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February 28, 2026Veterinary Sciences0 citationsOpen Access

Nanopore Sequencing in Veterinary Pathogen Detection: A Review of Technologies and Applications

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LXLei XuLZLeilei ZhaoZTZeyu Tong

Key Points

  • This review aims to evaluate the advancements and applications of nanopore sequencing in detecting animal pathogens.
  • Consolidation of recent evidence in nanopore sequencing technology.
  • Survey of applications across viral, bacterial, and parasitic pathogens.
  • Comparison of nanopore sequencing to traditional diagnostic methods.
  • Demonstrates rapid whole-genome sequencing for viral diagnostics.
  • Enables identification of antimicrobial resistance genes in bacterial pathogens.
  • Shows high-resolution species identification in parasitology.

Abstract

Nanopore-based sequencing has emerged as a revolutionary tool for animal pathogen genomics, offering capabilities unattainable with Sanger and next-generation sequencing (NGS). Despite rapid technical progress, routine veterinary deployment still faces uncertainty in study design, sample preparation, and interpretation thresholds across diverse hosts and sample matrices. Accordingly, this review consolidates recent evidence and provides workflow-oriented guidance for veterinary diagnostics and One Health surveillance. Its portability, ability to generate real-time long-read data, and minimal infrastructure requirements enable rapid, on-site sequencing for veterinary diagnostics and surveillance. This review examines the principles of nanopore sequencing and its advantages over conventional methods, surveying recent applications across viral, bacterial (including antimicrobial resistance, AMR), and parasitic pathogen detection in animals. In viral diagnostics, it facilitates rapid whole-genome sequencing and outbreak tracing in field settings. For bacterial pathogens, it enables near-complete genome assembly and identification of plasmid-borne AMR genes. Emerging studies also demonstrate its utility in parasitology, from high-resolution species identification to whole-genome assemblies. We compare these advancements with traditional diagnostics, highlighting strengths in speed and comprehensiveness while addressing current limitations in accuracy and host-DNA interference. As technology matures through improvements in chemistry and adaptive sampling, nanopore sequencing is poised to transform veterinary pathogen detection and bolster One Health surveillance of emerging zoonoses.

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Cite This Study

Xu et al. (2026) studied this question.

synapsesocial.com/papers/69a286c90a974eb0d3c01fb6https://doi.org/10.3390/vetsci13030216
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