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Lahmers, K. K.

Publications and source records attributed to Lahmers, K. K..

2 recordsLinked to original sources

Rapid and sensitive virulence prediction and identification of Newcastle disease virus genotypes using third-generation sequencing

Newcastle disease (ND) outbreaks are global challenges to the poultry industry. Effective management requires rapid identification and virulence prediction of the circulating Newcastle disease viruses (NDV), the causative agent of ND. However, these diagnostics are hindered by the genetic diversity and rapid evolution of NDVs. A highly sensitive amplicon sequencing (AmpSeq) workflow for virulence and genotype prediction of NDV samples using a third-generation, real-time DNA sequencing platform is described using both egg-propagated virus and clinical samples. 1D MinION sequencing of barcoded NDV amplicons was performed on 33 egg-grown isolates, (23 unique lineages, including 15 different NDV genotypes), and from 15 clinical swab samples from field outbreaks. Assembly-based data analysis was performed in a customized, Galaxy-based AmpSeq workflow. For all egg-grown samples, NDV was detected and virulence and genotype were predicted. For clinical samples, NDV was detected in ten of eleven NDV samples. Six of the clinical samples contained two mixed genotypes, of which the MinION method detected both genotypes in four of those samples. Additionally, testing a dilution series of one NDV sample resulted in detection of NDV with a 50% egg infectious dose (EID50) as low as 101 EID50/ml. This was accomplished in as little as 7 minutes of sequencing time, with a 98.37% sequence identity compared to the expected consensus. The high sensitivity, fast sequencing capabilities, accuracy of the consensus sequences, and the low cost of multiplexing allowed for identification of NDV of different genotypes circulating worldwide. This general method will likely be applicable to other infections agents.

molecular biology

Fusobacterium genomics using MinION and Illumina sequencing enables genome completion and correction

Understanding the virulence mechanisms of human pathogens from the genus Fusobacterium has been hindered by a lack of properly assembled and annotated genomes. Here we report the first complete genomes for seven Fusobacterium strains, as well as resequencing of the reference strain F. nucleatum subsp. nucleatum ATCC 25586 (seven total species, eight total genomes). A highly efficient and cost-effective sequencing pipeline was achieved using sample multiplexing for short-read Illumina (150 bp) and long-read Oxford Nanopore MinION (>80 kbp) platforms, coupled with genome assembly using the open-source software Unicycler. When compared to currently available draft assemblies (previously 24-67 contigs), these genomes are highly accurate and consist of only one complete chromosome. We present the complete genome sequence of F. nucleatum 23726, a genetically tractable and biomedically important strain, and in addition, reveal that the previous F. nucleatum 25586 genome assembly contains a 452 kb genomic inversion that has been corrected using our sequencing and assembly pipeline. To enable the scientific community, we concurrently use these genomes to launch FusoPortal, a repository of interactive and downloadable genomic data, genome maps, gene annotations, and protein functional analysis and classification. In summary, this study provides detailed methods for accurately sequencing, assembling, and annotating Fusobacterium genomes, which will enhance efforts to properly identify virulence proteins that may contribute to a repertoire of diseases including periodontitis, pre-term birth, and colorectal cancer.

microbiology