ArticleJournal of clinical microbiology2024
Comparison of the performance of two targeted metagenomic virus capture probe-based methods using reference control materials and clinical samples.
Article in Journal of clinical microbiology, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 18 papers.
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Trials whose registry record cites this paper, or whose number appears in the abstract. A trial that started after this paper was published is citing it as background, not reporting it.
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Who cites it
18 citing papers in PubMed.
- Evaluating myxovirus resistance protein A-based rapid testing combined with pathogen sequencing for arboviral and incidental viral infection surveillance in Senegal.Microbiology spectrum · 2026Article
- Human pegivirus, Toscana virus and herpesviruses identified in cerebrospinal fluid from adults with unexplained neurologic disease, Spain, 2022-2023.The Journal of general virology · 2026Article
- One health viral metagenomics for pathogen surveillance: robust mNGS workflows for viral detection and genome recovery from swab and tissue specimens.BMC microbiology · 2026Article
- Evaluation of two virome probe hybridization capture panels for food safety surveillance.Virology journal · 2026Article
- Two Coding-Complete Genomes of Tick-Borne Encephalitis Virus Sequenced fromPathogens (Basel, Switzerland) · 2026Article
- Metagenomic sequencing identifies potential respiratory pathogens in PCR-negative subset of surveillance samples.Scientific reports · 2026Article
- Environmental metagenomics enhances detection of circulating viruses from live poultry markets in Cambodia.Nature communications · 2026Article
- Article
- teamNGS Balances Sensitivity for Viruses with Comprehensive Microbial Detection in Clinical Specimens.Microorganisms · 2025Article
- Viral Metagenomic Next-Generation Sequencing for One Health Discovery and Surveillance of (Re)Emerging Viruses: A Deep Review.International journal of molecular sciences · 2025Review
- Methods, applications, and computational challenges in bait capture enrichment.Cell reports methods · 2025Review
- Quantifying viral load and characterizing virus diversity in wildlife samples with target enrichment sequencing.Microbial genomics · 2025Article
- The respiratory tract virome: unravelling the role of viral dark matter in respiratory health and disease.European respiratory review : an official journal of the European Respiratory Society · 2025Review
- Article
- Hybrid Capture-Based Sequencing Enables Highly Sensitive Zoonotic Virus Detection Within the One Health Framework.Pathogens (Basel, Switzerland) · 2025Article
- Probe-based metagenomic pathogen detection: advancing laboratory capacity for complex diagnosis.Frontiers in microbiology · 2025Article
- The 2023 South Sudanese outbreak of Hepatitis E emphasizes ongoing circulation of genotype 1 in North, Central, and East Africa.Infection, genetics and evolution : journal of molecular epidemiology and evolutionary genetics in infectious diseases · 2024Article
- Evaluation of the Impact of Concentration and Extraction Methods on the Targeted Sequencing of Human Viruses from Wastewater.Environmental science & technology · 2024Article
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Authors and funding
9 authors.
Funding
Abstract
Viral enrichment by probe hybridization has been reported to significantly increase the sensitivity of viral metagenomics. This study compares the analytical performance of two targeted metagenomic virus capture probe-based methods: (i) SeqCap EZ HyperCap by Roche (ViroCap) and (ii) Twist Comprehensive Viral Research Panel workflow, for diagnostic use. Sensitivity, specificity, and limit of detection were analyzed using 25 synthetic viral sequences spiked in increasing proportions of human background DNA, eight clinical samples, and American Type Culture Collection (ATCC) Virome Virus Mix. Sensitivity and specificity were 95% and higher for both methods using the synthetic and reference controls as gold standard. Combining thresholds for viral sequence read counts and genome coverage [respectively 500 reads per million (RPM) and 10% coverage] resulted in optimal prediction of true positive results. Limits of detection were approximately 50-500 copies/mL for both methods as determined by ddPCR. Increasing proportions of spike-in cell-free human background sequences up to 99.999% (50 ng/mL) did not negatively affect viral detection, suggesting effective capture of viral sequences. These data show analytical performances in ranges applicable to clinical samples, for both probe hybridization metagenomic approaches. This study supports further steps toward more widespread use of viral metagenomics for pathogen detection, in clinical and surveillance settings using low biomass samples. IMPORTANCE: Viral metagenomics has been gradually applied for broad-spectrum pathogen detection of infectious diseases, surveillance of emerging diseases, and pathogen discovery. Viral enrichment by probe hybridization methods has been reported to significantly increase the sensitivity of viral metagenomics. During the past years, a specific hybridization panel distributed by Roche has been adopted in a broad range of different clinical and zoonotic settings. Recently, Twist Bioscience has released a new hybridization panel targeting human and animal viruses. This is the first report comparing the performance of viral metagenomic hybridization panels.
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