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Detection of Total Reactive Oxygen Species in Adherent Cells by 2',7'-Dichlorodihydrofluorescein Diacetate Staining
Published on: June 23, 2020
Reactive oxygen species measure for rapid detection of infection in fluids
Jean Bardon1, Anne-Claire Lukaszewicz2,3,4, Valérie Faivre5,6
1Department of Anesthesiology and Critical Care and SAMU, Hôpital Lariboisière, AP-HP, Paris, France.
Background:
Early detection of infection is critical to rapidly starting effective treatment. Diagnosis can be difficult, particularly in the intensive care unit (ICU) population. Because the presence of polymorphonuclear neutrophils in tissues is the hallmark of inflammatory processes, the objective of this proof of concept study was to determine whether the measurement of reactive oxygen species (ROS) could be an efficient diagnostic tool to rapidly diagnose infections in peritoneal, pleural and bronchoalveolar lavage (BAL) fluids in ICU patients.
Methods:
We prospectively included all patients hospitalized in the 21-bed surgical ICU of a teaching hospital from June 2010 to February 2014 who presented with systemic inflammatory response syndrome with suspicion of a peritoneal or pleural fluid or pulmonary infection needing a BAL. Instantaneous basal ROS production was measured in fluids and after phorbol 12-myristate 13-acetate (PMA) stimulation. We compared patients with infected fluids to those with non-infected fluids.
Results:
The overall ICU mortality rate was 34 %. A majority of patients were sampled following a delay of 5 days (2-12) after ICU admission, with most receiving antibiotics at the time of fluid sampling (71 %). Fluids were infected in 21/65 samples: 6/17 peritoneal fluids, 8/28 pleural fluids and 7/20 BALs. ROS production was significantly higher in the infected than in the non-infected group at baseline and after PMA stimulation in the peritoneal and pleural fluids but not in BAL.
Conclusion:
Assessing instantaneous ROS production appears as a fast and reliable diagnostic method for detecting peritoneal and pleural fluid infection.
Insights
Measuring reactive oxygen species (ROS) in peritoneal and pleural fluids offers a rapid and reliable method for diagnosing infections in intensive care unit (ICU) patients. This diagnostic approach aids in timely treatment initiation for better patient outcomes.
Area of Science:
- Critical care medicine
- Infectious disease diagnostics
- Biomarker research
Background:
- Early infection detection is crucial for effective treatment, especially in intensive care units (ICUs).
- Diagnosing infections in ICU patients presents significant challenges.
- Polymorphonuclear neutrophils indicate inflammation, prompting investigation into reactive oxygen species (ROS) as a diagnostic marker.
Purpose of the Study:
- To evaluate reactive oxygen species (ROS) measurement as a rapid diagnostic tool for infections.
- To assess ROS in peritoneal, pleural, and bronchoalveolar lavage (BAL) fluids in ICU patients.
Main Methods:
- Prospective study of ICU patients with suspected infections.
- Measurement of instantaneous basal ROS production in fluids, with and without phorbol 12-myristate 13-acetate (PMA) stimulation.
- Comparison of ROS levels between infected and non-infected fluid samples.
Main Results:
- Infected fluids showed significantly higher ROS production at baseline and after PMA stimulation compared to non-infected fluids.
- This difference was significant in peritoneal and pleural fluids, but not in BAL fluids.
- Overall ICU mortality was 34%, with most patients sampled after a delay and on antibiotics.
Conclusions:
- Instantaneous ROS production measurement is a fast and reliable diagnostic method for peritoneal and pleural fluid infections.
- The findings suggest ROS as a potential biomarker for specific ICU-acquired infections.
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