ChREBP Mediates Metabolic Remodeling in FBP1-deficient Liver

碳水化合物反应元件结合蛋白 脂肪生成 脂肪变性 内分泌学 内科学 脂肪肝 肝损伤 糖异生 糖酵解 生物 脂质代谢 医学 生物化学 转录因子 新陈代谢 基因 疾病
作者
Chen-Ma Wang,Qiufang Bai,Yajin Liu,Jie Lin,Chunchun Wei,Xianhua Ma,J Zhao,Meng Zhu,Yuxia Chen,Yanan Shi,Jian-Hui Shi,Weiping J. Zhang
出处
期刊:American Journal of Physiology-cell Physiology [American Physical Society]
标识
DOI:10.1152/ajpcell.00875.2024
摘要

The deficiency of fructose-1,6-bisphosphatase 1 (FBP1), a key enzyme of gluconeogenesis, causes fatty liver. However, its underlying mechanism and physiological significance are not fully understood. Here we demonstrate that carbohydrate response element-binding protein (ChREBP) mediates lipid metabolic remodeling and promotes progressive triglycerides accumulation against metabolic injury in adult FBP1-deficient liver. Inducible liver-specific deletion of Fbp1 gene caused progressive hepatomegaly and hepatic steatosis, with a marked increase in hepatic de novo lipogenesis (DNL) as well as a decrease in plasma beta-hydroxybutyrate levels. Notably, FBP1 deficiency resulted in a persistent activation of ChREBP and its target genes involved in glycolysis, lipogenesis, and fatty acid oxidation, even under fasting condition. Furthermore, liver-specific ChREBP disruption could markedly restore the phenotypes of enhanced DNL and triglyceride accumulation in FBP1-deficient liver, but exacerbated its hepatomegaly and liver injury, which was associated with remarkable energy deficit, impaired mTOR activation, and increased oxidative stress. Furthermore, metabolomics analysis revealed a robust elevation of phosphoenolpyruvate, phosphoglycerates, phospholipids, and ceramides caused by ChREBP deletion in FBP1-deficient liver. Put together, these results suggest that overactivation of ChREBP pathway mediates liver metabolic remodeling in the absence of FBP1, which contributes to the pathogenesis of progressive hepatic steatosis and provides a protection against liver injury. Thus our findings point to a beneficial role of ChREBP in metabolic remodeling in the context of excessive gluconeogenic intermediates.
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