IJMEC_2025v15n3

International Journal of Molecular Ecology and Conservation, 2025, Vol.15, No.3, 134-143 http://ecoevopublisher.com/index.php/ijmec 143 Liu J., Shi Y., Mo D., Luo L., Xu S., and Lv F., 2024, The goat pan-genome reveals patterns of gene loss during domestication, Journal of Animal Science and Biotechnology, 15(1): 132. https://doi.org/10.1186/s40104-023-00932-2 Lu C.D., 2023, The role of goats in the world: Society, science, and sustainability, Small Ruminant Research, 227: 107056. https://doi.org/10.1016/j.smallrumres.2023.107056 Lu Y., Ma R., Li D., Gao Y., Sheng Z., Shi J., and He X., 2025, Genomic and molecular mechanisms of goat environmental adaptation, Biology, 14(6): 654. https://doi.org/10.3390/biology14060654 Sasazaki S., Tomita K., Nomura Y., Kawaguchi F., Kunieda T., Shah M.K., and Mannen H., 2021, FGF5 and EPAS1 gene polymorphisms are associated with high-altitude adaptation in Nepalese goat breeds, Animal Science Journal, 92(1): e13640. https://doi.org/10.1111/asj.13640 Nanaei H.A., Cai Y., Alshawi A., Wen J., Hussain T., Fu W., Xu N., Essa A., Lenstra J., and Jiang Y., 2023, Genomic analysis of indigenous goats in Southwest Asia reveals evidence of ancient adaptive introgression related to desert climate, Zoological Research, 44(1): 20. https://doi.org/10.24272/j.issn.2095-8137.2022.242 Nair M.R., Sejian V., Silpa M.V., Fonsêca V.F.C., de Melo Costa C.C., Devaraj C., Krishnan G., Bagath M., Nameer P., and Bhatta R., 2021, Goat as the ideal climate-resilient animal model in tropical environment: Revisiting advantages over other livestock species, International Journal of Biometeorology, 65(12): 2229–2240. https://doi.org/10.1007/s00484-021-02179-w Pogorevc N., Dotsev A., Upadhyay M., Sandoval-Castellanos E., Hannemann E., Simčič M., Antoniou A., Papachristou D., Koutsouli P., and others, 2024, Whole-genome SNP genotyping unveils ancestral and recent introgression in wild and domestic goats, Molecular Ecology, 33(1): e17190. https://doi.org/10.1111/mec.17190 Wang K., Hu H., Tian Y., Li J., Scheben A., Zhang C., Li Y., Wu J., Yang L., and others, 2021, The chicken pan-genome reveals gene content variation and a promoter region deletion in IGF2BP1 affecting body size, Molecular Biology and Evolution, 38(11): 5066-5081. https://doi.org/10.1093/molbev/msab231 Yang J., Wang D.F., Huang J.H., Zhu Q.H., Luo L.Y., Lu R., Xie X., Salehian-Dehkordi H., Esmailizadeh A., Liu G., and Li M.H., 2024, Structural variant landscapes reveal convergent signatures of evolution in sheep and goats, Genome Biology, 25(1): 148. https://doi.org/10.1186/s13059-024-03288-6 Zheng Z., Wang X., Li M., Li Y., Yang Z., Wang X., Pan X., Gong M., Zhang Y., and others, 2020, The origin of domestication genes in goats, Science Advances, 6(21): eaaz5216. https://doi.org/10.1126/sciadv.aaz5216 Zhou Y., Yang L., Han X., Han J., Hu Y., Li F., Xia H., Peng L., Boschiero C., Rosen B., Bickhart D., Zhang S., Guo A., Van Tassell C., Smith T., Yang L., and Liu G., 2022, Assembly of a pangenome for global cattle reveals missing sequences and novel structural variations, providing new insights into their diversity and evolutionary history, Genome Research, 32: 1585-1601. https://doi.org/10.1101/gr.276550.122

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