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Effect of a ketogenic diet on hepatic steatosis and hepatic mitochondrial metabolism in nonalcoholic fatty liver disease.

Citation
Luukkonen, P. K., et al. “Effect Of A Ketogenic Diet On Hepatic Steatosis And Hepatic Mitochondrial Metabolism In Nonalcoholic Fatty Liver Disease.”. Proceedings Of The National Academy Of Sciences Of The United States Of America, pp. 7347-7354.
Center Yale University
Author Panu K Luukkonen, Sylvie Dufour, Kun Lyu, Xian-Man Zhang, Antti Hakkarainen, Tiina E Lehtimäki, Gary W Cline, Kitt Falk Petersen, Gerald I Shulman, Hannele Yki-Järvinen
Keywords Carbohydrate restriction, citrate synthase, Insulin resistance, pyruvate carboxylase, redox
Abstract

Weight loss by ketogenic diet (KD) has gained popularity in management of nonalcoholic fatty liver disease (NAFLD). KD rapidly reverses NAFLD and insulin resistance despite increasing circulating nonesterified fatty acids (NEFA), the main substrate for synthesis of intrahepatic triglycerides (IHTG). To explore the underlying mechanism, we quantified hepatic mitochondrial fluxes and their regulators in humans by using positional isotopomer NMR tracer analysis. Ten overweight/obese subjects received stable isotope infusions of: [D]glucose, [C]β-hydroxybutyrate and [3-C]lactate before and after a 6-d KD. IHTG was determined by proton magnetic resonance spectroscopy (H-MRS). The KD diet decreased IHTG by 31% in the face of a 3% decrease in body weight and decreased hepatic insulin resistance (-58%) despite an increase in NEFA concentrations (+35%). These changes were attributed to increased net hydrolysis of IHTG and partitioning of the resulting fatty acids toward ketogenesis (+232%) due to reductions in serum insulin concentrations (-53%) and hepatic citrate synthase flux (-38%), respectively. The former was attributed to decreased hepatic insulin resistance and the latter to increased hepatic mitochondrial redox state (+167%) and decreased plasma leptin (-45%) and triiodothyronine (-21%) concentrations. These data demonstrate heretofore undescribed adaptations underlying the reversal of NAFLD by KD: That is, markedly altered hepatic mitochondrial fluxes and redox state to promote ketogenesis rather than synthesis of IHTG.

Year of Publication
2020
Journal
Proceedings of the National Academy of Sciences of the United States of America
Volume
117
Issue
13
Number of Pages
7347-7354
Date Published
03/2020
ISSN Number
1091-6490
DOI
10.1073/pnas.1922344117
Alternate Journal
Proc. Natl. Acad. Sci. U.S.A.
PMID
32179679
PMCID
PMC7132133
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