vitro PJI model using methicillin-resistant Staphylococcus aureus (MRSA) biofilms on various surfaces.
- Exposure of mature biofilms and derived bacteria to antibiotics and antimicrobial peptides (SAAP-148, ADEP4, LL-37, pexiganan).
- Microcalorimetry to assess bacterial metabolic activity and persister cell viability.
Main Results:
- Antibiotic treatment reduced MRSA counts but failed to eliminate persister cells.
- SAAP-148 and pexiganan effectively eliminated persister cells, while ADEP4 reduced their numbers.
- SAAP-148 demonstrated efficacy in eradicating persisters within mature biofilms on prosthetic materials.
Conclusions:
- The developed in vitro model effectively simulates antibiotic-exposed, mature MRSA biofilms relevant to PJI.
- SAAP-148 shows significant potential as a therapeutic agent against PJI-associated persister cells and biofilms.
- This model system is valuable for discovering and testing new strategies against biofilm-associated infections.
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