Scalable assembly of Ascaris mitogenomes from whole-genome data reveals a novel clade

The genus Ascaris is an important group of giant parasitic roundworms, infecting over 700 million people globally and causing substantial economic losses in domestic pigs. Whilst species of Ascaris are morphologically indistinguishable, analysis of mitochondrial loci has revealed three clades (A, B, C) broadly associated with host species and geographic distribution. The diversity within these lineages may expand with the addition of further genomic data. Here, we present a bioinformatic framework for de novo assembly of complete mitochondrial genomes (mitogenomes) from low-coverage whole-genome data through host-read depletion or mtDNA read enrichment, followed by mtDNA-specific assembly. Our approach yielded 149 high-quality Ascaris mitogenome assemblies, enabling the study of population-level diversity, including the identification of a novel clade (Clade D, designated here) associated with human samples from Ethiopia. Our analysis further revealed Clade C to comprise of pig-derived samples from Europe based on characterisation of worms isolated in Germany. The methods described here provide a scalable framework for mitogenome reconstruction with insights into roundworm population-genomic and phylogenetic studies.

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Publication Details

Journal
Scientific Reports
Published
2026-09-11
DOI
https://doi.org/10.1038/s41598-026-65562-w
Primary Topic
Parasites and Host Interactions
Type
article
Field-Weighted Citation Impact
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article

Scalable assembly of Ascaris mitogenomes from whole-genome data reveals a novel clade

Arnoud H. M. van Vliet, Alexandra Juhász, Poom Adisakwattana, Christina Strübe et al.
Scientific Reports
Parasites and Host Interactions
article

Scalable assembly of Ascaris mitogenomes from whole-genome data reveals a novel clade

Arnoud H. M. van Vliet, Alexandra Juhász, Poom Adisakwattana, Christina Strübe, Toby Landeryou, Marie-Kristin Raulf, Scott P. Lawton, Lauren Woolfe, J. Russell Stothard, Kezia kozel, Umer Chaudhry, Vachel Gay Paller, Allen Jethro Alonte, Martha Betson¹, Kennesa Klariz Llanes
article en

Abstract

The genus Ascaris is an important group of giant parasitic roundworms, infecting over 700 million people globally and causing substantial economic losses in domestic pigs. Whilst species of Ascaris are morphologically indistinguishable, analysis of mitochondrial loci has revealed three clades (A, B, C) broadly associated with host species and geographic distribution. The diversity within these lineages may expand with the addition of further genomic data. Here, we present a bioinformatic framework for de novo assembly of complete mitochondrial genomes (mitogenomes) from low-coverage whole-genome data through host-read depletion or mtDNA read enrichment, followed by mtDNA-specific assembly. Our approach yielded 149 high-quality Ascaris mitogenome assemblies, enabling the study of population-level diversity, including the identification of a novel clade (Clade D, designated here) associated with human samples from Ethiopia. Our analysis further revealed Clade C to comprise of pig-derived samples from Europe based on characterisation of worms isolated in Germany. The methods described here provide a scalable framework for mitogenome reconstruction with insights into roundworm population-genomic and phylogenetic studies.

Scientific ReportsVol. 16(1)
Semmelweis University (HU), University of the Philippines Los Baños (PH), Long Island University (US), University of Veterinary Medicine Hannover, Foundation (DE), Liverpool School of Tropical Medicine (GB), Mahidol University (TH), Scotland's Rural College (GB), University of Surrey (GB)
Medical Research Council, Philippine Council for Health Research and Development
Openalex Percentile: Top 10%
Parasites and Host Interactions
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