Genetic Association Analysis of Copy Number Variations for Meat Quality in Beef Cattle

Author:

Wu Jiayuan1ORCID,Wu Tianyi1,Xie Xueyuan12,Niu Qunhao1,Zhao Zhida1,Zhu Bo1,Chen Yan1,Zhang Lupei1ORCID,Gao Xue1,Niu Xiaoyan2,Gao Huijiang1,Li Junya1,Xu Lingyang1ORCID

Affiliation:

1. State Key Laboratory of Animal Biotech Breeding, Institute of Animal Sciences, Chinese Academy of Agricultural Sciences, Beijing 100193, China

2. College of Animal Science and Veterinary Medicine, Shanxi Agricultural University, Jinzhong 030801, China

Abstract

Meat quality is an economically important trait for global food production. Copy number variations (CNVs) have been previously implicated in elucidating the genetic basis of complex traits. In this article, we detected a total of 112,198 CNVs and 10,102 CNV regions (CNVRs) based on the Bovine HD SNP array. Next, we performed a CNV-based genome-wide association analysis (GWAS) of six meat quality traits and identified 12 significant CNV segments corresponding to eight candidate genes, including PCDH15, CSMD3, etc. Using region-based association analysis, we further identified six CNV segments relevant to meat quality in beef cattle. Among these, TRIM77 and TRIM64 within CNVR4 on BTA29 were detected as candidate genes for backfat thickness (BFT). Notably, we identified a 34 kb duplication for meat color (MC) which was supported by read-depth signals, and this duplication was embedded within the keratin gene family including KRT4, KRT78, and KRT79. Our findings will help to dissect the genetic architecture of meat quality traits from the aspects of CNVs, and subsequently improve the selection process in breeding programs.

Funder

National Natural Science Foundation of China

Agricultural Science and Technology Innovation Program of China

National Beef Cattle Industrial Technology System

Elite Youth Program in Chinese Academy of Agricultural Sciences

Publisher

MDPI AG

Subject

Plant Science,Health Professions (miscellaneous),Health (social science),Microbiology,Food Science

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