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Protection of H9c2 Myocardial Cells from Oxidative Stress by Crocetin via PINK1/Parkin Pathway-Mediated Mitophagy
Published on: May 26, 2023
Oxidative stress-induced mitophagy is suppressed by the miR-106b-93-25 cluster in a protective manner
Cheng Zhang1,2,3, Pengqing Nie1,2,4, Chunliu Zhou1
1Key Laboratory of Combinatorial Biosynthesis and Drug Discovery, Ministry of Education, School of Pharmaceutical Sciences, Wuhan University, Wuhan, 430071, Hubei, China.
Abstract:
Increased reactive oxygen species levels in the mitochondrial matrix can induce Parkin-dependent mitophagy, which selectively degrades dysfunctional mitochondria via the autolysosome pathway. Phosphorylated mitofusin-2 (MFN2), a receptor of parkin RBR E3 ubiquitin-protein ligase (Parkin), interacts with Parkin to promote the ubiquitination of mitochondrial proteins; meanwhile, the mitophagy receptors Optineurin (OPTN) and nuclear dot protein 52 (NDP52) are recruited to damaged mitochondria to promote mitophagy. However, previous studies have not investigated changes in the levels of OPTN, MFN2, and NDP52 during Parkin-mediated mitophagy. Here, we show that mild and sustained hydrogen peroxide (H2O2) stimulation induces Parkin-dependent mitophagy accompanied by downregulation of the mitophagy-associated proteins OPTN, NDP52, and MFN2. We further demonstrate that H2O2 promotes the expression of the miR-106b-93-25 cluster and that miR-106b and miR-93 synergistically inhibit the translation of OPTN, NDP52, and MFN2 by targeting their 3' untranslated regions. We further reveal that compromised phosphorylation of MYC proto-oncogene protein (c-Myc) at threonine 58 (T58) (producing an unstable form of c-Myc) caused by reduced nuclear glycogen synthase kinase-3 beta (GSK3β) levels contributes to the promotion of miR-106b-93-25 cluster expression upon H2O2 induction. Furthermore, miR-106b-mediated and miR-93-mediated inhibition of mitophagy-associated proteins (OPTN, MFN2, and NDP52) restrains cell death by controlling excessive mitophagy. Our data suggest that microRNAs (miRNAs) targeting mitophagy-associated proteins maintain cell survival, which is a novel mechanism of mitophagy control. Thus, our findings provide mechanistic insight into how miRNA-mediated regulation alters the biological process of mitophagy.
Insights
Mild hydrogen peroxide (H2O2) triggers Parkin-dependent mitophagy, downregulating key proteins like OPTN, MFN2, and NDP52. MicroRNAs miR-106b and miR-93 control this process, preventing excessive mitophagy and promoting cell survival.
Area of Science:
- Cell Biology
- Molecular Biology
- Mitochondrial Biology
Background:
- Parkin-dependent mitophagy degrades dysfunctional mitochondria via the autolysosome pathway.
- Mitophagy receptors Optineurin (OPTN), nuclear dot protein 52 (NDP52), and mitofusin-2 (MFN2) are crucial for this process.
- Previous studies lacked insight into the regulation of these proteins during mitophagy.
Purpose of the Study:
- To investigate changes in OPTN, MFN2, and NDP52 levels during Parkin-mediated mitophagy.
- To elucidate the role of microRNAs (miRNAs) in regulating mitophagy-associated proteins.
- To understand the mechanism by which miRNAs control mitophagy and maintain cell survival.
Main Methods:
- Stimulation of cells with mild and sustained hydrogen peroxide (H2O2).
- Analysis of mitophagy-associated protein levels (OPTN, NDP52, MFN2).
- Investigation of miR-106b-93-25 cluster expression and its targets.
- Assessment of c-Myc phosphorylation and GSK3β levels.
- Evaluation of cell death under varying mitophagy conditions.
Main Results:
- H2O2-induced mitophagy led to the downregulation of OPTN, NDP52, and MFN2.
- H2O2 promoted the miR-106b-93-25 cluster, with miR-106b and miR-93 inhibiting OPTN, NDP52, and MFN2 translation.
- Reduced GSK3β levels and compromised c-Myc phosphorylation contributed to increased miR-106b-93-25 cluster expression.
- miRNA-mediated inhibition of mitophagy proteins protected cells from excessive mitophagy and cell death.
Conclusions:
- MicroRNAs targeting mitophagy-associated proteins represent a novel mechanism for controlling mitophagy.
- This miRNA-mediated regulation maintains cell survival by preventing excessive mitophagy.
- The findings provide mechanistic insights into miRNA-driven regulation of mitophagy.
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