Genomic Regions and Candidate Genes Affecting Response to Heat Stress with Newcastle Virus Infection in Commercial Layer Chicks Using Chicken 600K Single Nucleotide Polymorphism Array

Author:

Wang Ying12,Saelao Perot123,Chanthavixay Ganrea12,Gallardo Rodrigo A.14ORCID,Wolc Anna56ORCID,Fulton Janet E.6,Dekkers Jack M.5ORCID,Lamont Susan J.5ORCID,Kelly Terra R.14,Zhou Huaijun12ORCID

Affiliation:

1. Genomics to Improve Poultry Innovation Lab, University of California, Davis, CA 95616, USA

2. Department of Animal Science, University of California, Davis, CA 95616, USA

3. Veterinary Pest Genetics Research Unit, United States Department of Agriculture U, Kerrville, TX 78006, USA

4. School of Veterinary Medicine, University of California, Davis, CA 95616, USA

5. Department of Animal Science, Iowa State University, Ames, IA 50011, USA

6. Hy-Line International, Dallas Center, IA 50063, USA

Abstract

Heat stress results in significant economic losses to the poultry industry. Genetics plays an important role in chickens adapting to the warm environment. Physiological parameters such as hematochemical parameters change in response to heat stress in chickens. To explore the genetics of heat stress resilience in chickens, a genome-wide association study (GWAS) was conducted using Hy-Line Brown layer chicks subjected to either high ambient temperature or combined high temperature and Newcastle disease virus infection. Hematochemical parameters were measured during three treatment phases: acute heat stress, chronic heat stress, and chronic heat stress combined with NDV infection. Significant changes in blood parameters were recorded for 11 parameters (sodium (Na+, potassium (K+), ionized calcium (iCa2+), glucose (Glu), pH, carbon dioxide partial pressure (PCO2), oxygen partial pressure (PO2), total carbon dioxide (TCO2), bicarbonate (HCO3), base excess (BE), and oxygen saturation (sO2)) across the three treatments. The GWAS revealed 39 significant SNPs (p < 0.05) for seven parameters, located on Gallus gallus chromosomes (GGA) 1, 3, 4, 6, 11, and 12. The significant genomic regions were further investigated to examine if the genes within the regions were associated with the corresponding traits under heat stress. A candidate gene list including genes in the identified genomic regions that were also differentially expressed in chicken tissues under heat stress was generated. Understanding the correlation between genetic variants and resilience to heat stress is an important step towards improving heat tolerance in poultry.

Funder

US Agency for International Development Feed the Future Innovation Lab for Genomics to Improve Poultry

United States Department of Agriculture, National Institute of Food and Agriculture, Multistate Research Project NRSP8

the California Agricultural Experimental Station

Publisher

MDPI AG

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