AMB_2024v14n6

Animal Molecular Breeding, 2024, Vol.14, No.6, 380-387 http://animalscipublisher.com/index.php/amb 386 Cai D., Wang J., Jia Y., Liu H., Yuan M., Dong H., and Zhao R., 2016, Gestational dietary betaine supplementation suppresses hepatic expression of lipogenic genes in neonatal piglets through epigenetic and glucocorticoid receptor-dependent mechanisms, Biochimica et Biophysica Acta, 1861(1): 41-50. https://doi.org/10.1016/j.bbalip.2015.10.002 Cai D., Yuan M., Jia Y., Liu H., Hu Y., and Zhao R., 2015, Maternal gestational betaine supplementation-mediated suppression of hepatic cyclin D2 and presenilin1 gene in newborn piglets is associated with epigenetic regulation of the STAT3-dependent pathway.. The Journal of nutritional biochemistry, 26(12): 1622-1631. https://doi.org/10.1016/j.jnutbio.2015.08.007 Cai D., Yuan M., Liu H., Han Z., Pan S., Yang Y., and Zhao R., 2017, Epigenetic and SP1-mediated regulation is involved in the repression of galactokinase 1 gene in the liver of neonatal piglets born to betaine-supplemented sows, European Journal of Nutrition, 56: 1899-1909. https://doi.org/10.1007/s00394-016-1232-y Di Renzo L., Gualtieri P., Romano L., Marrone G., Noce A., Pujia A., Perrone M., Aiello V., Colica C., and De Lorenzo A., 2019, Role of personalized nutrition in chronic-degenerative diseases, Nutrients, 11(8): 1707. https://doi.org/10.3390/nu11081707 Eudy B.J., Odle J., Lin X., Maltecca C., Walter K.R., McNulty N.P., Fellner V., and Jacobi S.K., 2023, Dietary prebiotic oligosaccharides and arachidonate alter the fecal microbiota and mucosal lipid composition of suckling pigs, The Journal of Nutrition, 153(8): 2249-2262. https://doi.org/10.1016/j.tjnut.2023.06.019 Haro D., Marrero P., and Relat J., 2019, Nutritional regulation of gene expression: carbohydrate-, fat- and amino acid-dependent modulation of transcriptional activity, International Journal of Molecular Sciences, 20(6): 1386. https://doi.org/10.3390/ijms20061386 Hasan M., Feugang J., and Liao S., 2019, A nutrigenomics approach using RNA sequencing technology to study nutrient-gene interactions in agricultural animals, Current Developments in Nutrition, 3(8): nzz082. https://doi.org/10.1093/cdn/nzz082 Hashemi S., Davoodi H., and Arabiyan E., 2020, Nutrigenomics: a new approach to feed formulation, The Journal of Qazvin University of Medical Sciences, 24(1): 80-93. https://doi.org/10.32598/jqums.23.5.8 Hassan F., Alagawany M., and Jha R., 2022, Editorial: interplay of nutrition and genomics: potential for improving performance and health of poultry, Frontiers in Physiology, 13: 1030995. https://doi.org/10.3389/fphys.2022.1030995 He T., Yuan Z., Chen Q., Luo J., Mao J., Tang Z., Zhao X., and Yang Z., 2024, Circular RNAs mediate the effects of dietary tryptophan on the transformation of muscle fiber types in weaned piglets, Journal of Agricultural and Food Chemistry, 72(15): 8595-8605. https://doi.org/10.1021/acs.jafc.4c00762 He Y., Jacobi S., Maltecca C., and Odle J., 2019, 292 Differential gene expression analysis for piglets supplied dietary prebiotics and arachidonic acid for gastrointestinal disturbances, Journal of Animal Science, 97: 122-123. https://doi.org/10.1093/jas/skz258.253 Law P., and Holland M., 2018, Deciphering the role of the non-coding genome in regulating gene-diet interactions, Nutrients, 10(12): 1831. https://doi.org/10.3390/nu10121831 Li J., and He J., 2024, Eliminating porcine pathogens: the role of genetic modifications in enhancing biosafety of transplantable pig organs, Bioscience Methods, 15(4): 162-172. https://doi.org/10.5376/bm.2024.15.0017 Li X., Johnson G., Zhou H., Burghardt R., Bazer F., and Wu G., 2022, Microarray analysis reveals an important role for dietary L-arginine in regulating global gene expression in porcine placentae during early gestation, Frontiers in Bioscience, 27(1): 33. https://doi.org/10.31083/j.fbl2701033 Liao S., and Hasan M., 2020, 319 application and practices of RNA sequencing for understanding transcriptional regulation of gene expression by dietary nutrients or feed additives in swine, Journal of Animal Science, 98: 55. https://doi.org/10.1093/jas/skaa278.099 Liao S., Hasan S., and Feugang J., 2019, 141 A nutrigenomics approach using RNA sequencing technology to study nutrient-gene interactions in agricultural animals, Journal of Animal Science, 97: 135. https://doi.org/10.1093/jas/skz258.275 Liu Y., Li F., He L., Tan B., Deng J., Kong X., Li Y., Geng M., Yin Y., and Wu G., 2015, Dietary protein intake affects expression of genes for lipid metabolism in porcine skeletal muscle in a genotype-dependent manner, British Journal of Nutrition, 113: 1069-1077. https://doi.org/10.1017/S0007114514004310 Manaig Y., Criado-Mesas L., Esteve-Codina A., Mármol-Sánchez E., Castelló A., Sánchez A., and Folch J., 2023, Identifying miRNA-mRNA regulatory networks on extreme n-6/n-3 polyunsaturated fatty acid ratio expression profiles in porcine skeletal muscle, PLoS One, 18(5): e0283231. https://doi.org/10.1371/journal.pone.0283231 Osorio J., and Moisá S., 2019, Gene regulation in ruminants: a nutritional perspective, Gene Expression and Control, 2019: 1-27. https://doi.org/10.5772/INTECHOPEN.82193

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