Impaired Fatty Liver Regeneration Post–major Resection: A Mitochondrial Problem

脂肪肝 线粒体 转录组 肝细胞 生物 肝再生 内科学 脂肪酸 内分泌学 β氧化 氧化磷酸化 肝功能 下调和上调 脂肪酸代谢 生物化学 细胞凋亡 柠檬酸循环 化学 细胞生物学 线粒体融合 肝切除术 再生(生物学)
作者
Tyler P. Robinson,Tewfik Hamidi,Yanlin Jiang,Xiaoling Jin,Robson Francisco Carvalho,Sarah Santiloni Cury,Rafael Ribeiro Correia,Adrian Baris,Andris Kronbergs,Teresa A. Zimmers,Leonidas G. Koniaris
出处
期刊:Shock [Lippincott Williams & Wilkins]
卷期号:65 (4): 660-670
标识
DOI:10.1097/shk.0000000000002713
摘要

Fatty liver disease is associated with a markedly increased risk of liver dysfunction and death after major hepatectomy (PHx). We previously demonstrated impaired hepatocyte proliferation, delayed liver regeneration, and increased mortality in post-hepatectomy murine fatty liver. However, the underlying mechanism(s) remain unclear. In this study, we sought to define the mechanisms underlying fatty liver regenerative failure following resection. The hepatic transcriptome was analyzed after 70% or 80% hepatectomy in lean and diet-induced obese (DIO) mice. A gene array analysis was conducted. Human liver samples with lean and fatty livers were evaluated in a similar manner. Gene ontology and Kyoto Encyclopedia of Genes and Genomes pathways were analyzed. Principal component analysis showed striking differences between lean and DIO livers at baseline and following graded hepatectomy, suggesting fundamental underlying differences in DIO livers. At baseline, DIO livers demonstrated an upregulation of mitochondrial-related processes. Post-hepatectomy, however, these processes were downregulated. PPARγ signaling, which activates mitochondrial biogenesis, was significantly downregulated. Essential mitochondrial functions such as citrate cycle, oxidative phosphorylation, and fatty acid degradation were significantly decreased in the DIO liver after resection, demonstrating an inability to accommodate the increased mitochondrial energy demands associated with the regenerative response. Examination of human fatty livers revealed similar changes in baseline mitochondrial function. Using an unbiased analytic approach, fatty liver demonstrates an inability of mitochondrial-related processes to adapt to increased hepatocellular energetic demands following resection. Future therapies to improve post-hepatectomy mitochondrial function should improve postresection outcomes in fatty liver patients.
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