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Published on: April 21, 2015
Proteomic analysis at the sites of clinical infection with invasive Streptococcus pyogenes
Robert J Edwards1, Marta Pyzio1, Magdalena Gierula1
1Faculty of Medicine, Imperial College London, London, U.K.
Abstract:
Invasive Streptococcus pyogenes infections are rare, with often-unexplained severity. Prompt diagnosis is desirable, as deaths can occur rapidly following onset and there is an increased, but preventable, risk to contacts. Here, proteomic analyses of clinical samples from invasive human S. pyogenes infections were undertaken to determine if novel diagnostic targets could be detected, and to augment our understanding of disease pathogenesis. Fluid samples from 17 patients with confirmed invasive S. pyogenes infection (empyema, septic arthritis, necrotising fasciitis) were analysed by proteomics for streptococcal and human proteins; 16/17 samples had detectable S. pyogenes DNA. Nineteen unique S. pyogenes proteins were identified in just 6/17 samples, and 15 of these were found in a single pleural fluid sample including streptococcal inhibitor of complement, trigger factor, and phosphoglycerate kinase. In contrast, 469 human proteins were detected in patient fluids, 177 (38%) of which could be identified as neutrophil proteins, including alpha enolase and lactotransferrin which, together, were found in all 17 samples. Our data suggest that streptococcal proteins are difficult to detect in infected fluid samples. A vast array of human proteins associated with leukocyte activity are, however, present in samples that deserve further evaluation as potential biomarkers of infection.
Insights
Detecting Streptococcus pyogenes proteins in invasive infections is challenging. However, human neutrophil proteins like alpha enolase show promise as infection biomarkers.
Area of Science:
- Microbiology
- Proteomics
- Infectious Diseases
Background:
- Invasive Streptococcus pyogenes infections are rare but severe, with rapid mortality and preventable risks to contacts.
- Prompt diagnosis is crucial for effective treatment and preventing transmission.
Purpose of the Study:
- To identify novel diagnostic targets for invasive Streptococcus pyogenes infections using proteomics.
- To enhance understanding of the pathogenesis of severe S. pyogenes disease.
Main Methods:
- Proteomic analysis of clinical fluid samples from 17 patients with invasive S. pyogenes infections.
- Detection of both streptococcal and human proteins within patient samples.
- Quantification and identification of specific proteins associated with infection.
Main Results:
- Streptococcal proteins were difficult to detect, identified in only 6/17 samples.
- Nineteen unique S. pyogenes proteins were found, with 15 in a single pleural fluid sample.
- A large number of human neutrophil proteins (177) were detected in all samples, including alpha enolase and lactotransferrin.
Conclusions:
- Detecting S. pyogenes proteins in clinical samples is challenging for diagnostics.
- Human neutrophil proteins, such as alpha enolase and lactotransferrin, are abundant and warrant further investigation as biomarkers for invasive infections.
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