IJMEC_2025v15n3

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domestic goat genome, Nature Genetics, 49(4): 643-650. https://doi.org/10.1038/ng.3802 Brito L.F., Kijas J.W., Ventura R.V., Sargolzaei M., Porto-Neto L.R., Cánovas A., Feng Z., Jafarikia M., and Schenkel F.S., 2017, Genetic diversity and signatures of selection in various goat breeds revealed by genome-wide SNP markers, BMC Genomics, 18(1): 229. https://doi.org/10.1186/s12864-017-3610-0 Colli L., Milanesi M., Talenti A., Bertolini F., Chen M., Crisà A., Daly K., Del Corvo M., Guldbrandtsen B., Lenstra J., Rosen B., Vajana E., Catillo G., Joost S., Nicolazzi E., Rochat E., Rothschild M., Servin B., Sonstegard T., Steri R., Van Tassell C., Ajmone-Marsan P., Crepaldi P., and AdaptMap Consortium, 2018, Genome-wide SNP profiling of worldwide goat populations reveals strong partitioning of diversity and highlights post-domestication migration routes, Genetics Selection Evolution, 50(1): 58. https://doi.org/10.1186/s12711-018-0422-x Crysnanto D., Leonard A.S., Fang Z.H., and Pausch H., 2021, Novel functional sequences uncovered through a bovine multiassembly graph, Proceedings of the National Academy of Sciences, 118(20): e2101056118. https://doi.org/10.1073/pnas.2101056118 Dai X., Bian P., Hu D., Luo F., Huang Y., Jiao S., Wang X., Gong M., Li R., Cai Y., Wen J., Yang Q., Deng W., Nanaei H., Wang Y., Wang F., Zhang Z., Rosen B., Heller R., and Jiang Y., 2023, A Chinese indicine pangenome reveals a wealth of novel structural variants introgressed from other Bos species, Genome Research, 33(8): 128-1298. https://doi.org/10.1101/gr.277481.122 Daly K.G., Maisano Delser P., Mullin V.E., Scheu A., Mattiangeli V., Teasdale M.D., Hare A., Burger J., Verdugo M., Collins M., and others, 2018, Ancient goat genomes reveal mosaic domestication in the Fertile Crescent, Science, 361(6397): 85-88. https://doi.org/10.1126/science.aas9411 Daly K.G., Mattiangeli V., Hare A.J., Davoudi H., Fathi H., Doost S.B., Mortensen P., Pantos A., Yeomans L., Bangsgaard P., and others, 2021, Herded and 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Genetics, 51(6): 1044-1051. https://doi.org/10.1038/s41588-019-0410-2 Gong Y., Li Y., Liu X., Ma Y., and Jiang L., 2023, A review of the pangenome: How it affects our understanding of genomic variation, selection and breeding in domestic animals, Journal of Animal Science and Biotechnology, 14(1): 73. https://doi.org/10.1186/s40104-023-00860-1 Liao W.W., Asri M., Ebler J., Doerr D., Haukness M., Hickey G., Lu S., Lucas J., Monlong J., and others, 2023, A draft human pangenome reference, Nature, 617(7960): 312-324. https://doi.org/10.1038/s41586-023-05896-x Li R., Fu W., Su R., Tian X., Du D., Zhao Y., Zheng Z., Chen Q., Gao S., Cai Y., Wang X., Li J., and Jiang Y., 2019, Towards the complete goat pan-genome by recovering missing genomic segments from the reference genome, Frontiers in Genetics, 10: 1169. https://doi.org/10.3389/fgene.2019.01169 Li X., Yang J., Shen M., He X., Liu G., Xu Y., Lv F., Yang H., Yang Y., and others, 2020, Whole-genome resequencing of wild and domestic sheep 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