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Liu, Y. W.

Publications and source records attributed to Liu, Y. W..

2 recordsLinked to original sources

Repurposing drugs to treat Amoebic Gill Disease in Atlantic Salmon

Neoparameoba perurans causes Amoebic Gill Disease (AGD), a major parasitic disease of marine-phase Atlantic salmon and rainbow trout worldwide. Treatment options are limited to freshwater baths, which are costly at scale and exhibit only limited long-term efficacy. N. perurans contains an obligate eukaryotic symbiont, Perkinsela-like organism (PLO). PLO belongs to the class Kinetoplastida, which includes medically and veterinary important parasites such as Trypanosoma and Leishmania. As such, we hypothesised that trypanocidal drugs developed against other kinetoplastids might also affect N. perurans, potentially through disruption of its PLO symbiont, and used this hypothesis as a rationale for prioritising a focused panel of candidate compounds for screening. A holographic motility-based cytotoxicity assay was established to identify promising candidates in vitro, followed by controlled host tolerance testing and finally a field efficacy sea trial using naturally AGD-exposed site in the west of Ireland. Several compounds showed activity in vitro, especially miltefosine (EC50 1.84 uM, amoebicidal) and isometamidum (EC50 4.63 uM, amoebostatic). In vivo (two intramuscular injections, two weeks apart), miltefosine (Odds Ratio (OR) 0.62), isometamidum (OR 0.61) and benznidazole (OR 0.64) significantly improved gill score over four weeks, with miltefosine showing the largest effect size. Gill parasitaemia, measured via qPCR, was not reduced. Instead, two compounds increased apparent amoeba loads. This work support trypanocidal as potential AGD treatments in the field, although optimisation of dosing, delivery and mode of action requires further study.

microbiology↗

Asymmetric population structure in Neoparamoeba perurans and its kinetoplastid symbiont

Secondary endosymbioses typically involve photosynthetic gain-of-function, at least initially. For Neoparamoeba perurans, the agent of Amoebic Gill Disease in Atlantic salmon, the evolutionary significance of its non-photosynthetic kinetoplastid endosymbiont, Perkinsela, remains a mystery. While such endosymbionts usually mirror organellar uniparental inheritance, departures from strict vertical transmission can significantly impact holobiont evolution and the spread of traits like drug resistance. However, genomic analysis of N. perurans is hampered by continual traffic of bacteria in and out of the amoeba, limiting our understanding of its population dynamics. Here, we developed a dual-target AmpSeq panel from a draft N. perurans genome, enabling simultaneous genotyping of host and symbiont directly from xenic biological samples. Analysis of 58 North Atlantic isolates revealed a striking asymmetry in population structure: the amoeba host forms a diverse, panmictic population with low linkage disequilibrium, whereas Perkinsela exhibits lower diversity and strong clonality. While cophylogenetic analyses confirm a global signal of vertical fidelity, fine-scale genotyping reveals frequent shuffling of host-symbiont pairs. These results suggest that strict host-symbiont co-inheritance is not absolute, perhaps reflecting a system characterised by long-term vertical stability punctuated by intermittent reassortment. Ultimately, we validate AmpSeq as a robust, scalable tool for decoupling complex host-symbiont trajectories and monitoring multi-partner disease dynamics in aquaculture environments.

genomics↗