分子生物学
IVD分子诊断
细胞培养与分析
蛋白研究
细胞因子
重组蛋白
抗体
高通量测序建库
病原检测UCF系列
生物医药
工具酶
抑制剂激活剂与常用试剂
仪器
耗材

Global and mitochondrial choline dehydrogenase contribute to goose fatty liver formation by differentially regulating energy metabolism, autophagy and oxidative stress related pathways

Xiaoyi Zhou, Mengqing Lv, Ya Xing, Xiangli Zhao, Meiyi Mao, Minmeng Zhao, Daoqing Gong, Chuanju Liu, Tuoyu Geng, Jing Ge

Journal:POULTRY SCIENCE

IF:4.5

DOI:10.1016/j.psj.2026.107299

PMID:

Published:2026-06-14

research field:分子生物学比较生理学细胞生物学肝脏病学线粒体研究代谢学营养生理学生物化学

Abstract

The liver of geese has a strong ability to deposit fat and also has the ability to resist inflammation. Goose fatty liver represents a unique physiological model that exhibits no or low-level inflammation despite severe steatosis. Mitochondria and their proteins play a crucial role in the regulation of hepatic inflammation. However, it remains unclear whether choline dehydrogenase (CHDH), a mitochondrial protein, is involved in fat deposition and inflammation resistance in goose fatty liver formation. Here, we observed distinct expression patterns of mitochondrial CHDH (mCHDH) other than global CHDH (gCHDH) in goose versus mouse fatty livers, highlighting the unique role of mCHDH in goose fatty liver formation. Overexpression of gCHDH in goose primary hepatocytes led to increased cellular lipid accumulation, mitochondrial membrane potential (MMP) and respiratory chain complex II activity, alongside activation of immune response, apoptosis, cell adhesion, and lipid metabolism-related pathways. Moreover, overexpression studies in HepG2 cells revealed that both gCHDH and a mitochondrial targeting sequence-mutant CHDH (Δ1-38CHDH) elevated MMP, but they differentially regulated reactive oxygen species (ROS) level (Δ1-38CHDH slightly reduced intracellular ROS level) and the abundance of mitochondria-related proteins (gCHDH selectively increased tAMPK and decreased LC3B in mitochondrial lysates, whereas Δ1-38CHDH mainly reduced tAMPK and pAMPK in whole-cell lysates). Furthermore, transcriptome sequencing and mass spectrometry analyses revealed that CHDH may participate in processes such as immune response, ubiquitin-mediated degradation, autophagy, signal transduction and lipid metabolism.

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