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Genetic Variation, GWAS and Accuracy of Prediction for Host Resistance to Sparicotyle chrysophrii in Farmed Gilthead Sea Bream (Sparus aurata)

Gilthead sea bream (Sparus aurata) belongs to a group of teleost which has high importance in Mediterranean aquaculture industry. However, industrial production is increasingly compromised by an elevated outbreak of diseases in sea cages, especially a disease caused by monogeneans parasite Sparicoty...

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Autores principales: Aslam, Muhammad Luqman, Carraro, Roberta, Sonesson, Anna Kristina, Meuwissen, Theodorus, Tsigenopoulos, Costas S., Rigos, George, Bargelloni, Luca, Tzokas, Konstantinos
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7793675/
https://www.ncbi.nlm.nih.gov/pubmed/33424925
http://dx.doi.org/10.3389/fgene.2020.594770
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author Aslam, Muhammad Luqman
Carraro, Roberta
Sonesson, Anna Kristina
Meuwissen, Theodorus
Tsigenopoulos, Costas S.
Rigos, George
Bargelloni, Luca
Tzokas, Konstantinos
author_facet Aslam, Muhammad Luqman
Carraro, Roberta
Sonesson, Anna Kristina
Meuwissen, Theodorus
Tsigenopoulos, Costas S.
Rigos, George
Bargelloni, Luca
Tzokas, Konstantinos
author_sort Aslam, Muhammad Luqman
collection PubMed
description Gilthead sea bream (Sparus aurata) belongs to a group of teleost which has high importance in Mediterranean aquaculture industry. However, industrial production is increasingly compromised by an elevated outbreak of diseases in sea cages, especially a disease caused by monogeneans parasite Sparicotyle chrysophrii. This parasite mainly colonizes gill tissues of host and causes considerable economical losses with mortality and reduction in growth. The aim of current study was to explore the genetics of host resistance against S. chrysophrii and investigate the potential for genomic selection to possibly accelerate genetic progress. To achieve the desired goals, a test population derived from the breeding nucleus of Andromeda Group was produced. This experimental population was established by crossing of parents mated in partial factorial crosses of ∼8 × 8 using 58 sires and 62 dams. The progeny obtained from this mating design was challenged with S. chrysophrii using a controllable cohabitation infection model. At the end of the challenge, fish were recorded for parasite count, and all the recorded fish were tissue sampled for genotyping by sequencing using 2b-RAD methodology. The initial (before challenge test) and the final body weight (after challenge test) of the fish were also recorded. The results obtained through the analysis of phenotypic records (n = 615) and the genotypic data (n = 841, 724 offspring and 117 parents) revealed that the resistance against this parasite is lowly heritable (h(2) = 0.147 with pedigree and 0.137 with genomic information). We observed moderately favorable genetic correlation (R(g) = −0.549 to −0.807) between production traits (i.e., body weight and specific growth rate) and parasite count, which signals a possibility of indirect selection. A locus at linkage group 17 was identified that surpassed chromosome-wide Bonferroni threshold which explained 22.68% of the total genetic variance, and might be playing role in producing genetic variation. The accuracy of prediction was improved by 8% with genomic information compared to pedigree.
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spelling pubmed-77936752021-01-09 Genetic Variation, GWAS and Accuracy of Prediction for Host Resistance to Sparicotyle chrysophrii in Farmed Gilthead Sea Bream (Sparus aurata) Aslam, Muhammad Luqman Carraro, Roberta Sonesson, Anna Kristina Meuwissen, Theodorus Tsigenopoulos, Costas S. Rigos, George Bargelloni, Luca Tzokas, Konstantinos Front Genet Genetics Gilthead sea bream (Sparus aurata) belongs to a group of teleost which has high importance in Mediterranean aquaculture industry. However, industrial production is increasingly compromised by an elevated outbreak of diseases in sea cages, especially a disease caused by monogeneans parasite Sparicotyle chrysophrii. This parasite mainly colonizes gill tissues of host and causes considerable economical losses with mortality and reduction in growth. The aim of current study was to explore the genetics of host resistance against S. chrysophrii and investigate the potential for genomic selection to possibly accelerate genetic progress. To achieve the desired goals, a test population derived from the breeding nucleus of Andromeda Group was produced. This experimental population was established by crossing of parents mated in partial factorial crosses of ∼8 × 8 using 58 sires and 62 dams. The progeny obtained from this mating design was challenged with S. chrysophrii using a controllable cohabitation infection model. At the end of the challenge, fish were recorded for parasite count, and all the recorded fish were tissue sampled for genotyping by sequencing using 2b-RAD methodology. The initial (before challenge test) and the final body weight (after challenge test) of the fish were also recorded. The results obtained through the analysis of phenotypic records (n = 615) and the genotypic data (n = 841, 724 offspring and 117 parents) revealed that the resistance against this parasite is lowly heritable (h(2) = 0.147 with pedigree and 0.137 with genomic information). We observed moderately favorable genetic correlation (R(g) = −0.549 to −0.807) between production traits (i.e., body weight and specific growth rate) and parasite count, which signals a possibility of indirect selection. A locus at linkage group 17 was identified that surpassed chromosome-wide Bonferroni threshold which explained 22.68% of the total genetic variance, and might be playing role in producing genetic variation. The accuracy of prediction was improved by 8% with genomic information compared to pedigree. Frontiers Media S.A. 2020-12-22 /pmc/articles/PMC7793675/ /pubmed/33424925 http://dx.doi.org/10.3389/fgene.2020.594770 Text en Copyright © 2020 Aslam, Carraro, Sonesson, Meuwissen, Tsigenopoulos, Rigos, Bargelloni and Tzokas. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Genetics
Aslam, Muhammad Luqman
Carraro, Roberta
Sonesson, Anna Kristina
Meuwissen, Theodorus
Tsigenopoulos, Costas S.
Rigos, George
Bargelloni, Luca
Tzokas, Konstantinos
Genetic Variation, GWAS and Accuracy of Prediction for Host Resistance to Sparicotyle chrysophrii in Farmed Gilthead Sea Bream (Sparus aurata)
title Genetic Variation, GWAS and Accuracy of Prediction for Host Resistance to Sparicotyle chrysophrii in Farmed Gilthead Sea Bream (Sparus aurata)
title_full Genetic Variation, GWAS and Accuracy of Prediction for Host Resistance to Sparicotyle chrysophrii in Farmed Gilthead Sea Bream (Sparus aurata)
title_fullStr Genetic Variation, GWAS and Accuracy of Prediction for Host Resistance to Sparicotyle chrysophrii in Farmed Gilthead Sea Bream (Sparus aurata)
title_full_unstemmed Genetic Variation, GWAS and Accuracy of Prediction for Host Resistance to Sparicotyle chrysophrii in Farmed Gilthead Sea Bream (Sparus aurata)
title_short Genetic Variation, GWAS and Accuracy of Prediction for Host Resistance to Sparicotyle chrysophrii in Farmed Gilthead Sea Bream (Sparus aurata)
title_sort genetic variation, gwas and accuracy of prediction for host resistance to sparicotyle chrysophrii in farmed gilthead sea bream (sparus aurata)
topic Genetics
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7793675/
https://www.ncbi.nlm.nih.gov/pubmed/33424925
http://dx.doi.org/10.3389/fgene.2020.594770
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