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Dissecting the Genomic Architecture of Resistance to Eimeria maxima Parasitism in the Chicken

Coccidiosis in poultry, caused by protozoan parasites of the genus Eimeria, is an intestinal disease with substantial economic impact. With the use of anticoccidial drugs under public and political pressure, and the comparatively higher cost of live-attenuated vaccines, an attractive complementary s...

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Autores principales: Boulton, Kay, Nolan, Matthew J., Wu, Zhiguang, Riggio, Valentina, Matika, Oswald, Harman, Kimberley, Hocking, Paul M., Bumstead, Nat, Hesketh, Pat, Archer, Andrew, Bishop, Stephen C., Kaiser, Pete, Tomley, Fiona M., Hume, David A., Smith, Adrian L., Blake, Damer P., Psifidi, Androniki
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6275401/
https://www.ncbi.nlm.nih.gov/pubmed/30534137
http://dx.doi.org/10.3389/fgene.2018.00528
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author Boulton, Kay
Nolan, Matthew J.
Wu, Zhiguang
Riggio, Valentina
Matika, Oswald
Harman, Kimberley
Hocking, Paul M.
Bumstead, Nat
Hesketh, Pat
Archer, Andrew
Bishop, Stephen C.
Kaiser, Pete
Tomley, Fiona M.
Hume, David A.
Smith, Adrian L.
Blake, Damer P.
Psifidi, Androniki
author_facet Boulton, Kay
Nolan, Matthew J.
Wu, Zhiguang
Riggio, Valentina
Matika, Oswald
Harman, Kimberley
Hocking, Paul M.
Bumstead, Nat
Hesketh, Pat
Archer, Andrew
Bishop, Stephen C.
Kaiser, Pete
Tomley, Fiona M.
Hume, David A.
Smith, Adrian L.
Blake, Damer P.
Psifidi, Androniki
author_sort Boulton, Kay
collection PubMed
description Coccidiosis in poultry, caused by protozoan parasites of the genus Eimeria, is an intestinal disease with substantial economic impact. With the use of anticoccidial drugs under public and political pressure, and the comparatively higher cost of live-attenuated vaccines, an attractive complementary strategy for control is to breed chickens with increased resistance to Eimeria parasitism. Prior infection with Eimeria maxima leads to complete immunity against challenge with homologous strains, but only partial resistance to challenge with antigenically diverse heterologous strains. We investigate the genetic architecture of avian resistance to E. maxima primary infection and heterologous strain secondary challenge using White Leghorn populations of derived inbred lines, C.B12 and 15I, known to differ in susceptibility to the parasite. An intercross population was infected with E. maxima Houghton (H) strain, followed 3 weeks later by E. maxima Weybridge (W) strain challenge, while a backcross population received a single E. maxima W infection. The phenotypes measured were parasite replication (counting fecal oocyst output or qPCR for parasite numbers in intestinal tissue), intestinal lesion score (gross pathology, scale 0–4), and for the backcross only, serum interleukin-10 (IL-10) levels. Birds were genotyped using a high density genome-wide DNA array (600K, Affymetrix). Genome-wide association study located associations on chromosomes 1, 2, 3, and 5 following primary infection in the backcross population, and a suggestive association on chromosome 1 following heterologous E. maxima W challenge in the intercross population. This mapped several megabases away from the quantitative trait locus (QTL) linked to the backcross primary W strain infection, suggesting different underlying mechanisms for the primary- and heterologous secondary- responses. Underlying pathways for those genes located in the respective QTL for resistance to primary infection and protection against heterologous challenge were related mainly to immune response, with IL-10 signaling in the backcross primary infection being the most significant. Additionally, the identified markers associated with IL-10 levels exhibited significant additive genetic variance. We suggest this is a phenotype of interest to the outcome of challenge, being scalable in live birds and negating the requirement for single-bird cages, fecal oocyst counts, or slaughter for sampling (qPCR).
