Mitochondrial Respiration Is Reduced in Atherosclerosis, Promoting Necrotic Core Formation and Reducing Relative

Emma P K Yu1, Johannes Reinhold2, Haixiang Yu2

  • 1From the Division of Cardiovascular Medicine, Addenbrooke's Centre for Clinical Investigation, Addenbrooke's Hospital, University of Cambridge, United Kingdom (E.P.K.Y., J.R., H.Y., L.S., A.K.U., K.F., A.F., N.F., M.B.); Department of Biomedical Sciences, University of Nottingham, Malaysia Campus, Selangor, Malaysia (Y.-F.P.); and MRC Mitochondrial Biology Unit, Cambridge, United Kingdom (A.L., M.P.M.). epky2@cam.ac.uk mrb@mole.bio.cam.ac.uk.

Abstract

Insights

Mitochondrial DNA damage contributes to atherosclerosis by impairing mitochondrial function. Enhancing mitochondrial respiration in mice reduced plaque severity, suggesting a potential therapeutic target for atherosclerosis.

Area of Science:

  • Cardiovascular Research
  • Mitochondrial Biology
  • Atherosclerosis Pathogenesis

Background:

  • Mitochondrial DNA (mtDNA) damage is observed in atherosclerotic plaques in humans and mice.
  • The role of endogenous mtDNA damage in causing mitochondrial dysfunction and its impact on atherosclerosis remain unclear.

Purpose of the Study:

  • To investigate mitochondrial respiration in human atherosclerotic plaques.
  • To determine if augmenting mitochondrial respiration influences atherogenesis.

Main Methods:

  • Examined mitochondrial respiration and mtDNA integrity in human plaques and derived vascular smooth muscle cells.
  • Utilized apolipoprotein E-deficient (ApoE-/-) mice, including those overexpressing the mitochondrial helicase Twinkle (Tw+/ApoE-/-).
  • Assessed plaque burden, composition, and cellular responses to oxidative stress.

Main Results:

  • Human atherosclerotic plaques exhibit mitochondrial dysfunction, with reduced mtDNA copy number and oxygen consumption.
  • ApoE-/- mice show impaired mitochondrial respiration and mtDNA integrity.
  • Tw+/ApoE-/- mice demonstrated improved mtDNA integrity, enhanced mitochondrial respiration, reduced necrotic core areas, and increased fibrous cap areas.
  • Twinkle expression improved vascular smooth muscle cell respiration and proliferation, protecting cells from apoptosis.

Conclusions:

  • Endogenous mtDNA damage is linked to reduced mitochondrial respiration in atherosclerosis.
  • Decreasing mtDNA damage and enhancing mitochondrial respiration may serve as a therapeutic strategy for atherosclerosis, independently of reactive oxygen species levels.

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