Please use this identifier to cite or link to this item: http://hdl.handle.net/1893/38224
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dc.contributor.advisorAmaya, Albalat-
dc.contributor.authorMcDonald, Emma-
dc.date.accessioned2026-07-27T12:43:50Z-
dc.date.available2026-07-27T12:43:50Z-
dc.date.issued2026-07-27-
dc.identifier.urihttp://hdl.handle.net/1893/38224-
dc.description.abstractThe Black Soldier Fly (Hermetia illucens) has emerged as a sustainable bioconversion species with considerable potential for a circular economy. While extensively studied for waste management and protein production, its innate immune system remains comparatively underexplored. This thesis aims to establish and optimise experimental and molecular approaches to investigate host immune responses and bacteriophage-pathogen interactions in H. illucens, providing new insight into its immunological potential and implications for sustainable disease control. Methodological optimisation included refining larval rearing conditions, bioactive administration, and RNA extraction techniques tailored to the physiological characteristics of H. illucens. Using pathogen-associated molecular patterns (PAMPS), lipopolysaccharide (LPS) and polyinosinic:polycytidylic [Poly (I:C)], the dose-dependent induction of pattern-recognition receptors and antimicrobial peptide genes was quantified through qPCR analysis. Responses showed thresholds and paralogue-specific expression profiles, indicating scalable innate activation. A directional poly (A) RNA-seq transcriptome was generated from pooled whole-body larvae and subjected to genome-guided, orthology-informed annotation to produce a curated immune gene database. Canonical innate immune pathways, including Toll, IMD, JAK/STAT and JNK signalling, were characterised through Gene Ontology, KEGG, Reactome, and STRING protein-protein interaction analyses, providing a comprehensive molecular framework for future functional and comparative studies. Finally, prophylactic administration of bacteriophage SPFM14 significantly reduced Salmonella enterica serovar Typhimurium (SL1344) colonisation in H. illucens, supporting the potential of phage-based biocontrol as an alternative to antibiotics in insect production systems. Time-course experiments further demonstrated rapid phage shedding from the larval gut, providing important context for interpreting in vivo phage persistence and bacteriophage-mediated bacterial control.en_GB
dc.language.isoenen_GB
dc.publisherUniversity of Stirlingen_GB
dc.subjectblack soldier flyen_GB
dc.subjecthermetia illucensen_GB
dc.subjectantimicrobial peptidesen_GB
dc.subjecttranscriptomeen_GB
dc.subjectimmunityen_GB
dc.subjectbacteriophageen_GB
dc.subjectphageen_GB
dc.subjectsalmonellaen_GB
dc.subjectsalmonella typhimuiriumen_GB
dc.subjectphage therapyen_GB
dc.subject.lcshFliesen_GB
dc.subject.lcshStratiomyidaeen_GB
dc.subject.lcshBacteriophagesen_GB
dc.subject.lcshPeptide antibioticsen_GB
dc.subject.lcshBlack soldier flyen_GB
dc.subject.lcshHermetia illucensen_GB
dc.subject.lcshLarvaeen_GB
dc.titleHost immunology and pathogen-bacteriophage interactions in Black Soldier Fly Larvae (BSFL; Hermetia illucens)en_GB
dc.typeThesis or Dissertationen_GB
dc.type.qualificationlevelDoctoralen_GB
dc.type.qualificationnameDoctor of Philosophyen_GB
dc.contributor.funderiBioICen_GB
dc.author.emailemmamcdonald2801@gmail.comen_GB
Appears in Collections:Aquaculture eTheses

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