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Published on: February 3, 2017
Drp1-dependent mitochondrial fission regulates p62-mediated autophagy in LPS-induced activated microglial cells
Unbin Chae1, Han Seop Kim1, Hyun-Shik Lee1
1a School of Life Sciences and Biotechnology , BK21 Plus KNU Creative BioResearch Group, Kyungpook National University , Daegu , Republic of Korea.
Abstract:
Microglial activation is known to be an important event during innate immunity, but microglial inflammation is also thought to play a role in the etiology of neurodegenerative diseases. Recently, it was reported that autophagy could influence inflammation and activation of microglia. However, little is known about the regulation of autophagy during microglial activation. In this study, we demonstrated that mitochondrial fission-induced ROS can promote autophagy in microglia. Following LPS-induced autophagy, GFP-LC3 puncta were increased, and this was suppressed by inhibiting mitochondrial fission and mitochondrial ROS. Interestingly, inhibition of mitochondrial fission and mitochondrial ROS also resulted in decreased p62 expression, but Beclin1 and LC3B were unaffected. Taken together, these results indicate that ROS induction due to increased LPS-stimulated mitochondrial fission triggers p62 mediated autophagy in microglial cells. Our findings provide the first important clues towards understanding the correlation between mitochondrial ROS and autophagy. Abbreviations: Drp1; Dynamin related protein 1, LPS; Lipopolysaccharide, ROS; Reactive Oxygen Species, GFP; Green Fluorescent Protein, CNS; Central Nervous System, AD; Alzheimer's Disease, PD; Parkinson's Disease, ALIS; Aggresome-like induced structures, iNOS; inducible nitric oxide synthase, Cox-2; Cyclooxygenase-2, MAPK; Mitogen-activated protein kinase; SODs; Superoxide dismutase, GPXs; Glutathione Peroxidase, Prxs; Peroxiredoxins.
Insights
Mitochondrial fission generates reactive oxygen species (ROS) that trigger p62-mediated autophagy in microglia, influencing neuroinflammation and neurodegenerative diseases.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Microglial activation is crucial for innate immunity but also implicated in neurodegenerative diseases.
- Autophagy's role in microglial inflammation and activation is increasingly recognized, yet its regulation remains unclear.
Purpose of the Study:
- To investigate the regulation of autophagy in microglia during activation.
- To explore the role of mitochondrial dynamics and reactive oxygen species (ROS) in microglial autophagy.
Main Methods:
- Stimulation of microglia with lipopolysaccharide (LPS).
- Monitoring of autophagy markers (GFP-LC3 puncta, p62, Beclin1, LC3B).
- Inhibition of mitochondrial fission and ROS production.
Main Results:
- LPS stimulation increased GFP-LC3 puncta, indicating enhanced autophagy.
- Inhibiting mitochondrial fission or ROS suppressed LPS-induced autophagy and decreased p62 expression.
- Beclin1 and LC3B levels remained unaffected by these inhibitions.
Conclusions:
- Mitochondrial fission-induced ROS promote p62-mediated autophagy in LPS-stimulated microglia.
- This study elucidates a novel link between mitochondrial ROS and autophagy in microglial activation.
- Findings offer insights into the interplay of mitochondrial dynamics, ROS, and autophagy in neuroinflammation.
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