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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
mTORC2 phosphorylation of Akt1: a possible mechanism for hydrogen sulfide-induced cardioprotection
Yue Zhou1, Daying Wang2, Xiufang Gao3
1Cardiovascular Research Institute, National University of Singapore, Singapore, Singapore.
Abstract:
Hydrogen sulfide (H2S) is known to have cardiac protective effects through Akt activation. Akt acts as a 'central sensor' for myocyte survival or death; its activity is regulated by multiple kinases including PI3K, mTORC2, PDK1 and phosphatases including PTEN, PP2A and PHLPPL. Based on the previous finding that PI3K inhibitor LY294002 abolishes H2S-induced Akt phosphorylation and cardioprotection, it is accepted that PI3K is the mediator of H2S-induced Akt phosphorylation. However, LY294002 inhibits both PI3K and mTOR, and PI3K only recruits Akt to the membrane where Akt is phosphorylated by Akt kinases. We undertook a series of experiments to further evaluate the role of mTORC2, PDK1, PTEN, PP2A and PHLPPL in H2S-induced Akt phosphorylation and cardioprotection, which, we believe, has not been investigated before. Hearts from adult Sprague-Dawley rats were isolated and subjected to (i) normoxia, (ii) global ischemia and (iii) ischemia/reperfusion in the presence or absence of 50 µM of H2S donor NaHS. Cardiac mechanical function and lactate dehydrogenase (LDH) release were assessed. All hearts also were Western analyzed at the end of perfusion for Akt and a panel of appropriate Akt regulators and targets. Hearts pretreated with 50 µM NaHS had improved function at the end of reperfusion (Rate pressure product; 19±4×10(3) vs. 10±3×10(3) mmHg/min, p<0.05) and reduced cell injury (LDH release 19±10 vs. 170±87 mU/ml p<0.05) compared to untreated hearts. NaHS significantly increased phospho-Akt, phospho-mTOR, phospho-Bim and Bcl-2 in reperfused hearts (P<0.05). Furthermore using H9c2 cells we demonstrate that NaHS pretreatment reduces apoptosis following hypoxia/re-oxygenation. Importantly, PP242, a specific mTOR inhibitor, abolished both cardioprotection and protein phosphorylation in isolated heart and reduced apoptotic effects in H9c2 cells. Treating hearts with NaHS only during reperfusion produced less cardioprotection through a similar mechanism. These data suggest mTORC2 phosphorylation of Akt is a key mediator of H2S-induced cardioprotection in I/R.
Insights
Hydrogen sulfide (H2S) protects the heart by activating Akt, a key protein in cell survival. This study shows H2S-induced cardioprotection is mediated by mTORC2-dependent Akt phosphorylation, reducing heart injury during ischemia/reperfusion.
Area of Science:
- Biochemistry
- Cardiology
- Molecular Biology
Background:
- Hydrogen sulfide (H2S) exhibits cardiac protective effects via Akt activation.
- Akt acts as a central regulator of myocyte survival, with its activity influenced by various kinases and phosphatases.
- Previous studies implicated PI3K in H2S-induced Akt phosphorylation, but LY294002's dual inhibition of PI3K and mTOR necessitates further investigation.
Purpose of the Study:
- To elucidate the specific roles of mTORC2, PDK1, PTEN, PP2A, and PHLPPL in H2S-mediated Akt phosphorylation and cardioprotection.
- To investigate the mechanism underlying H2S-induced cardioprotection during ischemia/reperfusion (I/R).
Main Methods:
- Isolated rat hearts subjected to normoxia, global ischemia, or ischemia/reperfusion with or without NaHS (H2S donor).
- Assessment of cardiac mechanical function and lactate dehydrogenase (LDH) release.
- Western blot analysis of Akt and its regulators/targets; H9c2 cells used to evaluate apoptosis following hypoxia/re-oxygenation.
Main Results:
- NaHS pretreatment improved cardiac function and reduced LDH release in reperfused hearts.
- NaHS significantly increased phospho-Akt, phospho-mTOR, phospho-Bim, and Bcl-2 levels.
- The mTOR inhibitor PP242 abolished H2S-induced cardioprotection and phosphorylation, and reduced H9c2 cell apoptosis.
Conclusions:
- mTORC2-dependent phosphorylation of Akt is a critical mediator of H2S-induced cardioprotection in ischemia/reperfusion.
- H2S protects cardiac myocytes by modulating the Akt signaling pathway, involving mTORC2 activation.
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