Please use this identifier to cite or link to this item: http://hdl.handle.net/1893/37773
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dc.contributor.authorDindial, Alexanderen_UK
dc.contributor.authorMonaghan, Seanen_UK
dc.contributor.authorHaywood, Jayen_UK
dc.contributor.authorMcLean, Kevinen_UK
dc.contributor.authorAndroscuk, Dorotaen_UK
dc.contributor.authorThompson, Kimen_UK
dc.contributor.authorRoy, Williamen_UK
dc.contributor.authorBron, Jamesen_UK
dc.date.accessioned2026-01-24T01:05:27Z-
dc.date.available2026-01-24T01:05:27Z-
dc.date.issued2025-12en_UK
dc.identifier.other110608en_UK
dc.identifier.urihttp://hdl.handle.net/1893/37773-
dc.description.abstractThe salmon louse (Lepeophtheirus salmonis (Krøyer, 1837)) is a caligid ectoparasite of salmonids that feeds on host blood, mucus, and skin. While secreted virulence factors from later life stages have been studied, the protein composition of secretory and excretory products (SEPs) from copepodids, the initial infectious stage of L. salmonis, remains uncharacterized. Copepodids were hatched and incubated at 10°C until 7 days post-hatch. Batches (n = 4) were then exposed to either 0.45 μm filtered seawater or 0.1 mg mL⁻¹ isophorone to stimulate SEP production. Adult males and females (n = 2 replicates) were similarly treated for comparison. SEPs were filtered, precipitated, trypsin-digested, and analyzed via LC-MS/MS. Proteins were identified using an L. salmonis database and further analyzed with SignalP and InterPro. In total, 433 distinct proteins were detected in copepodid samples (mean 95.5 ± 146.74), and 117 in adult samples (mean 56 ± 12.70). Signal peptide analysis revealed 164 copepodid and 69 adult proteins as secretory. Among adults, 31 secretory proteins were female-specific and 10 male-specific. Twenty-one secretory proteins were shared across life stages, including 8 proteases, 2 protease inhibitors, and 2 uncharacterized proteins. Of proteins with GO annotations, 75 % were involved in proteolysis and 50 % localized extracellularly. However, secretory profiles differed markedly between life stages. Notably, 67 % of adult-specific secretory proteins were extracellular versus 30.7 % in copepodids. Copepodid and adult SEPs also contained 23 and 4 unique uncharacterized proteins, respectively. These findings highlight a complex repertoire of copepodid SEPs potentially involved in host invasion and immunomodulation, providing new targets for therapeutic development.en_UK
dc.language.isoenen_UK
dc.publisherElsevier BVen_UK
dc.relationDindial A, Monaghan S, Haywood J, McLean K, Androscuk D, Thompson K, Roy W & Bron J (2025) Investigation of proteins identified in the secretory and excretory products (SEPs) of the infectious copepodid stage of the salmon louse Lepeophtheirus salmonis. <i>Veterinary Parasitology</i>, 340, Art. No.: 110608. https://doi.org/10.1016/j.vetpar.2025.110608en_UK
dc.rightsThis is an open access article distributed under the terms of the Creative Commons CC-BY license, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited. You are not required to obtain permission to reuse this article.en_UK
dc.rights.urihttp://creativecommons.org/licenses/by/4.0/en_UK
dc.subjectLepeophtheirus salmonisen_UK
dc.subjectCopepodiden_UK
dc.subjectSEPsen_UK
dc.subjectProteomicsen_UK
dc.subjectIsophoroneen_UK
dc.subjectSalmo salaren_UK
dc.titleInvestigation of proteins identified in the secretory and excretory products (SEPs) of the infectious copepodid stage of the salmon louse Lepeophtheirus salmonisen_UK
dc.typeJournal Articleen_UK
dc.identifier.doi10.1016/j.vetpar.2025.110608en_UK
dc.identifier.pmid40972416en_UK
dc.citation.jtitleVeterinary Parasitologyen_UK
dc.citation.issn0304-4017en_UK
dc.citation.volume340en_UK
dc.citation.publicationstatusPublisheden_UK
dc.citation.peerreviewedRefereeden_UK
dc.type.statusVoR - Version of Recorden_UK
dc.contributor.funderBiotechnology and Biological Sciences Research Councilen_UK
dc.contributor.funderBiotechnology and Biological Sciences Research Councilen_UK
dc.author.emails.j.monaghan@stir.ac.uken_UK
dc.citation.date13/09/2025en_UK
dc.contributor.affiliationInstitute of Aquacultureen_UK
dc.contributor.affiliationInstitute of Aquacultureen_UK
dc.contributor.affiliationUniversity of Stirlingen_UK
dc.contributor.affiliationMoredun Research Instituteen_UK
dc.contributor.affiliationMoredun Research Instituteen_UK
dc.contributor.affiliationMoredun Research Instituteen_UK
dc.contributor.affiliationMoredun Scientificen_UK
dc.contributor.affiliationInstitute of Aquacultureen_UK
dc.identifier.isiWOS:001576885600001en_UK
dc.identifier.scopusid105016411750en_UK
dc.identifier.wtid2216456en_UK
dc.contributor.orcid0000-0002-7692-7756en_UK
dc.contributor.orcid0000-0003-3544-0519en_UK
dc.date.accepted2025-09-12en_UK
dcterms.dateAccepted2025-09-12en_UK
dc.date.filedepositdate2025-12-05en_UK
dc.relation.funderprojectTowards lice-resistant salmon: Functional genetics and genome editing to enhance disease resistance in aquacultureen_UK
dc.relation.funderrefBB/V0009990/1en_UK
rioxxterms.apcpaiden_UK
rioxxterms.versionVoRen_UK
local.rioxx.authorDindial, Alexander|en_UK
local.rioxx.authorMonaghan, Sean|0000-0002-7692-7756en_UK
local.rioxx.authorHaywood, Jay|en_UK
local.rioxx.authorMcLean, Kevin|en_UK
local.rioxx.authorAndroscuk, Dorota|en_UK
local.rioxx.authorThompson, Kim|en_UK
local.rioxx.authorRoy, William|en_UK
local.rioxx.authorBron, James|0000-0003-3544-0519en_UK
local.rioxx.projectBB/V0009990/1|Biotechnology and Biological Sciences Research Council|http://dx.doi.org/10.13039/501100000268en_UK
local.rioxx.projectBB/V0009990/1|Scottish Aquaculture Innovation Centre|en_UK
local.rioxx.freetoreaddate2026-01-22en_UK
local.rioxx.licencehttp://creativecommons.org/licenses/by/4.0/|2026-01-22|en_UK
local.rioxx.filename1-s2.0-S0304401725002195-main.pdfen_UK
local.rioxx.filecount1en_UK
local.rioxx.source0304-4017en_UK
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