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Leon Coria, A.

Publications and source records attributed to Leon Coria, A..

2 recordsLinked to original sources

A single-cell transcriptomics atlas for the parasitic nematode Heligmosomoides bakeri: Extrapolating model organism information to non-model systems

Single-cell atlases aim to collect the gene expression information for every cell type in an organism but can be challenging to perform in non-model organisms. To try to circumvent the problem of having no verified cell type markers in the parasitic nematode Heligmosomoides bakeri to use for an atlas, we attempted to use orthologs of verified markers from the closely related model organism Caenorhabditis elegans. This resulted in a useful comparison between the two worms for each of the cell types recovered in preliminary H. bakeri single-cell RNA-sequencing. For H. bakeri males and females, robustly recovered cell types include the gametes, embryos, and male intestine, while hypodermis, neurons, muscles, and pharyngeal cells were under-represented cell types. The two worms appear to have a similar hypodermis, cuticle, eggshell, and spermatogenesis process. On the other hand, putative cell identities and cell cycle scores suggest the intestine and muscle cells in H. bakeri may still be cycling and dividing, unlike in C. elegans. Additionally, embryogenesis and early development appear to be quite different between the two worms, with only eight out of 94 confirmed paternal contributions to the embryo in C. elegans (with an ortholog) predicted to also be paternal contributions in H. bakeri. Overall, this new dataset allowed me to move beyond the presence or absence of orthologs to include their tissue specificity and expression level similarities and differences when comparing these two worms to better identify biological processes and traits in a parasitic nematode that are modelled well by C. elegans.

developmental biology↗

The highly repetitive genome of Myxobolus rasmusseni n. sp, a myxozoan parasite of fathead minnows

BackgroundThe Myxozoa is a group of at least 2,400 endoparasites within the phylum Cnidaria. All myxozoans have greatly reduced in size and morphology compared to free-living members of the phylum. They are best known for causing disease in economically important fish across the world; for example, Myxobolus cerebralis causes whirling disease, which can kill 90% of infected juvenile salmonid fish. In 2017, a new myxozoan species was identified in Alberta. Myxobolus sp. causes distinct lesions in fathead minnows, which are ultimately fatal. Here, we sequenced, assembled and analyzed the genome of Myxobolus sp. to understand how the parasite interacts with its fish host and identify potential strategies to counter this emerging threat. ResultsAt 185 Mb, the Myxobolus sp. genome is the largest myxozoan genome sequenced so far. This large genome size is, in part, due to the high repetitive content; 68% of the genome was interspersed repeats, with the MULE-MuDR transposon covering 18% of the Myxobolus sp. genome. Similar to myxozoan genomes, the Myxobolus sp. genome has lost many genes well conserved in other eukaryotes. However, we also identified multiple expansions in gene families--serine proteases, hexokinases, and FLYWCH-domain containing proteins--which suggests their functional importance in the parasite. The mitochondrial genome of Myxobolus sp. encodes only five of the thirteen protein-coding genes typically found in animals. We found that the mitochondrial gene atp6 was transferred to the nucleus and acquired a mitochondria-targeting signal in Myxobolus sp. ConclusionsOur study provides valuable insights into myxozoan biology and identify promising avenues for future research. We also propose that Myxobolus sp. is promising myxozoan model to explore host-parasite interactions in these parasites.

zoology↗