Literature DB >> 24879764

Genetic analysis of reproductive traits and antibody response in a PRRS outbreak herd.

N V L Serão1, O Matika2, R A Kemp3, J C S Harding4, S C Bishop2, G S Plastow5, J C M Dekkers6.   

Abstract

Porcine reproductive and respiratory syndrome (PRRS) is the most economically significant disease impacting pig production in North America, Europe, and Asia, causing reproductive losses such as increased rates of stillbirth and mummified piglets. The objective of this study was to explore the genetic basis of host response to the PRRS virus (PRRSV) in a commercial multiplier sow herd before and after a PRRS outbreak, using antibody response and reproductive traits. Reproductive data comprising number born alive (NBA), number alive at 24 h (NA24), number stillborn (NSB), number born mummified (NBM), proportion born dead (PBD), number born dead (NBD), number weaned (NW), and number of mortalities through weaning (MW) of 5,227 litters from 1,967 purebred Landrace sows were used along with a pedigree comprising 2,995 pigs. The PRRS outbreak date was estimated from rolling averages of farrowing traits and was used to split the data into a pre-PRRS phase and a PRRS phase. All 641 sows in the herd during the outbreak were blood sampled 46 d after the estimated outbreak date and were tested for anti-PRRSV IgG using ELISA (sample-to-positive [S/P] ratio). Genetic parameters of traits were estimated separately for the pre-PRRS and PRRS phase data sets. Sows were genotyped using the PorcineSNP60 BeadChip, and genome-wide association studies (GWAS) were performed using method Bayes B. Heritability estimates for reproductive traits ranged from 0.01 (NBM) to 0.12 (NSB) and from 0.01 (MW) to 0.12 (NBD) for the pre-PRRS and PRRS phases, respectively. S/P ratio had heritability (0.45) and strong genetic correlations with most traits, ranging from -0.72 (NBM) to 0.73 (NBA). In the pre-PRRS phase, regions associated with NSB and PBD explained 1.6% and 3% of the genetic variance, respectively. In the PRRS phase, regions associated with NBD, NSB, and S/P ratio explained 0.8%, 11%, and 50.6% of the genetic variance, respectively. For S/P ratio, 2 regions on SSC 7 (SSC7) separated by 100 Mb explained 40% of the genetic variation, including a region encompassing the major histocompatibility complex, which explained 25% of the genetic variance. These results indicate a significant genomic component associated with PRRSV antibody response and NSB in this data set. Also, the high heritability and genetic correlation estimates for S/P ratio during the PRRS phase suggest that S/P ratio could be used as an indicator of the impact of PRRS on reproductive traits.

Entities:  

Keywords:  genetic parameter; genome-wide association study; host response; major histocompatibility complex; porcine reproductive and respiratory syndrome

Mesh:

Year:  2014        PMID: 24879764     DOI: 10.2527/jas.2014-7821

Source DB:  PubMed          Journal:  J Anim Sci        ISSN: 0021-8812            Impact factor:   3.159


  27 in total

1.  Genetic relationships of antibody response, viremia level, and weight gain in pigs experimentally infected with porcine reproductive and respiratory syndrome virus1.

Authors:  Andrew S Hess; Ben R Trible; Melanie K Hess; Raymond R Rowland; Joan K Lunney; Graham S Plastow; Jack C M Dekkers
Journal:  J Anim Sci       Date:  2018-09-07       Impact factor: 3.159

2.  Genomics of response to porcine reproductive and respiratory syndrome virus in purebred and crossbred sows: antibody response and performance following natural infection vs. vaccination.

Authors:  Leticia P Sanglard; Felipe M W Hickmann; Yijian Huang; Kent A Gray; Daniel C L Linhares; Jack C M Dekkers; Megan C Niederwerder; Rohan L Fernando; Joseph Braccini Neto; Nick V L Serão
Journal:  J Anim Sci       Date:  2021-05-01       Impact factor: 3.159

3.  Identification of a putative quantitative trait nucleotide in guanylate binding protein 5 for host response to PRRS virus infection.

Authors:  James E Koltes; Eric Fritz-Waters; Chris J Eisley; Igseo Choi; Hua Bao; Arun Kommadath; Nick V L Serão; Nicholas J Boddicker; Sam M Abrams; Martine Schroyen; Hyelee Loyd; Chris K Tuggle; Graham S Plastow; Leluo Guan; Paul Stothard; Joan K Lunney; Peng Liu; Susan Carpenter; Robert R R Rowland; Jack C M Dekkers; James M Reecy
Journal:  BMC Genomics       Date:  2015-05-28       Impact factor: 3.969

4.  Maternal and fetal predictors of fetal viral load and death in third trimester, type 2 porcine reproductive and respiratory syndrome virus infected pregnant gilts.

Authors:  Andrea Ladinig; Carolyn Ashley; Susan E Detmer; Jamie M Wilkinson; Joan K Lunney; Graham Plastow; John C S Harding
Journal:  Vet Res       Date:  2015-09-25       Impact factor: 3.683

5.  Variation in time and magnitude of immune response and viremia in experimental challenges with Porcine circovirus 2b.

Authors:  Taylor B Engle; Erin E Jobman; Timothy W Moural; Autumn M McKnite; Justin W Bundy; Sarah Y Barnes; Emily H Davis; Judith A Galeota; Thomas E Burkey; Graham S Plastow; Stephen D Kachman; Daniel C Ciobanu
Journal:  BMC Vet Res       Date:  2014-12-04       Impact factor: 2.741

6.  Genetic and genomic basis of antibody response to porcine reproductive and respiratory syndrome (PRRS) in gilts and sows.

Authors:  Nick V L Serão; Robert A Kemp; Benny E Mote; Philip Willson; John C S Harding; Stephen C Bishop; Graham S Plastow; Jack C M Dekkers
Journal:  Genet Sel Evol       Date:  2016-07-14       Impact factor: 4.297

7.  Differences in Whole Blood Gene Expression Associated with Infection Time-Course and Extent of Fetal Mortality in a Reproductive Model of Type 2 Porcine Reproductive and Respiratory Syndrome Virus (PRRSV) Infection.

Authors:  Jamie M Wilkinson; Andrea Ladinig; Hua Bao; Arun Kommadath; Paul Stothard; Joan K Lunney; John C S Harding; Graham S Plastow
Journal:  PLoS One       Date:  2016-04-19       Impact factor: 3.240

8.  A genome-wide association study of fetal response to type 2 porcine reproductive and respiratory syndrome virus challenge.

Authors:  Tianfu Yang; James Wilkinson; Zhiquan Wang; Andrea Ladinig; John Harding; Graham Plastow
Journal:  Sci Rep       Date:  2016-02-05       Impact factor: 4.379

9.  Deciphering transcriptome profiles of peripheral blood mononuclear cells in response to PRRSV vaccination in pigs.

Authors:  Md Aminul Islam; Christine Große-Brinkhaus; Maren Julia Pröll; Muhammad Jasim Uddin; Sharmin Aqter Rony; Dawit Tesfaye; Ernst Tholen; Michael Hölker; Karl Schellander; Christiane Neuhoff
Journal:  BMC Genomics       Date:  2016-08-15       Impact factor: 3.969

10.  Genome-wide association studies of immune, disease and production traits in indigenous chicken ecotypes.

Authors:  Androniki Psifidi; Georgios Banos; Oswald Matika; Takele T Desta; Judy Bettridge; David A Hume; Tadelle Dessie; Rob Christley; Paul Wigley; Olivier Hanotte; Pete Kaiser
Journal:  Genet Sel Evol       Date:  2016-09-29       Impact factor: 4.297

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