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A Flow Cytometry-based Assay for Measuring Mitochondrial Membrane Potential in Cardiac Myocytes After Hypoxia/Reoxygenation
Published on: July 13, 2018
Shenlian extract decreases mitochondrial autophagy to regulate mitochondrial function in microvascular to alleviate
Jing-Jing Li1, Ya-Jie Wang1, Chun-Miao Wang1
1Institute of Chinese Materia Medica, China Academy of Chinese Medical Sciences, Dongcheng District, Beijing, China.
Insights
Shenlian (SL) extract reduces coronary artery no-reflow by inhibiting excessive mitochondrial autophagy. This protects mitochondrial function and preserves microvascular barrier integrity, offering a potential therapeutic strategy for myocardial ischemia.
Area of Science:
- Cardiovascular Research
- Mitochondrial Biology
- Pharmacology
Background:
- Coronary artery no-reflow is a critical complication of myocardial ischemia-reperfusion (MI/R) injury.
- Shenlian (SL) extract is known for treating atherosclerosis and myocardial ischemia, but its role in coronary artery no-reflow is unclear.
- Excessive mitochondrial autophagy (mitophagy) is implicated in MI/R injury, potentially impairing mitochondrial function.
Purpose of the Study:
- To investigate the protective effects of SL extract on coronary artery no-reflow.
- To elucidate the molecular mechanisms by which SL extract represses excessive mitochondrial autophagy and protects mitochondrial function.
Main Methods:
- Established in vivo rat models of coronary artery no-reflow and in vitro models of oxygen-glucose deprivation/reoxygenation (OGD/R) in cardiac microvascular endothelial cells (CMECs).
- Assessed no-reflow area, left ventricular ejection fraction (EF), fractional shortening (FS), microvascular barrier function (VE-cadherin), and neutrophil migration.
- Utilized transmission electron microscopy, immunofluorescence, JC-1 dye, ATP assay, flow cytometry, and Western blot analysis to evaluate mitochondrial structure, autophagy (LC3II/I, P62, PINK, Parkin), mitochondrial membrane potential, reactive oxygen species (ROS), and apoptosis.
Main Results:
- SL extract significantly reduced the no-reflow area and improved cardiac function (EF, FS) in vivo.
- SL treatment preserved microvascular barrier integrity (VE-cadherin) and reduced neutrophil infiltration.
- In vitro, SL inhibited excessive mitophagy, suppressed the PINK/Parkin pathway, improved mitochondrial function (ATP levels, membrane potential), and reduced ROS and apoptosis following OGD/R injury.
Conclusions:
- SL extract effectively alleviates coronary artery no-reflow by protecting the microvasculature.
- The mechanism involves the repression of excessive mitochondrial autophagy via the PINK/Parkin pathway, thereby preserving mitochondrial function.
- SL extract demonstrates therapeutic potential for managing MI/R injury and preventing coronary artery no-reflow.
Abstract:
Shenlian (SL) extract has been proven to be effective in the prevention and treatment of atherosclerosis and myocardial ischemia. However, the function and molecular mechanisms of SL on coronary artery no-reflow have not been fully elucidated. This study was designed to investigate the contribution of SL extract in repressing excessive mitochondrial autophagy to protect the mitochondrial function and prevent coronary artery no-reflow. The improvement of SL on coronary artery no-reflow was observed in vivo experiments and the molecular mechanisms were further explored through vitro experiments. First, a coronary artery no-reflow rat model was built by ligating the left anterior descending coronary artery for 2 hr of ischemia, followed by 24 hr of reperfusion. Thioflavin S (6%, 1 ml/kg) was injected into the inferior vena cava to mark the no-reflow area. Transmission electron microscopy was performed to observe the cellular structure, mitochondrial structure, and mitochondrial autophagy of the endothelial cells. Immunofluorescence was used to observe the microvascular barrier function and microvascular inflammation. Cardiac microvascular endothelial cells (CMECs) were isolated from rats. The CMECs were deprived of oxygen-glucose deprivation (OGD) for 2 hr and reoxygenated for 4 hr to mimic the Myocardial ischemia-reperfusion (MI/R) injury-induced coronary artery no-reflow in vitro. Mitochondrial membrane potential was assessed using JC-1 dye. Intracellular adenosine triphosphate (ATP) levels were determined using an ATP assay kit. The cell total reactive oxygen species (ROS) levels and cell apoptosis rate were analyzed by flow cytometry. Colocalization of mitochondria and lysosomes indirectly indicated mitophagy. The representative ultrastructural morphologies of the autophagosomes and autolysosomes were also observed under transmission electron microscopy. The mitochondrial autophagy-related proteins (LC3II/I, P62, PINK, and Parkin) were analyzed using Western blot analysis. In vivo, results showed that, compared with the model group, SL could reduce the no-reflow area from 37.04 ± 9.67% to 18.31 ± 4.01% (1.08 g·kg-1 SL), 13.79 ± 4.77% (2.16 g·kg-1 SL), and 12.67 ± 2.47% (4.32 g·kg-1 SL). The extract also significantly increased the left ventricular ejection fraction (EF) and left ventricular fractional shortening (FS) (p < 0.05 or p < 0.01). The fluorescence intensities of VE-cadherin, which is a junctional protein that preserves the microvascular barrier function, decreased to ~74.05% of the baseline levels in the no-reflow rats and increased to 89.87%(1.08 g·kg-1 SL), 82.23% (2.16 g·kg-1 SL), and 89.69% (4.32 g·kg-1 SL) of the baseline levels by SL treatment. SL administration repressed the neutrophil migration into the myocardium. The oxygen-glucose deprivation/reoxygenation (OGD/R) model was induced in vitro to mimic microvascular ischemia-reperfusion injury. The impaired mitochondrial function after OGD/R injury led to decreased ATP production, calcium overload, the excessive opening of the Mitochondrial Permeability Transition Pore, decreased mitochondrial membrane potential, and reduced ROS scavenging ability (p < 0.05 or p < 0.01). The normal autophagosomes (double-membrane vacuoles with autophagic content) in the sham group were rarely found. The large morphology and autophagosomes were frequently observed in the model group. By contrast, SL inhibited the excessive activation of mitochondrial autophagy. The mitochondrial autophagy regulated by the PINK/Parkin pathway was excessively activated. However, administration of SL prevented the activation of the PINK/Parkin pathway and inhibited excessive mitochondrial autophagy to regulate mitochondrial dysfunction. Results also demonstrated that mitochondrial dysfunction stimulated endothelial cell barrier dysfunction, but Evans blue transmission was significantly decreased and transmembrane resistance was increased significantly by SL treatment (p < 0.05 or p < 0.01). Carbonylcyanide-3-chlorophenylhydrazone (CCCP) could activate the PINK/Parkin pathway. CCCP reversed the regulation of SL on mitochondrial autophagy and mitochondrial function. SL could alleviate coronary artery no-reflow by protecting the microvasculature by regulating mitochondrial function. The underlying mechanism was related to decreased mitochondrial autophagy by the PINK/Parkin pathway.
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