Journal of Lipid Research
Volume 59, Issue 10, October 2018, Pages 1977-1986
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Patient-Oriented and Epidemiological Research
Mitochondrial dysfunction-related lipid changes occur in nonalcoholic fatty liver disease progression

https://doi.org/10.1194/jlr.M085613Get rights and content
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Nonalcoholic fatty liver disease (NAFLD) comprises fat-accumulating conditions within hepatocytes that can cause severe liver damage and metabolic comorbidities. Studies suggest that mitochondrial dysfunction contributes to its development and progression and that the hepatic lipidome changes extensively in obesity and in NAFLD. To gain insight into the relationship between lipid metabolism and disease progression through different stages of NAFLD, we performed lipidomic analysis of plasma and liver biopsy samples from obese patients with nonalcoholic fatty liver (NAFL) or nonalcoholic steatohepatitis (NASH) and from those without NAFLD. Congruent with earlier studies, hepatic lipid levels overall increased with NAFLD. Lipid species that differed with NAFLD severity were related to mitochondrial dysfunction; specifically, hepatic cardiolipin and ubiquinone accumulated in NAFL, and levels of acylcarnitine increased with NASH. We propose that increased levels of cardiolipin and ubiquinone may help to preserve mitochondrial function in early NAFLD, but that mitochondrial function eventually fails with progression to NASH, leading to increased acylcarnitine. We also found a negative association between hepatic odd-chain phosphatidylcholine and NAFLD, which may result from mitochondrial dysfunction-related impairment of branched-chain amino acid catabolism. Overall, these data suggest a close link between accumulation of specific hepatic lipid species, mitochondrial dysfunction, and the progression of NAFLD.

lipidomics
liver metabolism
mitochondria
obesity

Cited by (0)

niversity of Melbourne https://dx.doi.org/10.13039/501100001782

National Health and Medical Research Council https://dx.doi.org/10.13039/501100000925 APP1077703 APP1042095

H2020 Marie Skłodowska-Curie Actions https://dx.doi.org/10.13039/100010665

This work was supported by National Health and Medical Research Council Grant APP1061278. Additional support was provided by an International Scholarship from the University of Melbourne (K-Y.P.); National Health and Medical Research Council Senior Research Fellowships APP1077703 and APP1042095 (M.J.W., P.J.M.); and H2020 Marie Skłodowska-Curie Actions Grant H2020-MSCA-IF (R.C.R.M.).

The online version of this article (available at http://www.jlr.org) contains a supplement.

P. J. Meikle and R. C. R. Meex are co-senior authors.

    Abbreviations:

    BCAA

    branched-chain amino acid

    CE

    cholesteryl ester

    CTRL

    control

    DG

    diacylglycerol

    DUFA

    diunsaturated FA

    HOMA-IR

    homeostatic model assessment of insulin resistance

    NAFL

    nonalcoholic fatty liver

    NAFLD

    nonalcoholic fatty liver disease

    NASH

    nonalcoholic steatohepatitis

    PC

    phosphatidylcholine

    SFA

    saturated FA

    TG

    triacylglycerol