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Updated: Apr 30, 2026

Improved Rodent Model of Myocardial Ischemia and Reperfusion Injury
Published on: March 7, 2022
Apolipoprotein A1 regulates coenzyme Q10 absorption, mitochondrial function, and infarct size in a mouse model of
Alisher R Dadabayev1, Guotian Yin2, Calivarathan Latchoumycandane3
1Department of Anesthesia, Cleveland Clinic, Cleveland, OH.
Insights
Apolipoprotein A1 (apoA1) deficiency worsens heart attack size by impairing mitochondrial function. Coenzyme Q10 (CoQ10) supplementation corrects this defect, reducing infarct size in apoA1-deficient mice.
Area of Science:
- Cardiovascular Biology
- Mitochondrial Medicine
- Lipid Metabolism
Background:
- HDL and apoA1 levels correlate with reduced ischemic heart disease mortality.
- The specific role of apoA1 in the heart's response to ischemia remains unclear.
Purpose of the Study:
- To investigate the acute anti-inflammatory role of apoA1 in myocardial infarction.
- To determine the impact of apoA1 deficiency on infarct size and cardiac function.
Main Methods:
- Myocardial infarction was induced in apoA1 null, heterozygous, and wild-type mice.
- Cardiac myocyte mitochondrial function, specifically the electron transport chain, was assessed.
- The effect of coenzyme Q10 (CoQ10) supplementation on infarct size was evaluated.
Main Results:
- Mice lacking apoA1 exhibited significantly larger infarct sizes compared to wild-type controls.
- Cardiac myocytes from apoA1-deficient mice showed impaired mitochondrial electron transport, localized to the CoQ pool.
- CoQ10 administration normalized the cardiac mitochondrial CoQ pool and reduced infarct size in apoA1-deficient mice.
Conclusions:
- Impaired mitochondrial function due to altered CoQ pool content contributes to infarct size in low HDL/apoA1 conditions.
- CoQ10 supplementation can correct mitochondrial dysfunction and reduce infarct size in apoA1 deficiency.
- These findings suggest a potential therapeutic role for CoQ10 in patients with low HDL/apoA1 experiencing cardiac events.
Abstract:
HDL and apolipoprotein A1 (apoA1) concentrations inversely correlate with risk of death from ischemic heart disease; however, the role of apoA1 in the myocardial response to ischemia has not been well defined. To test whether apoA1, the primary HDL apolipoprotein, has an acute anti-inflammatory role in ischemic heart disease, we induced myocardial infarction via direct left anterior descending coronary artery ligation in apoA1 null (apoA1(-/-)) and apoA1 heterozygous (apoA1(+/-)) mice. We observed that apoA1(+/-) and apoA1(-/-) mice had a 52% and 125% increase in infarct size as a percentage of area at risk, respectively, compared with wild-type (WT) C57BL/6 mice. Mitochondrial oxidation contributes to tissue damage in ischemia-reperfusion injury. A substantial defect was present at baseline in the electron transport chain of cardiac myocytes from apoA1(-/-) mice localized to the coenzyme Q (CoQ) pool with impaired electron transfer (67% decrease) from complex II to complex III. Administration of coenzyme Q10 (CoQ10) to apoA1 null mice normalized the cardiac mitochondrial CoQ pool and reduced infarct size to that observed in WT mice. CoQ10 administration did not significantly alter infarct size in WT mice. These data identify CoQ pool content leading to impaired mitochondrial function as major contributors to infarct size in the setting of low HDL/apoA1. These data suggest a previously unappreciated mechanism for myocardial stunning, cardiac dysfunction, and muscle pain associated with low HDL and low apoA1 concentrations that can be corrected by CoQ10 supplementation and suggest populations of patients that may benefit particularly from CoQ10 supplementation.
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