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Discordant hepatic fatty acid oxidation and triglyceride hydrolysis leads to liver disease
Ebru S. Selen, Joseph Choi, Michael J. Wolfgang
Ebru S. Selen, Joseph Choi, Michael J. Wolfgang
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Research Article Metabolism

Discordant hepatic fatty acid oxidation and triglyceride hydrolysis leads to liver disease

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Abstract

To extract energy from stored lipids, fatty acids must first be liberated from triglyceride before their β-oxidation in mitochondria in a coordinated and stepwise manner. To determine the independent and interdependent roles of hepatic triglyceride hydrolysis and fatty acid oxidation, mice were generated with a liver-specific defect in triglyceride hydrolysis (AtglL–/–), fatty acid oxidation (Cpt2L–/–), or both (double knockout). The loss of either gene resulted in the compensatory increase in the other, demonstrating their coordination. The loss of individual components of fatty acid catabolism (carnitine palmitoyl transferase 2 [Cpt2], adipose triglyceride lipase [Atgl], and Pparα) resulted in largely independent effects on hepatocyte morphology, intermediary metabolism, and gene expression in response to fasting. However, high-fat feeding revealed the interdependent role of Atgl and Cpt2, as the loss of only one of the genes resulted in steatosis (fatty liver) but the loss of both components resulted in significant steatohepatitis (inflammation and fibrosis). Lipolysis and β-oxidation are intimately linked within a continuous pathway, and disruption of their coordination leads to unique cellular and molecular phenotypes that ultimately result in liver disease.

Authors

Ebru S. Selen, Joseph Choi, Michael J. Wolfgang

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Figure 3

Loss of individual components of fatty acid catabolism results in unique hepatocyte morphology.

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Loss of individual components of fatty acid catabolism results in unique...
(A) H&E staining and transmission electron micrographs of livers from 24-hour fasted control, AtglL–/–, Cpt2L–/–, DKO, and Pparα-KO mice. (B) Western blot of oxidative phosphorylation (OXPHOS) complexes in livers of all genotypes. (C) Total liver fatty acid measurements from all genotypes (n = 6). (D) Triglyceride content of liver from mice under fed and fasting conditions (n = 6). (E) Total ceramides from all genotypes (n = 4). (F) Lipid peroxidation in livers of fed and fasted mice measured using thiobarbituric acid reactive substances (TBARS) assay (n = 6). (G) Liver damage assessed by serum ALT activity of fed and 24-hour-fasted animals and represented as fold changes relative to control (n = 5). One- or 2-way ANOVA followed by Tukey’s multiple-comparison test were performed where appropriate to detect significance between genotypes. Single letter denotes P < 0.05. Double letters denote P < 0.01. Letters w (control), a (Atgl), c (Cpt2), d (DKO), and p (Pparα) represent significance between the genotypes. Data are shown as mean ± SEM. Females were used in A and males in B–G. MDA, malondialdehyde.

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