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Published on: October 20, 2020
A novel host-proteome signature for distinguishing between acute bacterial and viral infections
Kfir Oved1, Asi Cohen1, Olga Boico1
1MeMed Diagnostics, Tirat Carmel, Israel.
Abstract:
Bacterial and viral infections are often clinically indistinguishable, leading to inappropriate patient management and antibiotic misuse. Bacterial-induced host proteins such as procalcitonin, C-reactive protein (CRP), and Interleukin-6, are routinely used to support diagnosis of infection. However, their performance is negatively affected by inter-patient variability, including time from symptom onset, clinical syndrome, and pathogens. Our aim was to identify novel viral-induced host proteins that can complement bacterial-induced proteins to increase diagnostic accuracy. Initially, we conducted a bioinformatic screen to identify putative circulating host immune response proteins. The resulting 600 candidates were then quantitatively screened for diagnostic potential using blood samples from 1002 prospectively recruited patients with suspected acute infectious disease and controls with no apparent infection. For each patient, three independent physicians assigned a diagnosis based on comprehensive clinical and laboratory investigation including PCR for 21 pathogens yielding 319 bacterial, 334 viral, 112 control and 98 indeterminate diagnoses; 139 patients were excluded based on predetermined criteria. The best performing host-protein was TNF-related apoptosis-inducing ligand (TRAIL) (area under the curve [AUC] of 0.89; 95% confidence interval [CI], 0.86 to 0.91), which was consistently up-regulated in viral infected patients. We further developed a multi-protein signature using logistic-regression on half of the patients and validated it on the remaining half. The signature with the highest precision included both viral- and bacterial-induced proteins: TRAIL, Interferon gamma-induced protein-10, and CRP (AUC of 0.94; 95% CI, 0.92 to 0.96). The signature was superior to any of the individual proteins (P<0.001), as well as routinely used clinical parameters and their combinations (P<0.001). It remained robust across different physiological systems, times from symptom onset, and pathogens (AUCs 0.87-1.0). The accurate differential diagnosis provided by this novel combination of viral- and bacterial-induced proteins has the potential to improve management of patients with acute infections and reduce antibiotic misuse.
Insights
A new diagnostic signature combining viral and bacterial proteins accurately distinguishes infections. This multi-protein approach improves patient management and reduces antibiotic misuse.
Area of Science:
- Infectious disease diagnostics
- Host-protein biomarkers
- Clinical microbiology
Background:
- Bacterial and viral infections present similar symptoms, complicating diagnosis and leading to antibiotic misuse.
- Current biomarkers like C-reactive protein (CRP) have limitations due to inter-patient variability.
Purpose of the Study:
- To identify novel viral-induced host proteins to improve the accuracy of differentiating bacterial and viral infections.
- To develop and validate a multi-protein diagnostic signature for acute infectious diseases.
Main Methods:
- Bioinformatic screening identified 600 candidate proteins, followed by quantitative screening in 1002 patients.
- Logistic regression was used to develop a multi-protein signature, validated on a separate patient cohort.
- Diagnostic accuracy was assessed using area under the curve (AUC) and compared to existing methods.
Main Results:
- TNF-related apoptosis-inducing ligand (TRAIL) showed high diagnostic potential (AUC 0.89) for viral infections.
- A signature combining TRAIL, Interferon gamma-induced protein-10, and CRP achieved superior diagnostic accuracy (AUC 0.94).
- The signature demonstrated robustness across various clinical scenarios and patient groups.
Conclusions:
- A novel multi-protein signature accurately differentiates bacterial and viral infections.
- This diagnostic tool has the potential to significantly improve patient management and curb antibiotic overuse.
- The findings highlight the utility of combining viral- and bacterial-induced host proteins for enhanced diagnostic precision.
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