Please use this identifier to cite or link to this item: http://hdl.handle.net/1893/38163
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dc.contributor.authorElsheshtawy, Ahmeden_UK
dc.contributor.authorClokie, Benjamin G Jen_UK
dc.contributor.authorSaugh, Sashaen_UK
dc.contributor.authorAdler, Karen Den_UK
dc.contributor.authorMichniewski, Slawomir Men_UK
dc.contributor.authorMacKenzie, Simonen_UK
dc.contributor.authorClokie, Martha R Jen_UK
dc.contributor.authorSicheritz-Pontén, Thomasen_UK
dc.contributor.authorAlbalat, Amayaen_UK
dc.date.accessioned2026-06-10T00:13:24Z-
dc.date.available2026-06-10T00:13:24Z-
dc.date.issued2026-12en_UK
dc.identifier.other105151en_UK
dc.identifier.urihttp://hdl.handle.net/1893/38163-
dc.description.abstractThe Norway lobster (Nephrops norvegicus) is a high-value seafood product with limited shelf-life under chilled storage. This study investigated microbial succession and spoilage dynamics during ice storage (0 °C, 16 days) using an integrated multi-omics approach combining sensory assessment (Quality Index Method), physicochemical indicators (muscle pH and K-value), culture-dependent microbiology, absolute bacterial load quantification (16S rRNA qPCR), 16S rRNA gene amplicon sequencing and shotgun metagenomics. Quality deterioration was characterised by progressive increases in sensory scores, nucleotide degradation and muscle pH, with rejection occurring at day 7. This transition coincided with a marked increase in bacterial load following an initial lag phase (days 0-5), indicating a critical shift in spoilage progression. Amplicon sequencing revealed a transition from a diverse early community (days 0-3) to a Proteobacteria-dominated assemblage from day 5 onwards, driven by increases in Moritella, Pseudoalteromonas and Aliivibrio. Metagenomic analysis further resolved these dynamics at species-level resolution and identified a limited number of dominant taxa associated with mid-to late-stage spoilage. The convergence of sensory rejection, physicochemical changes and microbial restructuring identifies a mid-storage tipping point in spoilage development. By integrating multi-omics with established quality indicators, this study links microbial succession to measurable spoilage outcomes. The dominant taxa are consistent with known spoilage-associated activities, including proteolysis and off-odour production, while highlighting Moritella as a potential contributor in crustacean spoilage. These findings provide a temporal framework for spoilage progression in N. norvegicus and inform targeted strategies for shelf-life management.en_UK
dc.language.isoenen_UK
dc.publisherElsevier BVen_UK
dc.relationElsheshtawy A, Clokie BGJ, Saugh S, Adler KD, Michniewski SM, MacKenzie S, Clokie MRJ, Sicheritz-Pontén T & Albalat A (2026) Microbial succession and spoilage dynamics revealed by multi-omics in Norway lobster (Nephrops norvegicus) during ice storage. <i>Food Microbiology</i>, 140, Art. No.: 105151. https://doi.org/10.1016/j.fm.2026.105151en_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.subjectSeafood spoilageen_UK
dc.subjectAmplicon sequencingen_UK
dc.subjectMetagenomicsen_UK
dc.subjectCrustaceansen_UK
dc.subjectShelf-lifeen_UK
dc.subjectMoritellaen_UK
dc.titleMicrobial succession and spoilage dynamics revealed by multi-omics in Norway lobster (Nephrops norvegicus) during ice storageen_UK
dc.typeJournal Articleen_UK
dc.identifier.doi10.1016/j.fm.2026.105151en_UK
dc.citation.jtitleFood Microbiologyen_UK
dc.citation.issn0740-0020en_UK
dc.citation.volume140en_UK
dc.citation.publicationstatusPublisheden_UK
dc.citation.peerreviewedRefereeden_UK
dc.type.statusVoR - Version of Recorden_UK
dc.contributor.funderCentre for Enviroment, Fisheries & Aquacultureen_UK
dc.author.emailamaya.albalat@stir.ac.uken_UK
dc.citation.date13/05/2026en_UK
dc.contributor.affiliationInstitute of Aquacultureen_UK
dc.contributor.affiliationInstitute of Aquacultureen_UK
dc.contributor.affiliationAquaglobal Veterinary Consultingen_UK
dc.contributor.affiliationUniversity of Leicesteren_UK
dc.contributor.affiliationUniversity of Leicesteren_UK
dc.contributor.affiliationInstitute of Aquacultureen_UK
dc.contributor.affiliationUniversity of Leicesteren_UK
dc.contributor.affiliationUniversity of Copenhagenen_UK
dc.contributor.affiliationInstitute of Aquacultureen_UK
dc.identifier.scopusid105039707994en_UK
dc.identifier.wtid2264221en_UK
dc.contributor.orcid0000-0003-3811-4997en_UK
dc.contributor.orcid0000-0003-1845-6826en_UK
dc.contributor.orcid0000-0002-8606-2995en_UK
dc.date.accepted2026-05-12en_UK
dcterms.dateAccepted2026-05-12en_UK
dc.date.filedepositdate2026-06-04en_UK
dc.relation.funderprojectPhage-based shelf-life extension of langoustinesen_UK
dc.relation.funderrefPO 20064014en_UK
rioxxterms.apcpaiden_UK
rioxxterms.versionVoRen_UK
local.rioxx.authorElsheshtawy, Ahmed|0000-0003-3811-4997en_UK
local.rioxx.authorClokie, Benjamin G J|en_UK
local.rioxx.authorSaugh, Sasha|en_UK
local.rioxx.authorAdler, Karen D|en_UK
local.rioxx.authorMichniewski, Slawomir M|en_UK
local.rioxx.authorMacKenzie, Simon|0000-0003-1845-6826en_UK
local.rioxx.authorClokie, Martha R J|en_UK
local.rioxx.authorSicheritz-Pontén, Thomas|en_UK
local.rioxx.authorAlbalat, Amaya|0000-0002-8606-2995en_UK
local.rioxx.projectPO 20064014|Centre for Enviroment, Fisheries & Aquaculture|en_UK
local.rioxx.freetoreaddate2026-06-04en_UK
local.rioxx.licencehttp://creativecommons.org/licenses/by/4.0/|2026-06-04|en_UK
local.rioxx.filename1-s2.0-S0740002026001152-main.pdfen_UK
local.rioxx.filecount1en_UK
local.rioxx.source0740-0020en_UK
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