A new laboratory method developed at the University of Stirling is changing how scientists can study one of the most economically damaging parasites in global aquaculture: the salmon louse. The technique allows researchers to collect and analyse the secretory and excretory products, or SEPs, of individual salmon lice with unprecedented precision, opening a path toward a deeper understanding of how the parasite feeds on fish and evades their immune defences. The work, led by PhD researcher Alexander Dindial alongside Professor James Bron and Dr Sean Monaghan at the university’s Institute of Aquaculture, in collaboration with Kevin McLean of the Moredun Research Institute, has been published in the journal Veterinary Parasitology.
Salmon lice are ectoparasites that feed on the skin, mucus, and blood of fish. Their feeding activity creates open wounds that can become infected, reducing the market value of farmed fish and increasing the likelihood of secondary infections. Beyond the direct damage to individual animals, infestations impose enormous costs on the aquaculture sector. Sea lice infestations in Atlantic salmon farming cost the industry more than one billion dollars a year through mortality, lost production, and the implementation of control measures. Understanding the biology of the parasite at a molecular level is therefore considered a critical step in developing new, safe, and effective strategies for its control.
The central innovation of the new study lies in its sampling approach. Previous methods for extracting SEPs from salmon lice involved pooling together large numbers of individuals before analysis. While such pooled samples could yield enough material for detection, they averaged out the natural differences between individual lice. Those differences, the researchers argue, can provide vital insight for developing targeted treatments or vaccines, because they reveal how variable the parasite’s secretory arsenal is across a population. By contrast, the new method allows the collection of high-quality samples from a single louse per test, with substantial yields of secretory proteins per individual, while also reducing the potential for contamination of the samples with louse faecal material.
The collection procedure itself is elegantly simple in concept. Researchers place a small drop of solution over the mouthparts of an individual louse and allow the animal to release its secretory proteins into that droplet. The protein-laden solution is then examined using liquid chromatography tandem mass spectrometry, a state-of-the-art analytical technique that separates the components of a sample, breaks them into fragments, and analyses those fragments to reveal the exact protein composition of each sample. Applied to single-louse samples, this approach produces a detailed proteomic fingerprint of what each individual parasite is secreting at the moment of collection.
Using this assay, the team identified 148 secretory proteins in total, 64 of which were detected across each of the tested conditions. The consistency of that core set of proteins across individuals and conditions makes it particularly interesting from an applied perspective, because proteins that are reliably present in the parasite’s secretions could represent potential targets for vaccine development. A vaccine that prompts fish to mount an immune response against molecules the louse depends on for feeding or immune evasion could, in principle, reduce the parasite’s ability to establish itself on its host.
One of the most striking findings of the study was the degree of variation observed between individual lice. The secretory protein profiles of single animals showed wide variation in both the number and the diversity of proteins detected, a pattern the researchers note is consistent with what has been seen in other ectoparasites such as ticks and mosquitoes. This individual-level variability would have been invisible in pooled samples, and it underscores why the ability to study lice one at a time matters. If different lice deploy different combinations of secreted molecules, control strategies may need to account for that diversity in order to be effective across a whole parasite population.
The researchers emphasise that the methodology has value well beyond cataloguing proteins. Because the protocol allows reproducible, reliable, and efficient extraction of high concentrations of salmon louse secretions while minimising faecal contamination, it can serve as a platform for future experiments. Mr Dindial noted that the protocol could be used to investigate how drug or therapeutic treatments might alter louse secretory activity, which would allow scientists to test whether candidate interventions disrupt the parasite’s ability to feed or evade immunity. In this way, the assay functions both as a discovery tool and as a screening tool for evaluating new control measures.
The study also builds directly on a first-of-its-kind investigation led by Mr Dindial and published the previous year, which uncovered major differences in the secretions the parasite uses to feed and evade the immune system at different stages of its life cycle. Taken together, the two studies sketch a picture of a parasite whose chemical toolkit changes as it develops, and whose secretions vary from one individual to the next. That level of biological detail is exactly the kind of information needed to design interventions that are precise enough to work against the parasite while avoiding some of the drawbacks of existing treatments.
The need for better tools is pressing. Various treatments have been developed to tackle sea lice infestations in Atlantic salmon aquaculture, but some of these can be expensive, unreliable, environmentally damaging, or harmful to animal welfare. Chemical treatments can lose effectiveness as the parasite develops resistance, and mechanical or biological control approaches each carry their own limitations and costs. A strategy grounded in the parasite’s own secretory biology, whether through vaccination, targeted therapeutics, or the breeding of more resistant fish, offers the prospect of control measures that are both more effective and more sustainable than those currently available.
The research was funded by EastBio as part of Mr Dindial’s PhD studentship, with a funding contribution from the Moredun Research Institute. It was conducted in collaboration with the project Towards lice-resistant salmon: functional genetics and genome editing to enhance disease resistance in aquaculture, funded by the UK Biotechnology and Biological Sciences Research Council, the Sustainable Aquaculture Innovation Centre, and Benchmark Genetics Limited, and involving partners from the Roslin Institute at the University of Edinburgh, the Centre for Environment Fisheries and Aquaculture Science, the Atlantic Veterinary College at the University of Prince Edward Island, and Kames Fish Farming Ltd. The study, titled Investigation of a novel assay for the proteomic screening of the secretory and excretory products of individual salmon lice Lepeophtheirus salmonis, was published in Veterinary Parasitology on 1 May 2026. As the aquaculture industry continues to search for durable solutions to its costliest parasite problem, the ability to read the chemical language of individual lice may prove to be a decisive step forward.
Subject of Research: Proteomic analysis of secretory and excretory products of individual salmon lice for parasite control in aquaculture
Article Title: A University of Stirling study could pave the way for the more efficient study of the secretions that salmon lice use to avoid fish defences, potentially enabling the development of new strategies to protect salmon from infestations. Research led by PhD
Article References: A University of Stirling study could pave the way for the more efficient study of the secretions that salmon lice use to avoid fish defences, potentially enabling the development of new strategies to protect salmon from infestations. Research led by PhD. (n.d.). Original publication
Image Credits: AI Generated
DOI: Not provided
Keywords: salmon lice, aquaculture, proteomics, mass spectrometry, secretory proteins, Lepeophtheirus salmonis, vaccine development, parasite control, Atlantic salmon, University of Stirling, Veterinary Parasitology, immune evasion
Cite Scienmag News
Kristina Jarvis. (October 5, 2026). New Single-Louse Technique Reveals Salmon Lice Secretions That Evade Fish Immunity. Scienmag. https://scienmag.com/new-single-louse-technique-reveals-salmon-lice-secretions-that-evade-fish-immunity/
Kristina Jarvis. "New Single-Louse Technique Reveals Salmon Lice Secretions That Evade Fish Immunity." Scienmag, 5 October 2026, https://scienmag.com/new-single-louse-technique-reveals-salmon-lice-secretions-that-evade-fish-immunity/. Accessed 5 October 2026.
Kristina Jarvis. "New Single-Louse Technique Reveals Salmon Lice Secretions That Evade Fish Immunity." Scienmag. October 5, 2026. https://scienmag.com/new-single-louse-technique-reveals-salmon-lice-secretions-that-evade-fish-immunity/

