IJMZ_2025v15n2

International Journal of Molecular Zoology, 2025, Vol.15, No.2, 69-77 http://animalscipublisher.com/index.php/ijmz 77 Jing O., Zheng S., Huang M., Tang H., Qiu X., Chen S., Wang Z., Zhou Z., Gao Y., Xiong Y., Zeng G., Huang J., He J., Ren J., Chen H., and Yan X., 2022, Chromosome-level genome and population genomics reveal evolutionary characteristics and conservation status of Chinese indigenous geese, Communications Biology, 5: 4125. https://doi.org/10.1038/s42003-022-04125-x Kozák J., 2019, Variations of geese under domestication, World's Poultry Science Journal, 75: 247-260. https://doi.org/10.1017/S0043933919000023 Li H., Zhu W., Chen K., H Y., Xu W., and Song W., 2011, Two maternal origins of Chinese domestic goose, Poultry Science, 90(12): 2705-2710. https://doi.org/10.3382/ps.2011-01425 Li Y., Gao G., Lin Y., Hu S., Luo Y., Wang G., Jin L., Wang Q., Wang J., Tang Q., and Li M., 2020, Pacific Biosciences assembly with Hi-C mapping generates an improved, chromosome-level goose genome, GigaScience, 9: 114. https://doi.org/10.1093/gigascience/giaa114 Lu L., Chen Y., Wang Z., Li X., Chen W., Tao Z., Shen J., Tian Y., Wang D., Li G., Chen L., Chen F., Fang D., Yu L., Sun Y., Li J., and Wang J., 2015, The goose genome sequence leads to insights into the evolution of waterfowl and susceptibility to fatty liver, Genome Biology, 16: 65. https://doi.org/10.1186/s13059-015-0652-y Li X.H., and Xuan J., 2025, Phylogenomic insights into the origin and dispersal of domesticated chickens, Genomics and Applied Biology, 16(2): 67-76. https://doi.org/10.5376/gab.2025.16.0006 Madsen J., Schreven K., Jensen G., Johnson F., Nilsson L., Nolet B., and Pessa J., 2023, Rapid formation of new migration route and breeding area by Arctic geese, Current Biology, 33: 1162-1170.e4. https://doi.org/10.1016/j.cub.2023.01.065 Pingel H., 2011, Waterfowl production for food security, Lohmann Information, 46(2): 32-42. Price E., 1999, Behavioral development in animals undergoing domestication, Applied Animal Behaviour Science, 65: 245-271. https://doi.org/10.1016/S0168-1591(99)00087-8 Qi S., Wu T., Wu H., Liang Y., Zhao W., Zhang Y., Xu Q., and Chen G., 2025, Whole-genome resequencing reveals the population structure and domestication processes of endemic endangered goose breeds (Anser cygnoides), Poultry Science, 104: 105004-105012. https://doi.org/10.1016/j.psj.2025.105004 Ren S., Lyu G., Irwin D., Liu X., Feng C., Luo R., Zhang J., Sun Y., Shang S., Zhang S., and Wang Z., 2021, Pooled sequencing analysis of geese (Anser cygnoides) reveals genomic variations associated with feather color, Frontiers in Genetics, 12: 650013-650021. https://doi.org/10.3389/fgene.2021.650013 Riddell W., 1943, The domestic goose, Antiquity, 17: 148-155. https://doi.org/10.1017/S0003598X00018081 Shi X., Wang J., Zeng F., and Qiu X., 2006, Mitochondrial DNA cleavage patterns distinguish independent origin of Chinese domestic geese and Western domestic geese, Biochemical Genetics, 44: 237-245. https://doi.org/10.1007/s10528-006-9028-z Silversides F., Crawford R., and Wang H., 1988, The cytogenetics of domestic geese, The Journal of Heredity, 79(1): 6-8. https://doi.org/10.1093/oxfordjournals.jhered.a110449 Wen J., Li H., Wang H., Yu J., Zhu T., Zhang J., Li X., Jiang Z., Ning Z., and Qu L., 2022, Origins, timing and introgression of domestic geese revealed by whole genome data, Journal of Animal Science and Biotechnology, 14: 826-835. https://doi.org/10.1186/s40104-022-00826-9 Wen J., Shao P., Chen Y., Wang L., Lv X., Yang W., Jia Y., Jiang Z., Zhu B., and Qu L., 2021, Genomic scan revealed KIT gene underlying white/gray plumage color in Chinese domestic geese, Animal Genetics, 52: 1-10. https://doi.org/10.1111/age.13050 Zhang L., Li H., Tang B., Zhao X., Wu Y., Jiang T., Yao Y., Li J., Yao Y., and Wang L., 2023, Genomic signatures reveal selection in Chinese and European domesticated geese, Animal Genetics, 54: 1-12. https://doi.org/10.1111/age.13351

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