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Autophagy in Rat Müller Glial Cells Is Modulated by the Sirtuin 4/AMPK/mTOR Pathway and Induces Apoptosis under
Mengqi Qin1, Zhi Xie1, Ting Cao1
1Jiangxi Provincial Key Laboratory for Ophthalmology, Jiangxi Clinical Research Center of Ophthalmic Disease, Affiliated Eye Hospital of Nanchang University, Nanchang 330006, China.
Abstract:
Müller glial cells (MGCs) are a group of glial cells in the retina that provide essential support to retinal neurons; however, the understanding of MGC apoptosis and autophagy remains limited. This study was aimed at investigating the role of autophagy in MGCs under normal and oxidative conditions, and identifying the underlying mechanisms. In addition, the sirtuin 4 (SIRT4)-mediated signaling pathway was observed to regulate the autophagic process in MGCs. To assess the effect of autophagy on MGC mitochondrial function and survival, we treated rMC-1 cells-rat-derived Müller glial cells-with rapamycin and 3-methyladenine (3-MA), and found that MGC death was not induced by such treatment, while autophagic dysfunction could increase MGC apoptosis under oxidative stress, as reflected by the expression level of cleaved caspase 3 and PI staining. In addition, the downregulation of autophagy by 3-MA could influence the morphology of the mitochondrial network structure, the mitochondrial membrane potential, and generation of reactive oxygen species (ROS) under oxidative stress. Moreover, SIRT4 depletion enhanced autophagosome formation, as verified by an increase in the LC3 II/I ratio and a decrease in the expression of SQSTM1/p62, and vice versa. The inhibition of AMPK phosphorylation by compound C could reverse these changes in LC3 II/I and SQSTM1/p62 caused by SIRT4 knockdown. Our research concludes that MGCs can endure autophagic dysfunction in the absence of oxidative stress, while the downregulation of autophagy can cause MGCs to become more sensitized to oxidative stress. Simultaneous exposure to oxidative stress and autophagic dysfunction in MGCs can result in a pronounced impairment of cell survival. Mechanically, SIRT4 depletion can activate the autophagic process in MGCs by regulating the AMPK-mTOR signaling pathway.
Insights
Müller glial cells (MGCs) are vital for retinal health. Autophagic dysfunction increases MGC apoptosis under oxidative stress, but SIRT4 depletion activates autophagy via the AMPK-mTOR pathway, promoting MGC survival.
Area of Science:
- Retinal Biology
- Cellular Neuroscience
- Glial Cell Research
Background:
- Müller glial cells (MGCs) support retinal neurons, but their apoptosis and autophagy are poorly understood.
- Autophagy plays a critical role in cellular homeostasis and stress response within the retina.
Purpose of the Study:
- Investigate the role of autophagy in MGCs under normal and oxidative conditions.
- Identify mechanisms regulating MGC autophagy, focusing on the sirtuin 4 (SIRT4) pathway.
- Assess the impact of autophagy modulation on MGC mitochondrial function and survival.
Main Methods:
- Treatment of rat-derived MGCs (rMC-1 cells) with autophagy modulators (rapamycin, 3-methyladenine).
- Assessment of MGC apoptosis via cleaved caspase 3 and PI staining.
- Analysis of mitochondrial network morphology, membrane potential, and reactive oxygen species (ROS) generation.
- Investigation of SIRT4's role in autophagy regulation using knockdown/overexpression and Western blotting (LC3 II/I, SQSTM1/p62).
- Examination of the AMPK-mTOR signaling pathway using compound C.
Main Results:
- Autophagic dysfunction exacerbates MGC apoptosis under oxidative stress.
- Downregulation of autophagy impairs mitochondrial function and increases ROS production.
- SIRT4 depletion enhances autophagosome formation, indicating activated autophagy.
- The AMPK-mTOR pathway mediates SIRT4's regulation of autophagy.
Conclusions:
- MGCs tolerate autophagic dysfunction without oxidative stress, but become vulnerable when autophagy is downregulated.
- Combined oxidative stress and autophagic dysfunction severely impair MGC survival.
- SIRT4 depletion activates MGC autophagy through the AMPK-mTOR pathway, potentially protecting MGCs.
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