A Non-canonical Role for Hepatocyte MLKL in Promoting Mitochondrial Dysfunction and Senescence in the Aging Liver

Insights

MLKL overexpression in liver cells drives senescence and metabolic dysfunction, not cell death. This finding reveals MLKL as a key factor in liver aging and inflammation, suggesting it as a therapeutic target for age-related liver diseases.

Area of Science:

  • Hepatology
  • Cellular Biology
  • Aging Research

Background:

  • Liver aging involves chronic inflammation and metabolic issues, worsening metabolic dysfunction-associated steatotic liver disease (MASLD).
  • Necroptosis, a type of inflammatory cell death, is active in aging livers and can be inhibited to reduce liver inflammation.
  • The specific role of necroptosis in different liver cell types during aging is not fully understood.

Purpose of the Study:

  • To investigate the cell-type-specific role of MLKL (a key necroptosis protein) in liver aging.
  • To determine the effects of MLKL overexpression specifically in hepatocytes.

Main Methods:

  • Generated hepatocyte-specific MLKL-overexpressing mice (MLKL HepOE).
  • Analyzed liver pathology, senescence markers, macrophage infiltration, mitochondrial function, oxidative stress, and lipid metabolism.
  • Utilized electron microscopy and lipidomics.
  • Overexpressed MLKL in AML12 hepatocytes to assess cellular responses.

Main Results:

  • MLKL overexpression in hepatocytes induced cellular senescence and M1 macrophage infiltration without causing necroptosis.
  • Observed mitochondrial abnormalities, increased oxidative stress, and altered lipid metabolism in MLKL HepOE livers.
  • MLKL overexpression in AML12 cells impaired mitochondrial respiration, increased inflammatory extracellular vesicle release, and upregulated senescence markers.

Conclusions:

  • MLKL plays a non-lethal role in promoting hepatocyte senescence and metabolic dysfunction during liver aging.
  • Mitochondrial impairment and extracellular vesicle-mediated inflammation are key mechanisms involved.
  • MLKL is identified as a novel driver of liver inflammaging and a potential therapeutic target for age-related liver diseases.

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