Your browser doesn't support javascript.
loading
Show: 20 | 50 | 100
Results 1 - 3 de 3
Filter
Add more filters











Database
Language
Publication year range
1.
Parasit Vectors ; 13(1): 344, 2020 Jul 10.
Article in English | MEDLINE | ID: mdl-32650825

ABSTRACT

BACKGROUND: Hydrogen peroxide (H2O2) is one of the delousing agents used to control sea lice infestations in salmonid aquaculture. However, some Lepeophtheirus salmonis populations have developed resistance towards H2O2. An increased gene expression and activity of catalase, an enzyme that breaks down H2O2, have been detected in resistant lice, being therefore introduced as a resistance marker in the salmon industry. In the present study the aim was to validate the use of catalase expression as a marker and to identify new candidate genes as additional markers to catalase, related to H2O2 resistance in L. salmonis. METHODS: A sensitive and an H2O2 resistant laboratory strain (P0 generation, not exposed to H2O2 for several years) were batch crossed to generate a cohort with a wide range of H2O2 sensitivities (F2 generation). F2 adult females were then exposed to H2O2 to separate sensitive and resistant individuals. Those F2 lice, the P0 lice and field-collected resistant lice (exposed to H2O2 in the field) were used in an RNA sequencing study. RESULTS: Catalase was upregulated in resistant lice exposed to H2O2 compared to sensitive lice. This was, however, not the case for unexposed resistant P0 lice. Several other genes were found differentially expressed between sensitive and resistant lice, but most of them seemed to be related to H2O2 exposure. However, five genes were consistently up- or downregulated in the resistant lice independent of exposure history. The upregulated genes were: one gene in the DNA polymerase family, one gene encoding a Nesprin-like protein and an unannotated gene encoding a small protein. The downregulated genes encoded endoplasmic reticulum resident protein 29 and an aquaporin (Glp1_v2). CONCLUSIONS: Catalase expression seems to be induced by H2O2 exposure, since it was not upregulated in unexposed resistant lice. This may pose a challenge for its use as a resistance marker. The five new genes associated with resistance are put forward as complementary candidate genes. The most promising was Glp1_v2, an aquaglyceroporin that may serve as a passing channel for H2O2. Lower channel number can reduce the influx or distribution of H2O2 in the salmon louse, being directly involved in the resistance mechanism.


Subject(s)
Copepoda , Drug Resistance/genetics , Ectoparasitic Infestations/veterinary , Hydrogen Peroxide , Animals , Aquaculture/methods , Aquaporins/genetics , Aquaporins/metabolism , Catalase/genetics , Catalase/metabolism , Copepoda/drug effects , Copepoda/genetics , Copepoda/metabolism , Ectoparasitic Infestations/drug therapy , Fish Diseases/drug therapy , Fish Diseases/parasitology , Genetic Markers , Hydrogen Peroxide/metabolism , Hydrogen Peroxide/therapeutic use , RNA-Seq/methods , Salmon/parasitology
2.
Dev Comp Immunol ; 100: 103424, 2019 11.
Article in English | MEDLINE | ID: mdl-31254563

ABSTRACT

Complement component 5 (C5) is an essential factor of the defensive complement system in all vertebrates. We report the characterization of C5 cDNA and protein from Atlantic salmon (Salmo salar), a teleost fish species of high importance in aquaculture. The C5 cDNA cloned from liver is 5079 nucleotides long, whose translation product has a molecular weight of 190 kDa, with the classical ß-α orientation and motifs/sites for ß-α cleavage (678RPKR681) and cleavage by C5 convertases (R758). Mass spectrometric analysis show a single N-linked, biantennary, complex glycan at N1125. Moreover, the N-linked glycan displays an unusual modification in the form of acetylated sialic acid residues. Three anti-C5 antisera produced in mice using purified C5 worked in immunohistochemical analyses of formalin fixed liver tissue. The purification method, whereby inactive and activated (C5b) forms were isolated, opens for interesting studies on the complement function in fish, including possible connection to stress, disease and glycosylation.


Subject(s)
Complement C5/immunology , Fish Proteins/immunology , Salmo salar/immunology , Amino Acid Sequence/genetics , Animals , Cloning, Molecular , Complement C5/genetics , Complement C5/isolation & purification , Complement C5/metabolism , DNA, Complementary/genetics , Fish Proteins/genetics , Fish Proteins/isolation & purification , Fish Proteins/metabolism , Glycosylation , Molecular Weight , Salmo salar/blood , Salmo salar/genetics , Salmo salar/metabolism , Sequence Alignment , Sequence Homology, Amino Acid
3.
Parasit Vectors ; 11(1): 570, 2018 Oct 30.
Article in English | MEDLINE | ID: mdl-30376873

ABSTRACT

BACKGROUND: Control of the sea louse Caligus rogercresseyi in the Chilean salmonid industry is reliant on chemical treatments. Azamethiphos was introduced in 2013, although other organophosphates were previously used. In 2014, reduced sensitivity to azamethiphos was detected in the Los Lagos Region using bioassays. The main target of organophosphates is the enzyme acetylcholinesterase (AChE). Mutations in the AChE gene are the main cause of organophosphate resistance in arthropods, including other sea lice. In the present study, we aimed to characterize C. rogercresseyi AChE(s) gene(s) and to study the association between AChE variants and azamethiphos resistance in this sea louse species. METHODS: Samples of adult male and female C. rogercresseyi were collected in the Los Lagos Region in 2014. Twenty-four hour exposure bioassays with azamethiphos were performed to select sensitive and resistant lice. The full-length cDNA coding sequences encoding for two AChEs in C. rogercresseyi were molecularly characterized. One of the AChE genes was screened by direct sequencing in the azamethiphos-selected lice to search for variants. An additional louse sampling was performed before and after an azamethiphos treatment in the field in 2017 to validate the findings. RESULTS: The molecular analysis revealed two putative AChEs in C. rogercresseyi. In silico analysis and 3D modelling of the protein sequences identified both of them as invertebrate AChE type 1; they were named C. rogercresseyi AChE1a and 1b. AChE1a had the characteristics of the main synaptic AChE, while AChE1b lacked some of the important amino acids of a typical AChE. A missense change found in the main synaptic AChE (1a), F318F/V (F290 in Torpedo californica), was associated with survival of C. rogercresseyi at high azamethiphos concentrations (bioassays and field treatment). The amino acid change was located in the acyl pocket of the active-site gorge of the protein. CONCLUSIONS: The present study demonstrates the presence of two types of AChE1 genes in C. rogercresseyi. Although enzymatic assays are needed, AChE1a is most probably the main synaptic AChE. The function of AChE1b is unknown, but evidence points to a scavenger role. The AChE1a F/V318 variant is most probably involved in organophosphate resistance, and can be a good marker for resistance monitoring.


Subject(s)
Acetylcholinesterase/genetics , Antiparasitic Agents/pharmacology , Copepoda/enzymology , Fish Diseases/parasitology , Polymorphism, Genetic/genetics , Salmon/parasitology , Amino Acid Sequence , Animals , Biomarkers , Chile , Copepoda/drug effects , Copepoda/genetics , Drug Resistance , Female , Male , Organothiophosphates/pharmacology , Phylogeny , Sequence Alignment/veterinary
SELECTION OF CITATIONS
SEARCH DETAIL