Alcohol alters hepatic FoxO1, p53, and mitochondrial SIRT5 deacetylation function

Charles S Lieber1, Maria Anna Leo, Xiaolei Wang

  • 1Section of Liver Disease and Nutrition, James J. Peters VA Medical Center, 130 West Kingsbridge Road (151-2), Bronx, NY 10468, USA. liebercs@aol.com

Insights

Chronic alcohol consumption alters key proteins like FoxO1 and p53 in the liver, impacting mitochondrial function and biogenesis through post-translational modifications. This study reveals alcohol

Area of Science:

  • Hepatology
  • Molecular Biology
  • Biochemistry

Background:

  • Chronic alcohol consumption is known to affect gene expression of SIRT1 and PGC-1alpha.
  • FoxO1 and p53 transcription factors are critical for hepatic oxidative stress response and regulated by SIRT1.
  • Understanding alcohol's impact on these pathways is crucial for liver health.

Purpose of the Study:

  • To investigate if chronic alcohol consumption alters FoxO1 and p53 protein levels and modifications.
  • To explore the role of SIRT1 in alcohol-induced changes in these transcription factors.
  • To elucidate the impact of alcohol on nuclear-mitochondrial interactions and mitochondrial biogenesis.

Main Methods:

  • Rats were fed alcohol-containing liquid diets for 28 days (pair-fed model).
  • Hepatic mRNA and protein levels of FoxO1, p53, Akt, SIRT1, SIRT5, and PGC-1alpha were analyzed.
  • Post-translational modifications, including phosphorylation and acetylation, were assessed.

Main Results:

  • Alcohol increased hepatic mRNA for FoxO1 and p53, but protein levels remained unchanged.
  • Phospho-FoxO1 and phospho-Akt levels decreased, while p53 became hyperacetylated.
  • Mitochondrial SIRT5 was reduced, and PGC-1alpha was hyperacetylated, indicating disrupted nuclear-mitochondrial communication.

Conclusions:

  • Alcohol consumption induces post-translational modifications of FoxO1 and p53, affecting their function.
  • Disruption of nuclear-mitochondrial interactions by alcohol contributes to altered mitochondrial biogenesis.
  • Reduced SIRT5 and hyperacetylated PGC-1alpha are key mechanisms in alcohol-induced liver damage.

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