Cross-Species Comparative DNA Methylation Reveals Novel Insights into Complex Trait Genetics among Cattle, Sheep, and Goats

Author:

Chen Siqian1,Liu Shuli23,Shi Shaolei1,Yin Hongwei4,Tang Yongjie1,Zhang Jinning1,Li Wenlong1,Liu Gang5,Qu Kaixing6,Ding Xiangdong1,Wang Yachun1,Liu Jianfeng1ORCID,Zhang Shengli1,Fang Lingzhao7,Yu Ying1

Affiliation:

1. National Engineering Laboratory for Animal Breeding, State Key Laboratory of Animal Biotech Breeding, Breeding and Reproduction of Ministry of Agriculture and Rural Affairs, College of Animal Science and Technology, China Agricultural University , Beijing 100193 , China

2. Westlake Laboratory of Life Sciences and Biomedicine , Hangzhou, Zhejiang 310024 , China

3. School of Life Sciences, Westlake University , Hangzhou, Zhejiang 310024 , China

4. Agriculture Genome Institute at Shenzhen, Chinese Academy of Agricultural Sciences , Shenzhen 518120 , China

5. National Animal Husbandry Service , Beijing 100125 , China

6. Academy of Science and Technology, Chuxiong Normal University , Chuxiong 675000 , China

7. Center for Quantitative Genetics and Genomics (QGG), Aarhus University , Aarhus , Denmark

Abstract

Abstract The cross-species characterization of evolutionary changes in the functional genome can facilitate the translation of genetic findings across species and the interpretation of the evolutionary basis underlying complex phenotypes. Yet, this has not been fully explored between cattle, sheep, goats, and other mammals. Here, we systematically characterized the evolutionary dynamics of DNA methylation and gene expression in 3 somatic tissues (i.e. brain, liver, and skeletal muscle) and sperm across 7 mammalian species, including 3 ruminant livestock species (cattle, sheep, and goats), humans, pigs, mice, and dogs, by generating and integrating 160 DNA methylation and transcriptomic data sets. We demonstrate dynamic changes of DNA hypomethylated regions and hypermethylated regions in tissue-type manner across cattle, sheep, and goats. Specifically, based on the phylo-epigenetic model of DNA methylome, we identified a total of 25,074 hypomethylated region extension events specific to cattle, which participated in rewiring tissue-specific regulatory network. Furthermore, by integrating genome-wide association studies of 50 cattle traits, we provided novel insights into the genetic and evolutionary basis of complex phenotypes in cattle. Overall, our study provides a valuable resource for exploring the evolutionary dynamics of the functional genome and highlights the importance of cross-species characterization of multiomics data sets for the evolutionary interpretation of complex phenotypes in cattle livestock.

Funder

National Key R&D Program of China

National Natural Science Foundation of China

Seed Fund

Publisher

Oxford University Press (OUP)

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