Apolipoprotein M delays the development of atherosclerosis by regulating autophagy and mitochondrial function

Yuanping Shi1, Shuang Yao1, Binhua Jiang2

  • 1Clinical Medical Research Center, the Third Affiliated Hospital of Soochow University, Changzhou, China.

Abstract

Insights

Apolipoprotein M (ApoM) protects against atherosclerosis by enhancing autophagy and regulating mitochondrial dynamics. This protein maintains mitochondrial integrity, offering potential therapeutic strategies for cardiovascular diseases.

Area of Science:

  • Cardiovascular Biology
  • Mitochondrial Medicine
  • Atherosclerosis Research

Background:

  • Apolipoprotein M (ApoM) is linked to atherosclerosis, but its precise role and mechanism are unclear.
  • Mitochondrial dysfunction and DNA damage are implicated in atherosclerosis development.

Purpose of the Study:

  • To investigate how ApoM affects mitochondrial structure and function during atherosclerosis.
  • To explore the underlying mechanisms of ApoM's influence on atherosclerosis pathogenesis.

Main Methods:

  • Established atherosclerosis models in ApoM-deficient and wild-type mice on a high-fat diet.
  • Utilized transmission electron microscopy, lipidomics, and cell-based assays (western blotting, JC-1 staining, flow cytometry, Seahorse analysis) to assess mitochondrial function, autophagy, and ApoM expression.

Main Results:

  • ApoM deficiency exacerbated atherosclerotic markers and mitochondrial swelling in mice.
  • ApoM deficiency impaired autophagy and mitochondrial function, while ApoM overexpression improved mitochondrial structure and activated autophagy in cells.
  • ApoM influenced mitochondrial membrane potential and reduced basal respiration and ATP production, indicating a role in mitochondrial fission.

Conclusions:

  • ApoM exhibits atheroprotective effects by promoting autophagy and regulating mitochondrial dynamics.
  • Maintaining mitochondrial integrity and function is key to ApoM's protective role in atherosclerosis.
  • ApoM represents a potential therapeutic target for cardiovascular diseases.

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