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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
Mitochondrial events responsible for morphine's cardioprotection against ischemia/reperfusion injury
Haiyan He1, Jin Huh2, Huihua Wang3
1Department of Physiology & Pathophysiology, Tianjin Medical University, Tianjin 300070, PR China; Department of Pharmacology, Tianjin Medical University, Tianjin 300070, PR China.
Abstract:
Morphine may induce cardioprotection by targeting mitochondria, but little is known about the exact mitochondrial events that mediate morphine's protection. We aimed to address the role of the mitochondrial Src tyrosine kinase in morphine's protection. Isolated rat hearts were subjected to 30 min ischemia and 2h of reperfusion. Morphine was given before the onset of ischemia. Infarct size and troponin I release were measured to evaluate cardiac injury. Oxidative stress was evaluated by measuring mitochondrial protein carbonylation and mitochondrial ROS generation. HL-1 cells were subjected to simulated ischemia/reperfusion and LDH release and mitochondrial membrane potential (ΔΨm) were measured. Morphine reduced infarct size as well as cardiac troponin I release which were aborted by the selective Src tyrosine kinase inhibitors PP2 and Src-I1. Morphine also attenuated LDH release and prevented a loss of ΔΨm at reperfusion in a Src tyrosine kinase dependent manner in HL-1 cells. However, morphine failed to reduce LDH release in HL-1 cells transfected with Src siRNA. Morphine increased mitochondrial Src phosphorylation at reperfusion and this was abrogated by PP2. Morphine attenuated mitochondrial protein carbonylation and mitochondrial superoxide generation at reperfusion through Src tyrosine kinase. The inhibitory effect of morphine on the mitochondrial complex I activity was reversed by PP2. These data suggest that morphine induces cardioprotection by preventing mitochondrial oxidative stress through mitochondrial Src tyrosine kinase. Inhibition of mitochondrial complex I at reperfusion by Src tyrosine kinase may account for the prevention of mitochondrial oxidative stress by morphine.
Insights
Morphine protects the heart by targeting mitochondrial Src tyrosine kinase, reducing oxidative stress and injury during reperfusion. This mechanism involves inhibiting mitochondrial complex I activity.
Area of Science:
- Cardiovascular Science
- Mitochondrial Biology
- Pharmacology
Background:
- Morphine's cardioprotective effects are linked to mitochondria, but specific mechanisms remain unclear.
- The role of mitochondrial Src tyrosine kinase in morphine-induced cardioprotection requires elucidation.
Purpose of the Study:
- To investigate the involvement of mitochondrial Src tyrosine kinase in morphine's cardioprotective effects.
- To determine how morphine modulates mitochondrial function and oxidative stress during ischemia-reperfusion injury.
Main Methods:
- Isolated rat hearts and HL-1 cells underwent ischemia-reperfusion.
- Morphine administration, Src tyrosine kinase inhibitors (PP2, Src-I1), and Src siRNA were used.
- Infarct size, troponin I, LDH release, mitochondrial ROS, protein carbonylation, and membrane potential (ΔΨm) were assessed.
Main Results:
- Morphine reduced infarct size and cardiac troponin I release, effects blocked by Src inhibitors.
- Morphine attenuated LDH release and preserved ΔΨm in HL-1 cells, dependent on Src tyrosine kinase.
- Morphine decreased mitochondrial oxidative stress markers (ROS, carbonylation) via Src tyrosine kinase.
- Src inhibition reversed morphine's effect on mitochondrial complex I activity.
Conclusions:
- Morphine confers cardioprotection by mitigating mitochondrial oxidative stress through mitochondrial Src tyrosine kinase.
- Src tyrosine kinase-mediated inhibition of mitochondrial complex I at reperfusion contributes to morphine's protective effects.
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