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High glucose-induced ROS accumulation is a critical regulator of ERK1/2-Akt-tuberin-mTOR signalling in RGC-5 cells
Sweta Pal1, G Nageswar Rao2, Arttatrana Pal3
1School of Biotechnology, Kalinga Institute of Industrial Technology, Bhubaneswar 751024, India.
Abstract:
Hyperglycemia and oxidative stress are the primary stressors that elicit mitochondria specific cell stress in diabetes. Here we hypothesized that elevated level of ROS in high glucose (HG) environment, trigger mitochondrial stress by damaging mitochondrial DNA (mtDNA), altering inflammatory mediators, and neurodegenerative markers via stress signalling pathway in retinal ganglion cells (RGC-5). Mechanistically, our findings illustrated that the HG environment increases the ROS production in retinal cells leading to the disruption of antioxidant defence mechanism, and altering mitochondrial machinery such as an increase in loss of mitochondrial membrane potential (ΔΨm), increase in mitochondrial mass, and increase in mtDNA fragmentation. Furthermore, fragmented mtDNA escape from mitochondria into the cytosol, where it engaged with cyclic GMP-AMP synthase (cGAS) and stimulator of IFN gene (STING) phosphorylation and activate interferon regulatory factor 3 (IRF3) via ERK1/2-Akt-tuberin-mTOR dependent pathways. Our results further indicate that siRNA-mediated gene silencing of tuberin suppresses the strong downregulation of tuberin-mTOR-IRF3 activation. HG environment resulted in activation of IRF3, coinciding with the increased expression of inflammatory mediators and neurodegenerative markers. Pre-treatment of N-acetyl-l-cysteine (NAC) or ERK1/2 or phosphoinositide3-kinase (PI3-K)/Akt inhibitors in RGC-5 cells significantly reduced the HG-induced IRF3 expression and declined the expression of neurodegenerative markers. Collectively, our results demonstrates that HG-induced over production of ROS, disrupts the antioxidant defence mechanism and mitochondrial dysfunction, leading to alterations of inflammatory mediators and neurodegenerative markers through the ERK1/2-Akt-tuberin-mTOR dependent signalling pathway in RGC-5 cells.
Insights
High glucose in diabetes causes oxidative stress, damaging retinal cells and triggering inflammation and neurodegeneration via mitochondrial dysfunction and specific signaling pathways.
Area of Science:
- Cell Biology
- Neuroscience
- Biochemistry
Background:
- Diabetes-induced hyperglycemia and oxidative stress are key factors in retinal cell damage.
- Mitochondrial dysfunction plays a critical role in the pathogenesis of diabetic retinopathy.
Purpose of the Study:
- To investigate the role of reactive oxygen species (ROS) and mitochondrial stress in high glucose-induced damage to retinal ganglion cells (RGC-5).
- To elucidate the signaling pathway involved in hyperglycemia-induced inflammation and neurodegeneration in RGC-5 cells.
Main Methods:
- RGC-5 cells were exposed to high glucose (HG) conditions.
- Assessed ROS production, mitochondrial membrane potential (ΔΨm), mitochondrial mass, and mtDNA fragmentation.
- Investigated the cGAS-STING-IRF3 pathway activation via ERK1/2-Akt-tuberin-mTOR signaling.
- Utilized siRNA for gene silencing and pharmacological inhibitors (NAC, ERK1/2, PI3-K/Akt inhibitors).
Main Results:
- HG increased ROS production, disrupted antioxidant defenses, and caused mitochondrial dysfunction (decreased ΔΨm, increased mass, mtDNA fragmentation).
- Fragmented mtDNA activated the cGAS-STING-IRF3 pathway through ERK1/2-Akt-tuberin-mTOR signaling.
- HG induced IRF3 activation, leading to increased inflammatory mediators and neurodegenerative markers.
- NAC, ERK1/2, or PI3-K/Akt inhibition reduced HG-induced IRF3 activation and neurodegeneration markers.
Conclusions:
- Hyperglycemia-induced ROS overproduction and mitochondrial dysfunction trigger inflammatory and neurodegenerative pathways in RGC-5 cells.
- The ERK1/2-Akt-tuberin-mTOR signaling cascade is crucial in mediating HG-induced retinal cell damage.
- Targeting ROS and this signaling pathway may offer therapeutic strategies for diabetic retinopathy.
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