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Published on: June 2, 2023
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.
Objective:
Mitochondrial DNA (mtDNA) damage is present in murine and human atherosclerotic plaques. However, whether endogenous levels of mtDNA damage are sufficient to cause mitochondrial dysfunction and whether decreasing mtDNA damage and improving mitochondrial respiration affects plaque burden or composition are unclear. We examined mitochondrial respiration in human atherosclerotic plaques and whether augmenting mitochondrial respiration affects atherogenesis.
Approach And Results:
Human atherosclerotic plaques showed marked mitochondrial dysfunction, manifested as reduced mtDNA copy number and oxygen consumption rate in fibrous cap and core regions. Vascular smooth muscle cells derived from plaques showed impaired mitochondrial respiration, reduced complex I expression, and increased mitophagy, which was induced by oxidized low-density lipoprotein. Apolipoprotein E-deficient (ApoE-/-) mice showed decreased mtDNA integrity and mitochondrial respiration, associated with increased mitochondrial reactive oxygen species. To determine whether alleviating mtDNA damage and increasing mitochondrial respiration affects atherogenesis, we studied ApoE-/- mice overexpressing the mitochondrial helicase Twinkle (Tw+/ApoE-/-). Tw+/ApoE-/- mice showed increased mtDNA integrity, copy number, respiratory complex abundance, and respiration. Tw+/ApoE-/- mice had decreased necrotic core and increased fibrous cap areas, and Tw+/ApoE-/- bone marrow transplantation also reduced core areas. Twinkle increased vascular smooth muscle cell mtDNA integrity and respiration. Twinkle also promoted vascular smooth muscle cell proliferation and protected both vascular smooth muscle cells and macrophages from oxidative stress-induced apoptosis.
Conclusions:
Endogenous mtDNA damage in mouse and human atherosclerosis is associated with significantly reduced mitochondrial respiration. Reducing mtDNA damage and increasing mitochondrial respiration decrease necrotic core and increase fibrous cap areas independently of changes in reactive oxygen species and may be a promising therapeutic strategy in atherosclerosis.
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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