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Functional role and regulatory network of miR-22-3p in chicken hepatic lipid metabolism.

Abstract

Although microRNA-22-3p (miR-22-3p) is abundantly expressed in the avian liver, its epigenetic role in lipid homeostasis remains largely uncharacterized. To elucidate its in vivo function, 14-day-old female Qingyuan Partridge chickens were intravenously injected with lentiviral vectors to establish miR-22-3p overexpression and knockdown models. Phenotypic analysis demonstrated that miR-22-3p knockdown significantly elevated hepatic triglyceride (TG) levels (p&#xa0;<&#xa0;0.05) and drove marked steatosis, whereas its overexpression reduced TG content. Transcriptome sequencing (RNA-Seq) revealed profound metabolic remodeling, identifying 23 core lipid-associated genes (e.g., ELOVL6, FADS2, ACSBG2, and PTGIS) heavily enriched in steroid biosynthesis, fatty acid metabolism, and elongation pathways. In conclusion, miR-22-3p functions as a bidirectional epigenetic rheostat that negatively regulates hepatic lipid deposition by orchestrating a multilayered polygenic network, providing novel molecular targets for mitigating avian metabolic disorders and optimizing production traits in indigenous poultry breeds.

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Jin-Yuan Chen, Meng-Meng Run, Jia-Ning Yi, Ying-Qiu Cai, Xing-Qing Zhang, Bei-Bei Liu, Yi-Nan Tian, Wen-Juan Zhao, Fei Ye, Hua Li, Hai Xiang, Zheng Ma. 2026-06-25. Functional role and regulatory network of miR-22-3p in chicken hepatic lipid metabolism.. https://doi.org/10.1016/j.cbd.2026.101925

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