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Updated: Feb 4, 2026

Nanopore DNA Sequencing for Metagenomic Soil Analysis
Published on: December 14, 2017
Real-time analysis of nanopore-based metagenomic sequencing from infected orthopaedic devices
Nicholas D Sanderson1, Teresa L Street2, Dona Foster2
1Nuffield Department of Clinical Medicine, University of Oxford, John Radcliffe Hospital, Oxford, UK. nicholas.sanderson@ndm.ox.ac.uk.
Background:
Prosthetic joint infections are clinically difficult to diagnose and treat. Previously, we demonstrated metagenomic sequencing on an Illumina MiSeq replicates the findings of current gold standard microbiological diagnostic techniques. Nanopore sequencing offers advantages in speed of detection over MiSeq. Here, we report a real-time analytical pathway for Nanopore sequence data, designed for detecting bacterial composition of prosthetic joint infections but potentially useful for any microbial sequencing, and compare detection by direct-from-clinical-sample metagenomic nanopore sequencing with Illumina sequencing and standard microbiological diagnostic techniques.
Results:
DNA was extracted from the sonication fluids of seven explanted orthopaedic devices, and additionally from two culture negative controls, and was sequenced on the Oxford Nanopore Technologies MinION platform. A specific analysis pipeline was assembled to overcome the challenges of identifying the true infecting pathogen, given high levels of host contamination and unavoidable background lab and kit contamination. The majority of DNA classified (> 90%) was host contamination and discarded. Using negative control filtering thresholds, the species identified corresponded with both routine microbiological diagnosis and MiSeq results. By analysing sequences in real time, causes of infection were robustly detected within minutes from initiation of sequencing.
Conclusions:
We demonstrate a novel, scalable pipeline for real-time analysis of MinION sequence data and use of this pipeline to show initial proof of concept that metagenomic MinION sequencing can provide rapid, accurate diagnosis for prosthetic joint infections. The high proportion of human DNA in prosthetic joint infection extracts prevents full genome analysis from complete coverage, and methods to reduce this could increase genome depth and allow antimicrobial resistance profiling. The nine samples sequenced in this pilot study have shown a proof of concept for sequencing and analysis that will enable us to investigate further sequencing to improve specificity and sensitivity.
Insights
Rapid Nanopore sequencing accurately detects prosthetic joint infections. This new real-time analysis pipeline offers faster diagnosis than traditional methods, improving patient outcomes for orthopedic infections.
Area of Science:
- Microbiology
- Genomics
- Bioinformatics
Background:
- Prosthetic joint infections present diagnostic and therapeutic challenges.
- Metagenomic sequencing on Illumina MiSeq aligns with standard microbiological diagnostics.
- Nanopore sequencing offers potential for faster pathogen detection.
Purpose of the Study:
- Develop and validate a real-time analytical pipeline for Nanopore sequencing data.
- Detect bacterial composition in prosthetic joint infections.
- Compare Nanopore sequencing with Illumina sequencing and standard diagnostics.
Main Methods:
- DNA extraction from explanted orthopedic devices and sonication fluids.
- Sequencing using Oxford Nanopore Technologies MinION platform.
- Development of a bioinformatics pipeline for real-time data analysis, filtering host and background contamination.
Main Results:
- Over 90% of classified DNA was host contamination and discarded.
- Identified species matched routine microbiological diagnosis and Illumina MiSeq results.
- Real-time analysis enabled robust detection of infection causes within minutes.
Conclusions:
- A novel pipeline for real-time Nanopore data analysis was demonstrated.
- Metagenomic Nanopore sequencing provides rapid, accurate diagnosis for prosthetic joint infections.
- Reducing host DNA is crucial for deeper genome analysis and antimicrobial resistance profiling.
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