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Investigation of synovial fluid induced Staphylococcus aureus aggregate development and its impact on surface
Matthew J Pestrak1, Tripti Thapa Gupta1, Devendra H Dusane1
1Department of Microbial Infection and Immunity, The Ohio State University, Columbus, Ohio, United States of America.
Abstract:
Periprosthetic joint infections (PJIs) are a devastating complication that occurs in 2% of patients following joint replacement. These infections are costly and difficult to treat, often requiring multiple corrective surgeries and prolonged antimicrobial treatments. The Gram-positive bacterium Staphylococcus aureus is one of the most common causes of PJIs, and it is often resistant to a number of commonly used antimicrobials. This tolerance can be partially attributed to the ability of S. aureus to form biofilms. Biofilms associated with the surface of indwelling medical devices have been observed on components removed during chronic infection, however, the development and localization of biofilms during PJIs remains unclear. Prior studies have demonstrated that synovial fluid, in the joint cavity, promotes the development of bacterial aggregates with many biofilm-like properties, including antibiotic resistance. We anticipate these aggregates have an important role in biofilm formation and antibiotic tolerance during PJIs. Therefore, we sought to determine specifically how synovial fluid promotes aggregate formation and the impact of this process on surface attachment. Using flow cytometry and microscopy, we quantified the aggregation of various clinical S. aureus strains following exposure to purified synovial fluid components. We determined that fibrinogen and fibronectin promoted bacterial aggregation, while cell free DNA, serum albumin, and hyaluronic acid had minimal effect. To determine how synovial fluid mediated aggregation affects surface attachment, we utilized microscopy to measure bacterial attachment. Surprisingly, we found that synovial fluid significantly impeded bacterial surface attachment to a variety of materials. We conclude from this study that fibrinogen and fibronectin in synovial fluid have a crucial role in promoting bacterial aggregation and inhibiting surface adhesion during PJI. Collectively, we propose that synovial fluid may have conflicting protective roles for the host by preventing adhesion to surfaces, but by promoting bacterial aggregation is also contributing to the development of antibiotic tolerance.
Insights
Synovial fluid in periprosthetic joint infections promotes Staphylococcus aureus aggregation via fibrinogen and fibronectin, increasing antibiotic tolerance but hindering surface attachment.
Area of Science:
- Microbiology
- Biomaterials Science
- Infectious Diseases
Background:
- Periprosthetic joint infections (PJIs) are severe complications of joint replacement surgery.
- Staphylococcus aureus is a common cause of PJIs, often exhibiting antimicrobial resistance due to biofilm formation.
- The role of synovial fluid in PJI biofilm development and antibiotic tolerance is not fully understood.
Purpose of the Study:
- To investigate how synovial fluid components influence Staphylococcus aureus aggregation.
- To determine the impact of synovial fluid-mediated aggregation on bacterial surface attachment.
- To elucidate the role of bacterial aggregates in antibiotic tolerance during PJIs.
Main Methods:
- Utilized flow cytometry and microscopy to quantify bacterial aggregation.
- Exposed clinical Staphylococcus aureus strains to purified synovial fluid components.
- Measured bacterial attachment to various materials using microscopy.
Main Results:
- Fibrinogen and fibronectin were identified as key components promoting Staphylococcus aureus aggregation.
- Cell-free DNA, serum albumin, and hyaluronic acid showed minimal effect on aggregation.
- Synovial fluid significantly inhibited bacterial surface attachment to multiple materials.
Conclusions:
- Fibrinogen and fibronectin in synovial fluid are critical for promoting bacterial aggregation in PJIs.
- Synovial fluid paradoxically inhibits bacterial surface adhesion while fostering aggregation and antibiotic tolerance.
- Understanding these mechanisms may inform novel therapeutic strategies for PJIs.
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