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Published on: December 3, 2017
Advancing diagnostics in suspected periprosthetic joint infections using synthetic synovial fluid and
Amber De Bleeckere1, Jeroen Neyt2, Jasper Van Heuverswyn3
1Laboratory of Pharmaceutical Microbiology, Ghent University, Ghent, Belgium.
Abstract:
Rapid and accurate pathogen detection is essential for effective management of periprosthetic joint infections (PJIs), yet conventional culturing (CC) often yields false-negative results and requires prolonged incubation times. In the present study we compared the performance of CC to that of two alternative approaches, i.e., culturing in synthetic synovial fluid (SSF2) and isothermal microcalorimetry (IMC). A total of 79 synovial fluid (SF) samples from patients with suspected PJI were included; for these samples, CC data were available. Samples were incubated in SSF2 (aerobically and anaerobically, for 10 d), and isolates were identified by matrix-assisted laser desorption/ionization mass spectrometry (MALDI-TOF MS). With IMC we determined the time to detect microbial activity in the samples (in two different media; brain heart infusion (BHI) broth and fluid thioglycolate medium (FTM)). Culturing in SSF2 yielded the highest positivity rate (53.2 %), followed by IMC and CC (34.2 % and 32.9 %, respectively). More than one-third of all positive samples were detected only after culturing in SSF2 (39.3 %), and this approach also revealed the greatest microbial diversity. IMC enabled rapid detection of microbial activity in a sample, with median detection times of 15.9 h in BHI and 15.6 h in FTM. Our results demonstrate that culturing of SF samples in SSF2 increased the diagnostic yield and that IMC reduced the time to identify clinical samples that contain viable microorganisms. This highlights the potential of these approaches; however further optimization is warranted to integrate them in diagnostic PJI workflows.
Insights
Synthetic synovial fluid culturing (SSF2) and isothermal microcalorimetry (IMC) improve pathogen detection in periprosthetic joint infections (PJIs) compared to conventional culturing (CC). SSF2 increased positivity rates and microbial diversity, while IMC offered faster detection times.
Area of Science:
- Microbiology
- Infectious Diseases
- Medical Diagnostics
Background:
- Periprosthetic joint infections (PJIs) require rapid and accurate pathogen detection for effective treatment.
- Conventional culturing (CC) methods for PJI diagnosis are often slow and can produce false-negative results.
Purpose of the Study:
- To compare the diagnostic performance of culturing in synthetic synovial fluid (SSF2) and isothermal microcalorimetry (IMC) against conventional culturing (CC) for PJI detection.
- To evaluate the time to detection and microbial diversity yielded by each method.
Main Methods:
- Seventy-nine synovial fluid (SF) samples from patients with suspected PJI were analyzed.
- Samples were cultured using CC, SSF2 (aerobic and anaerobic incubation for 10 days), and IMC (in BHI broth and FTM).
- Isolates were identified using MALDI-TOF MS; IMC measured time to detect microbial activity.
Main Results:
- Culturing in SSF2 achieved the highest positivity rate (53.2%), followed by IMC (34.2%) and CC (32.9%).
- Over one-third of positive samples (39.3%) were detected exclusively by SSF2, which also showed greater microbial diversity.
- IMC provided rapid detection, with median times of 15.9 hours (BHI) and 15.6 hours (FTM).
Conclusions:
- Culturing SF samples in SSF2 significantly enhances diagnostic yield and microbial diversity for PJI detection.
- IMC offers a substantial reduction in the time required to detect viable microorganisms in clinical samples.
- Both SSF2 and IMC show promise for improving PJI diagnostic workflows, though further optimization is needed.
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