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A 3D System for Culturing Human Articular Chondrocytes in Synovial Fluid
Published on: January 31, 2012
Development of an artificial synovial fluid useful for studying Staphylococcus epidermidis joint infections
Johanna Stamm1, Samira Weißelberg1, Anna Both1
1Institut für Medizinische Mikrobiologie, Virologie und Hygiene, Hamburg, Germany.
Abstract:
Staphylococcus epidermidis is a major causative agent of prosthetic joint infections (PJI). The ability to form biofilms supports this highly selective pathogenic potential. In vitro studies essentially relying on phenotypic assays and genetic approaches have provided a detailed picture of the molecular events contributing to biofilm assembly. A major limitation in these studies is the use of synthetic growth media, which significantly differs from the environmental conditions S. epidermidis encounters during host invasion. Building on evidence showing that growth in serum substantially affects S. epidermidis gene expression profiles and phenotypes, the major aim of this study was to develop and characterize a growth medium mimicking synovial fluid, thereby facilitating research addressing specific aspects related to PJI. Using fresh human plasma, a protocol was established allowing for the large-scale production of a medium that by biochemical analysis matches key characteristics of synovial fluid and therefore is referred to as artificial synovial fluid (ASF). By analysis of biofilm-positive, polysaccharide intercellular adhesion (PIA)-producing S. epidermidis 1457 and its isogenic, PIA- and biofilm-negative mutant 1457-M10, evidence is provided that the presence of ASF induces cluster formation in S. epidermidis 1457 and mutant 1457-M10. Consistent with the aggregative properties, both strains formed multilayered biofilms when analyzed by confocal laser scanning microscopy. In parallel to the phenotypic findings, expression analysis after growth in ASF found upregulation of genes encoding for intercellular adhesins (icaA, aap, and embp) as well as atlE, encoding for the major cell wall autolysin being responsible for eDNA release. In contrast, growth in ASF was associated with reduced expression of the master regulator agr. Collectively, these results indicate that ASF induces expression profiles that are able to support intercellular adhesion in both PIA-positive and PIA-negative S. epidermidis. Given the observation that ASF overall induced biofilm formation in a collection of S. epidermidis isolates from PJI, the results strongly support the idea of using growth media mimicking host environments. ASF may play an important role in future studies related to the pathogenesis of S. epidermidis PJI.
Insights
Researchers developed artificial synovial fluid (ASF) to better study Staphylococcus epidermidis biofilms in prosthetic joint infections (PJI). This new medium promotes bacterial clustering and biofilm formation, aiding PJI research.
Area of Science:
- Microbiology
- Biochemistry
- Medical Science
Background:
- Staphylococcus epidermidis is a primary cause of prosthetic joint infections (PJI), utilizing biofilm formation for pathogenesis.
- Current in vitro studies often use synthetic media, which do not accurately reflect the host environment encountered during infection.
- Growth in host-derived fluids like serum significantly alters S. epidermidis gene expression and phenotypes.
Purpose of the Study:
- To develop and characterize an artificial synovial fluid (ASF) medium that mimics the host environment for studying S. epidermidis in PJI.
- To investigate the effects of ASF on S. epidermidis biofilm formation and gene expression relevant to PJI pathogenesis.
Main Methods:
- Developed a protocol for large-scale ASF production from human plasma, matching key biochemical characteristics of natural synovial fluid.
- Analyzed biofilm formation in S. epidermidis strains (1457 and a PIA-negative mutant) grown in ASF using confocal laser scanning microscopy.
- Performed gene expression analysis to assess the impact of ASF on genes involved in intercellular adhesion and biofilm development.
Main Results:
- ASF induced significant cluster formation in both PIA-positive and PIA-negative S. epidermidis strains.
- Both strains exhibited multilayered biofilm formation in ASF, confirmed by confocal microscopy.
- ASF upregulated genes associated with intercellular adhesion (icaA, aap, embp) and eDNA release (atlE), while downregulating the agr master regulator.
- ASF promoted biofilm formation in a collection of S. epidermidis isolates from PJI patients.
Conclusions:
- Artificial synovial fluid (ASF) effectively mimics key aspects of the host environment, promoting S. epidermidis biofilm formation and altering gene expression.
- ASF supports intercellular adhesion in both PIA-positive and PIA-negative S. epidermidis, highlighting its utility in studying PJI pathogenesis.
- The use of host-mimicking media like ASF is crucial for advancing research into S. epidermidis PJI and developing effective therapeutic strategies.
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