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Identification of Rare Bacterial Pathogens by 16S rRNA Gene Sequencing and MALDI-TOF MS
Published on: July 11, 2016
Diagnosis of Bacterial Bloodstream Infections: A 16S Metagenomics Approach
Saskia Decuypere1, Conor J Meehan2, Sandra Van Puyvelde2
1Telethon Kids Institute, University of Western Australia, Perth, Australia.
Background:
Bacterial bloodstream infection (bBSI) is one of the leading causes of death in critically ill patients and accurate diagnosis is therefore crucial. We here report a 16S metagenomics approach for diagnosing and understanding bBSI.
Methodology/Principal Findings:
The proof-of-concept was delivered in 75 children (median age 15 months) with severe febrile illness in Burkina Faso. Standard blood culture and malaria testing were conducted at the time of hospital admission. 16S metagenomics testing was done retrospectively and in duplicate on the blood of all patients. Total DNA was extracted from the blood and the V3-V4 regions of the bacterial 16S rRNA genes were amplified by PCR and deep sequenced on an Illumina MiSeq sequencer. Paired reads were curated, taxonomically labeled, and filtered. Blood culture diagnosed bBSI in 12 patients, but this number increased to 22 patients when combining blood culture and 16S metagenomics results. In addition to superior sensitivity compared to standard blood culture, 16S metagenomics revealed important novel insights into the nature of bBSI. Patients with acute malaria or recovering from malaria had a 7-fold higher risk of presenting polymicrobial bloodstream infections compared to patients with no recent malaria diagnosis (p-value = 0.046). Malaria is known to affect epithelial gut function and may thus facilitate bacterial translocation from the intestinal lumen to the blood. Importantly, patients with such polymicrobial blood infections showed a 9-fold higher risk factor for not surviving their febrile illness (p-value = 0.030).
Conclusions/Significance:
Our data demonstrate that 16S metagenomics is a powerful approach for the diagnosis and understanding of bBSI. This proof-of-concept study also showed that appropriate control samples are crucial to detect background signals due to environmental contamination.
Insights
16S metagenomics significantly improves bacterial bloodstream infection (bBSI) diagnosis in children with febrile illness. This advanced technique also revealed a link between malaria and polymicrobial infections, impacting survival rates.
Area of Science:
- Medical Microbiology
- Infectious Diseases
- Genomics
Background:
- Bacterial bloodstream infection (bBSI) is a major cause of mortality in critically ill patients.
- Accurate and timely diagnosis of bBSI is essential for effective treatment.
- Current diagnostic methods have limitations in sensitivity and scope.
Purpose of the Study:
- To evaluate 16S metagenomics as a diagnostic tool for bBSI.
- To understand the relationship between malaria and bBSI.
- To investigate the impact of polymicrobial infections on patient outcomes.
Main Methods:
- Retrospective analysis of blood samples from 75 children with severe febrile illness.
- 16S rRNA gene amplification (V3-V4 regions) and deep sequencing.
- Comparison of 16S metagenomics with standard blood culture and malaria testing.
Main Results:
- 16S metagenomics increased bBSI detection from 12 to 22 patients compared to blood culture alone.
- Patients with malaria had a 7-fold higher risk of polymicrobial bloodstream infections (p=0.046).
- Polymicrobial infections were associated with a 9-fold higher risk of mortality (p=0.030).
Conclusions:
- 16S metagenomics is a powerful approach for diagnosing and understanding bBSI.
- The study highlights the critical role of malaria in predisposing to polymicrobial infections.
- Control samples are essential to mitigate background signals from environmental contamination.
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