AMB_2025v15n2

Animal Molecular Breeding, 2025, Vol.15, No.2, 60-71 http://animalscipublisher.com/index.php/amb 71 Lu Y., Zhou J., Li F., Cao H., Zhang X., Yu D., He Z., Ji H., Lv K., Wu G., and Yu M., 2023, The integration of genome-wide DNA methylation and transcriptomics identifies the potential genes that regulate the development of skeletal muscles in ducks, International Journal of Molecular Sciences, 24(20): 15476. https://doi.org/10.3390/ijms242015476 Massimino W., Andrieux C., Biasutti S., Chartrin P., Métayer-Coustard S., Marty-Gasset N., Diot C., Davail S., and Hérault F., 2021, Impacts of embryonic thermal programming on the expression of genes involved in foie gras production in mule ducks, Frontiers in Physiology, 12: 779689. https://doi.org/10.3389/fphys.2021.779689 Miretti S., Martignani E., Accornero P., and Baratta M., 2013, Functional effect of miR‑27b on myostatin expression: a relationship in Piedmontese cattle with double‑muscled phenotype, BMC Genomics, 14: 194. https://doi.org/10.1186/1471-2164-14-194 Nie Q., Sun Y., and Lee J., 2019, DNA methylation in poultry: a review, Livestock Science, 220: 72-80. https://doi.org/10.1016/j.livsci.2018.12.005 Raghuwanshi S., Dahariya S., Kandi R., Gutti U., Undi R., Sharma D., Sahu I., Kovuru N., Yarla N., Saladi R., and Gutti R., 2017, Epigenetic mechanisms: role in hematopoietic stem cell lineage commitment and differentiation, Current Drug Targets, 19(14): 1683-1695. https://doi.org/10.2174/1389450118666171122141821 Sepers B., van den Heuvel K., Lindner M., Viitaniemi H., Husby A., and van Oers K., 2019, Avian ecological epigenetics: pitfalls and promises, Journal of Ornithology, 160(4): 1183-1203. https://doi.org/10.1007/s10336-019-01684-5 Slawinska A., Dunislawska A., and Siwek M., 2020, Hepatic DNA methylation in response to early stimulation of microbiota with Lactobacillus synbiotics in broiler chickens, Genes, 11(5): 579. https://doi.org/10.3390/genes11050579 Stoll J., He S., and Lagana S., 2018, Microbiota derived short chain fatty acids promote histone crotonylation in the colon, Nature, 563(7731): 17-21. https://doi.org/10.1038/s41586-018-0634-8 Twumasi G., Wang H., Xi Y., Zhao X., Chen Y., Li J., Zhang Z., and Wu Q., 2024, Genome-wide association studies reveal candidate genes associated with pigmentation patterns of single feathers of Tianfu Nonghua ducks, Animals, 14(1): 85. https://doi.org/10.3390/ani14010085 Wang M., and Ibeagha‑Awemu E. M., 2021, Impacts of epigenetic processes on the health and productivity of livestock, Frontiers in Genetics, 11: 613636. https://doi.org/10.3389/fgene.2020.613636 Xu L., Shi Z., Li H., Zhang Y., Wang X., and Chen Q., 2022, Genome-wide DNA methylation differences between conservation and breeding populations of Shaoxing ducks, Heliyon, 8(11): e11555. https://doi.org/10.1016/j.heliyon.2022.e11555 Yan X. P., Liu H. H., Liu J. Y., Chen Z. Q., and Sun B. L., 2015, Evidence in duck for supporting alteration of incubation temperature may have influence on methylation of genomic DNA, Poultry Science, 94(10): 2537-2545. https://doi.org/10.3382/ps/pev217 Zeng Q., Zhang Q., Chen X., Doster A., Murdoch R., Makagon M., Gardner A., and Applegate T., 2015, Effect of dietary methionine content on growth performance, carcass traits, and feather growth of Pekin duck from 15 to 35 days of age, Poultry Science, 94(7): 1592-1599. https://doi.org/10.3382/ps/pev117 Zhang G., He M., Wu P., Zhang X., Zhou K., Li T., Zhang T., Xie K., Dai G., and Wang J., 2021, MicroRNA‑27b‑3p targets the myostatin gene to regulate myoblast proliferation and is involved in myoblast differentiation, Cells, 10(2): 423. https://doi.org/10.3390/cells10020423 Zhang P., Cao Y., Fu Y., Zhu H., Xu S., Zhang Y., Li W., Sun G., Jiang R., Han R., Li H., Li G., Tian Y., Liu X., Kang X., and Li D., 2022, Revealing the regulatory mechanism of lncRNA‑LMEP on melanin deposition based on high‑throughput sequencing in Xichuan chicken skin, Genes, 13(11): 2143. https://doi.org/10.3390/genes13112143

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