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spelling pubmed-62754012018-12-10 Dissecting the Genomic Architecture of Resistance to Eimeria maxima Parasitism in the Chicken Boulton, Kay Nolan, Matthew J. Wu, Zhiguang Riggio, Valentina Matika, Oswald Harman, Kimberley Hocking, Paul M. Bumstead, Nat Hesketh, Pat Archer, Andrew Bishop, Stephen C. Kaiser, Pete Tomley, Fiona M. Hume, David A. Smith, Adrian L. Blake, Damer P. Psifidi, Androniki Front Genet Genetics Coccidiosis in poultry, caused by protozoan parasites of the genus Eimeria, is an intestinal disease with substantial economic impact. With the use of anticoccidial drugs under public and political pressure, and the comparatively higher cost of live-attenuated vaccines, an attractive complementary strategy for control is to breed chickens with increased resistance to Eimeria parasitism. Prior infection with Eimeria maxima leads to complete immunity against challenge with homologous strains, but only partial resistance to challenge with antigenically diverse heterologous strains. We investigate the genetic architecture of avian resistance to E. maxima primary infection and heterologous strain secondary challenge using White Leghorn populations of derived inbred lines, C.B12 and 15I, known to differ in susceptibility to the parasite. An intercross population was infected with E. maxima Houghton (H) strain, followed 3 weeks later by E. maxima Weybridge (W) strain challenge, while a backcross population received a single E. maxima W infection. The phenotypes measured were parasite replication (counting fecal oocyst output or qPCR for parasite numbers in intestinal tissue), intestinal lesion score (gross pathology, scale 0–4), and for the backcross only, serum interleukin-10 (IL-10) levels. Birds were genotyped using a high density genome-wide DNA array (600K, Affymetrix). Genome-wide association study located associations on chromosomes 1, 2, 3, and 5 following primary infection in the backcross population, and a suggestive association on chromosome 1 following heterologous E. maxima W challenge in the intercross population. This mapped several megabases away from the quantitative trait locus (QTL) linked to the backcross primary W strain infection, suggesting different underlying mechanisms for the primary- and heterologous secondary- responses. Underlying pathways for those genes located in the respective QTL for resistance to primary infection and protection against heterologous challenge were related mainly to immune response, with IL-10 signaling in the backcross primary infection being the most significant. Additionally, the identified markers associated with IL-10 levels exhibited significant additive genetic variance. We suggest this is a phenotype of interest to the outcome of challenge, being scalable in live birds and negating the requirement for single-bird cages, fecal oocyst counts, or slaughter for sampling (qPCR). Frontiers Media S.A. 2018-11-26 /pmc/articles/PMC6275401/ /pubmed/30534137 http://dx.doi.org/10.3389/fgene.2018.00528 Text en Copyright © 2018 Boulton, Nolan, Wu, Riggio, Matika, Harman, Hocking, Bumstead, Hesketh, Archer, Bishop, Kaiser, Tomley, Hume, Smith, Blake and Psifidi. 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
Boulton, Kay
Nolan, Matthew J.
Wu, Zhiguang
Riggio, Valentina
Matika, Oswald
Harman, Kimberley
Hocking, Paul M.
Bumstead, Nat
Hesketh, Pat
Archer, Andrew
Bishop, Stephen C.
Kaiser, Pete
Tomley, Fiona M.
Hume, David A.
Smith, Adrian L.
Blake, Damer P.
Psifidi, Androniki
Dissecting the Genomic Architecture of Resistance to Eimeria maxima Parasitism in the Chicken
title Dissecting the Genomic Architecture of Resistance to Eimeria maxima Parasitism in the Chicken
title_full Dissecting the Genomic Architecture of Resistance to Eimeria maxima Parasitism in the Chicken
title_fullStr Dissecting the Genomic Architecture of Resistance to Eimeria maxima Parasitism in the Chicken
title_full_unstemmed Dissecting the Genomic Architecture of Resistance to Eimeria maxima Parasitism in the Chicken
title_short Dissecting the Genomic Architecture of Resistance to Eimeria maxima Parasitism in the Chicken
title_sort dissecting the genomic architecture of resistance to eimeria maxima parasitism in the chicken
topic Genetics
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6275401/
https://www.ncbi.nlm.nih.gov/pubmed/30534137
http://dx.doi.org/10.3389/fgene.2018.00528
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