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Debler, J. W.

Publications and source records attributed to Debler, J. W..

2 recordsLinked to original sources

Make it so: Rapid and affordable plasmid sequencing on ONT platforms with PICARD-seq

Plasmid construction underpins molecular biology and synthetic biology, yet validation is often limited to the inserted fragment rather than the whole plasmid, and around a third of laboratory-made plasmids carry sequence errors that can affect function. Sanger sequencing scales poorly across whole plasmids, while short-read approaches cannot resolve the repeated DNA parts, such as promoters, that are common in synthetic constructs. We present PICARD-seq, a rapid nanopore-based protocol that uses off-the-shelf Tn5 rapid barcoding reagents and a MinION to sequence pools of whole plasmids in under a day, and we systematically benchmark the computational pipelines available for analysing the resulting data. Using a curated set of 25 plasmids of known sequence spanning 3.0-20.6 kbp, including various dilution series and repetitive multi-part constructs, we ran five independent replicates of each pipeline. The ONT EPI2ME Clone Validation workflow was fast (13-18 min) but stochastic, varying between replicates for both plasmids assembled and what sequence was returned; Canu outperformed the default Flye assembler, and reducing the minimum coverage parameter from 60x to 20x substantially improved assembly of large, repetitive, and dilute samples. The ensemble assembler Autocycler was slower (81-111 min) but gave the highest and most consistent rate of recovering the expected sequence. Complementary read mapping with minimap2 distinguished genuine sequence differences from assembly artefacts. Applying PICARD-seq to problematic plasmids revealed backbone concatemers, a misincorporated promoter part, and a mixed population of rearranged molecules in a repetitive construct. PICARD-seq makes routine whole-plasmid validation practical and affordable for individual laboratories.

bioinformatics↗

Major effector loss reveals compensatory pathogenicity networks in a necrotrophic wheat pathogen

Necrotrophic effectors (NEs) are key determinants of virulence in the necrotrophic fungal pathogen Parastagonospora nodorum that causes septoria nodorum blotch of wheat. However, targeted removal of three important NEs SnToxA, SnTox1, and SnTox3 in the mutant{Delta} toxa13 previously revealed a redundancy mechanism is triggered, whereby pathogenicity on wheat is maintained. In this study, we investigated the gene regulatory profile underpinning this phenomenon and discover that virulence is not dependent on a fixed set of dominant effectors but instead arises from a flexible, epistatic compensatory network. Although host transcriptional responses to the P. nodorum wildtype SN15 and{Delta} toxa13 infection remained largely conserved, consistent with an overlapping disease-susceptibility pathway, a significant upregulation of candidate effector genes was observed in{Delta} toxa13. This included the recently characterised NE SnTox267, and several other candidate effectors able to induce necrosis in the non-host Nicotiana benthamiana, each carrying a predicted structural fold conserved across other pathogens. We therefore provide further direct evidence that virulence is maintained in P. nodorum lacking three NEs by an epistatic and compensatory effector network, underpinned by changes in pathogen gene expression. Targeting conserved effector-mediated virulence mechanisms rather than individual host-specific gene-for-gene interactions may provide a more tractable route to host resistance.

molecular biology↗